Fine fibrous cellulose, dispersion, sheet, and method for producing fine fibrous cellulose

By controlling substituent content and fiber width, fine fibrous cellulose is produced with enhanced transparency and color stability, addressing issues in existing methods.

JP7749941B2Active Publication Date: 2025-10-07OJI HLDG CORP
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Patent Information

Application Number
JP2021084169
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-19
Filing Date
2021-05-18
Publication Date
2025-10-07
Estimated Expiration
2041-05-18

AI Technical Summary

Technical Problem

Existing methods for producing fine fibrous cellulose result in decreased transparency and coloration when functional groups are removed after micronization, either as a slurry or in sheet form.

Method used

Control the amount of introduced substituents to less than 0.5 mmol/g and fiber width to 1 to 10 nm, with a nanofiber yield of 95% or more, to produce fine fibrous cellulose that maintains transparency and suppresses coloration in dispersions or sheets.

Benefits of technology

The solution achieves improved transparency and reduced coloration in fine fibrous cellulose dispersions and sheets, with haze of 5.0% or less and YI increase rate of 1500% or less, maintaining high light transmittance and surface smoothness.

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Abstract

To provide a microfilament-like cellulose that can, when used for a dispersion liquid or a sheet, increase transparency and inhibit coloring.SOLUTION: The present invention pertains to a microfilament-like cellulose that has a fiber width of 1-10 nm and has an amount of introduced substituents less than 0.5 mmol / g. The present invention also pertains to a dispersion liquid and a sheet that contain the microfilament-like cellulose. The present invention further pertains to a method for producing the microfilament-like cellulose, the method comprising: a step (A) of removing, from a microfilament-like cellulose having substituents and having a fiber width of 1000 nm or less, at least a portion of the substituents; and, after the step (A), a step (B) of performing a uniform dispersion treatment.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present invention relates to a fine fibrous cellulose, a dispersion, a sheet, and a method for producing fine fibrous cellulose. [Background technology]

[0002] In recent years, materials made from renewable natural fibers have been attracting attention due to the need to replace petroleum resources and growing environmental awareness. Among natural fibers, fibrous cellulose with a fiber diameter of 10 μm to 50 μm, especially wood-derived fibrous cellulose (pulp), has been widely used mainly in paper products.

[0003] Fibrous cellulose, also known as microfibrous cellulose, has a fiber diameter of 1 μm or less. Microfibrous cellulose is attracting attention as a new material with a wide range of applications. For example, development of sheets, resin composites, and thickeners containing microfibrous cellulose is underway.

[0004] Fine fibrous cellulose can be produced by defibrating cellulose fibers. However, because cellulose fibers are strongly bonded to each other by hydrogen bonds, simply defibrating the cellulose requires a huge amount of energy to obtain fine fibrous cellulose. For this reason, it is known that in order to produce fine fibrous cellulose with less defibration energy, it is effective to combine defibration with pretreatment such as chemical or biological treatment.

[0005] For example, chemical treatment of cellulose fibers to introduce ionic functional groups into them is known to facilitate the micronization of cellulose fibers and to enhance dispersion stability after micronization. However, this can also cause fluctuations in the ionic strength and pH of systems containing cellulose fibers, or reactions due to the functional groups. This can lead to problems such as deterioration and yellowing of the cellulose fibers.

[0006] Therefore, studies have been conducted to remove ionic functional groups at any timing after fiber micronization. For example, Patent Document 1 discloses a method for producing fine fibers, which includes the steps of (a) introducing substituents having electrostatic and / or steric functionality into a fine fiber raw material to obtain substituted fibers, (b) mechanically treating the substituted fibers, and (c) removing some or all of the introduced substituents from the substituted fine fibers obtained in step (b) to obtain substituted-free fine fibers. Patent Document 2 also discloses a method for producing a deesterified compound, which includes the step of heating a compound having a phosphoric acid-derived ester and / or a carboxylic acid-derived ester in the presence of a basic nitrogen-containing compound. These documents discuss removing the substituents introduced into the fine fibers.

[0007] Patent Document 3 discloses a method for producing a fine fiber-containing sheet, which comprises at least the steps of (a) introducing substituents having electrostatic and / or steric functionality into a fiber raw material to obtain substituted fibers, (b) mechanically treating the substituted fibers obtained in step (a) to obtain substituted fine fibers, (c) preparing a sheet from the substituted fine fibers obtained in step (b), and (d) eliminating at least a portion of the introduced substituents from the sheet obtained in step (c). Here, a method for eliminating the substituents after forming a sheet from substituted fine fibers is investigated.

[0008] Furthermore, Patent Documents 4 and 5 disclose methods for producing cellulose xanthate nanofibers, in which cellulose xanthate or a cation-substituted cellulose xanthate is defibrated. Patent Document 4 also considers a method for returning cellulose xanthate nanofibers to unmodified cellulose by regenerating the nanofibers as needed. Patent Document 5 also discloses a sheet containing cellulose fine fibers from which functional groups have been removed, the average fiber diameter of which is 3 nm or more and 300 nm or less. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] International Publication No. 2013 / 176049 [Patent Document 2] Japanese Patent Application Publication No. 2015-098526 [Patent Document 3] International Publication No. 2015 / 182438 [Patent Document 4] International Publication No. 2017 / 111103 [Patent Document 5] Japanese Patent Application Publication No. 2019-7101 Summary of the Invention [Problem to be solved by the invention]

[0010] In the course of their research into fine fibrous cellulose from which substituents have been removed, the present inventors have found that removing functional groups in the form of a slurry after micronization can result in a decrease in transparency, and that removing functional groups in the form of a sheet can result in discoloration. Therefore, in order to solve the problems of the conventional art, the present inventors have conducted studies with the aim of providing a fine fibrous cellulose from which substituents have been removed, which has improved transparency and is capable of suppressing coloration when made into a dispersion or sheet. [Means for solving the problem]

[0011] As a result of intensive investigations to solve the above problems, the present inventors have found that by controlling the amount of introduced substituents after substituent removal in fine fibrous cellulose to less than 0.5 mmol / g and further controlling the fiber width to 1 to 10 nm, fine fibrous cellulose can be obtained that has improved transparency and can suppress coloration when made into a dispersion or sheet. Specifically, the present invention has the following configuration.

[0012] [1] Fine fibrous cellulose having an introduced amount of substituents of less than 0.5 mmol / g and a fiber width of 1 to 10 nm. [2] The fine fibrous cellulose according to [1], having a nanofiber yield calculated by the following formula of 95% by mass or more; Nanofiber yield [mass%] = C / 0.1 × 100 Here, C is the concentration of fine fibrous cellulose contained in the supernatant obtained when an aqueous dispersion containing 0.1% by mass of fine fibrous cellulose is centrifuged at 12,000 G for 10 minutes. [3] The fine fibrous cellulose according to [1] or [2], wherein when the fine fibrous cellulose is dispersed in water at a concentration of 0.2% by mass, the haze of the aqueous dispersion is 5.0% or less. [4] The fine fibrous cellulose according to any one of [1] to [3], wherein the substituent is an anionic group. [5] The fine fibrous cellulose according to [4], wherein the anionic group is a phosphorus oxo acid group or a substituent derived from a phosphorus oxo acid group. [6] The fine fibrous cellulose according to any one of [1] to [5], which has a carbamide group. [7] A dispersion containing the fine fibrous cellulose according to any one of [1] to [6]. [8] A sheet comprising the fine fibrous cellulose according to any one of [1] to [6]. [9] A sheet containing fine fibrous cellulose having an introduced amount of substituents of less than 0.5 mmol / g and a fiber width of 1 to 10 nm, A sheet having a YI value of 1.5 or less at a thickness of 50 μm.

[10] The sheet according to [9], wherein when the sheet is heated at 160°C for 6 hours, the YI increase rate calculated by the following formula is 1500% or less; YI increase rate (%) = (yellowness of sheet after heating - yellowness of sheet before heating) / yellowness of sheet before heating × 100 In the above formula, the yellowness of the sheet is measured in accordance with JIS K 7373:2006.

[11] The sheet according to [9] or

[10] , which has a total light transmittance of 90.0% or more.

[12] The sheet according to any one of [9] to

[11] , having a haze of 5.0% or less.

[13] The sheet according to any one of [9] to

[12] , wherein the surface roughness of at least one surface is 10 nm or less.

[14] A step (A) of removing at least a portion of the substituents from a fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less; A method for producing fine fibrous cellulose, comprising step (A) followed by step (B) of uniformly dispersing the cellulose.

[15] The method for producing fine fibrous cellulose according to

[14] , wherein the amount of introduced substituents into the fine fibrous cellulose subjected to step (A) is 0.60 mmol / g or more.

[16] The method for producing fine fibrous cellulose according to

[14] or

[15] , wherein the substituent is an anionic group.

[17] The method for producing fine fibrous cellulose according to

[16] , wherein the anionic group is a phosphorus oxo acid group or a substituent derived from a phosphorus oxo acid group.

[18] The method for producing fine fibrous cellulose according to any one of

[14] to

[17] , wherein the fine fibrous cellulose subjected to step (A) has a carbamide group.

[19] The method for producing fine fibrous cellulose according to any one of

[14] to

[18] , further comprising a step of reducing the nitrogen content.

[20] The method for producing fine fibrous cellulose according to any one of

[14] to

[19] , wherein step (A) is carried out in a slurry state.

[21] The method for producing fibrous cellulose according to

[20] , further comprising a step of adjusting the pH of the slurry containing the fine fibrous cellulose to 3 to 8 before step (A).

[22] The fine fibrous cellulose according to any one of [1] to [6], which is used as a concrete pre-mixing agent.

[23] The fine fibrous cellulose according to any one of [1] to [6], which is for use in a lubricant.

[24] The fine fibrous cellulose according to any one of [1] to [6], which is for use in a mold-forming composition.

[25] The fine fibrous cellulose according to any one of [1] to [6], which is used as a dental material.

[26] The fine fibrous cellulose according to any one of [1] to [6], which is used as an abrasive.

[27] The fine fibrous cellulose according to any one of [1] to [6], which is used as a release agent.

[28] The fine fibrous cellulose according to any one of [1] to [6], which is used as a papermaking additive.

[29] A concrete pre-mixing agent containing the fine fibrous cellulose according to any one of [1] to [6].

[30] A lubricant comprising the fine fibrous cellulose according to any one of [1] to [6].

[31] A mold-forming composition comprising the fine fibrous cellulose according to any one of [1] to [6].

[32] A dental material comprising the fine fibrous cellulose according to any one of [1] to [6].

[33] An abrasive comprising the fine fibrous cellulose according to any one of [1] to [6].

[34] A release agent comprising the fine fibrous cellulose according to any one of [1] to [6].

[35] A papermaking additive comprising the fine fibrous cellulose according to any one of [1] to [6]. [Effects of the Invention]

[0013] According to the present invention, it is possible to obtain fine fibrous cellulose which, when made into a dispersion or a sheet, has improved transparency and is capable of suppressing coloration. [Brief explanation of the drawings]

[0014] [Figure 1] FIG. 1 is a graph showing the relationship between the amount of NaOH dropped onto a slurry containing fibrous cellulose having phosphorus oxo acid groups and pH. DETAILED DESCRIPTION OF THE INVENTION

[0015] The present invention will be described in detail below. The following description of the constituent elements may be based on representative embodiments or specific examples, but the present invention is not limited to such embodiments. In this specification, a numerical range expressed using "to" means a range that includes the numerical values ​​before and after "to" as the lower and upper limits.

[0016] (fine fibrous cellulose) The present invention relates to fine fibrous cellulose having an introduced substituent content of less than 0.5 mmol / g and a fiber width of 1 to 10 nm. In the present invention, by controlling the introduced substituent content after substituent removal in the fine fibrous cellulose to less than 0.5 mmol / g and further controlling the fiber width to 1 to 10 nm, transparency can be improved and coloration can be suppressed when the cellulose is made into a dispersion or sheet. The transparency and coloration degree when the cellulose is made into a dispersion or sheet can be evaluated by the haze and YI value of the dispersion or sheet, as described below.

[0017] In this embodiment, the amount of substituent introduced into the fine fibrous cellulose may be less than 0.5 mmol / g, preferably 0.4 mmol / g or less, more preferably 0.3 mmol / g or less, even more preferably 0.25 mmol / g or less, and particularly preferably 0.15 mmol / g or less. The amount of substituent introduced into the fine fibrous cellulose may be 0.0 mmol / g, but is preferably 0.03 mmol / g or more, more preferably 0.04 mmol / g or more, even more preferably 0.05 mmol / g or more, and particularly preferably 0.07 mmol / g or more.

[0018] The fiber width of the fine fibrous cellulose may be 1 to 10 nm, preferably 1 to 9 nm, more preferably 1 to 8 nm, and even more preferably 1 to 7 nm. Here, the fiber width of the fine fibrous cellulose is measured, for example, using electron microscopy as follows: First, the fine fibrous cellulose is dispersed in water so that the cellulose concentration is 0.01% by mass or more and 0.1% by mass or less, and cast onto a hydrophilically treated carbon film-coated grid. After drying, the grid is stained with uranyl acetate and observed using a transmission electron microscope (TEM, manufactured by JEOL Ltd., JEOL-2000EX). In this case, an arbitrary vertical or horizontal axis of the image width is assumed within the obtained image, and the magnification is adjusted so that 20 or more fibers intersect with the axis. After obtaining an observation image that satisfies these conditions, two random axes are drawn vertically and horizontally per image, and the fiber widths of the fibers intersecting the axes are visually determined. In this way, three non-overlapping observation images are taken, and the fiber width values ​​of the fibers intersecting the two axes are read for each image (20 or more x 2 x 3 = 120 or more). (1) Draw a line X at any point in the observed image, and 20 or more fibers intersect with the line X. (2) Draw a line Y that intersects the line perpendicularly within the same image, and 20 or more fibers intersect the line Y.

[0019] For a group of fine fibrous cellulose contained in a dispersion, the number-average fiber width can be calculated from the fiber width obtained by the above method. When fine fibrous cellulose is contained in a sheet, the fiber width of the fine fibrous cellulose in the sheet can be measured, for example, using atomic force microscopy as follows: First, a sheet containing fine fibrous cellulose is observed using an atomic force microscope (Veeco, NanoScope IIIa). Images are taken at a 500-nm viewing angle. Two random axes are drawn vertically and horizontally on each image, and 20 or more fibers intersecting the axes are randomly selected and their fiber widths are visually read. Three unique observation images are taken in this way, and the fiber widths of the fibers intersecting each of the two axes are read. (20 or more x 2 x 3 = 120 or more) (1) Draw a line X at any point in the observed image, and randomly select 20 or more fibers that intersect with the line X. (2) Draw a line Y that intersects the line perpendicularly within the same image, and randomly select 20 or more fibers that intersect with the line Y.

[0020] The fiber length of the fine fibrous cellulose is not particularly limited, but is preferably 0.1 μm or more and 1000 μm or less, more preferably 0.1 μm or more and 800 μm or less, and even more preferably 0.1 μm or more and 600 μm or less. By setting the fiber length within the above range, destruction of the crystalline regions of the fine fibrous cellulose can be suppressed. It also becomes possible to set the slurry viscosity of the fine fibrous cellulose within an appropriate range. The fiber length of the fine fibrous cellulose can be determined, for example, by image analysis using TEM, SEM, or AFM.

[0021] The fine fibrous cellulose preferably has a type I crystal structure. The presence of type I crystal structure in fine fibrous cellulose can be identified by a diffraction profile obtained from a wide-angle X-ray diffraction photograph using CuKα (λ=1.5418 Å) monochromated with graphite. Specifically, it can be identified by the presence of typical peaks at two positions: 2θ=14° to 17° and 2θ=22° to 23°. The proportion of type I crystal structure in the fine fibrous cellulose is, for example, preferably 30% or more, more preferably 40% or more, and even more preferably 50% or more. The degree of crystallinity can be determined by measuring the X-ray diffraction profile and using the pattern in a conventional manner (Seagal et al., Textile Research Journal, Vol. 29, p. 786, 1959).

[0022] The axial ratio (fiber length / fiber width) of the fine fibrous cellulose is not particularly limited, but is preferably, for example, 50 to 10,000, and more preferably 100 to 1,000. By setting the axial ratio to the above lower limit or more, it becomes easier to form a sheet containing the fine fibrous cellulose. By setting the axial ratio to the above upper limit or less, it is preferable in that, for example, when treating the fibrous cellulose as a dispersion, handling such as dilution becomes easier.

[0023] The fine fibrous cellulose in this embodiment has, for example, both crystalline regions and amorphous regions. Fine fibrous cellulose having both crystalline regions and amorphous regions and having an axial ratio within the above range is realized by the method for producing fine fibrous cellulose described below.

[0024] The cellulose components in the fine fibrous cellulose can be classified into α-cellulose components and hemicellulose components. A lower hemicellulose ratio is preferable because it is easier to obtain the effect of inhibiting yellowing over time and yellowing due to heat. The hemicellulose ratio of the fine fibrous cellulose of the present invention is preferably less than 30%, more preferably less than 25%, and even more preferably less than 20%.

[0025] The total amount of nitrogen contained in the fine fibrous cellulose and the free nitrogen contained in the fine fibrous cellulose dispersion (hereinafter sometimes referred to as the "nitrogen amount," "nitrogen amount contained in the fine fibrous cellulose," or "nitrogen amount in the fine fibrous cellulose") is preferably 0.08 mmol / g or less, more preferably 0.04 mmol / g or less, and even more preferably 0.02 mmol / g or less. The amount of nitrogen contained in the fine fibrous cellulose is preferably 0.001 mmol / g or more. The amount of nitrogen in the fine fibrous cellulose is measured by the following method. First, a dispersion containing fine fibrous cellulose is adjusted to a solids concentration of 1% by mass and decomposed by the Kjeldahl method (JIS K 0102:2016 44.1). After decomposition, the amount of ammonium ions (mmol) is measured by cation chromatography and divided by the amount of cellulose (g) used in the measurement to calculate the nitrogen content (mmol / g). The above-mentioned amount of nitrogen is the total amount of nitrogen bound to the fine fibrous cellulose by ionic and / or covalent bonds and free nitrogen dissolved in the dispersion that is not bound to the fine fibrous cellulose by ionic and / or covalent bonds.

[0026] In this embodiment, the amount of substituents introduced into the fine fibrous cellulose is less than 0.5 mmol / g, and the substituents referred to here are preferably anionic groups. That is, the fine fibrous cellulose of the present invention is obtained by subjecting fine fibrous cellulose having anionic groups to a substituent removal treatment, and the fine fibrous cellulose of the present invention is substituent-removed fine fibrous cellulose.

[0027] Examples of anionic groups include phosphorus oxoacid groups or substituents derived from phosphorus oxoacid groups (sometimes simply referred to as phosphorus oxoacid groups), carboxy groups or substituents derived from carboxy groups (sometimes simply referred to as carboxy groups), sulfone groups or substituents derived from sulfone groups (sometimes simply referred to as sulfone groups), and xanthate groups or substituents derived from xanthate groups (sometimes simply referred to as xanthate groups). When a sulfone group or a substituent derived from a sulfone group is introduced via an ester bond, the substituent may also be referred to as a sulfur oxoacid group or a substituent derived from a sulfur oxoacid group (sometimes simply referred to as a sulfur oxoacid group). Among these, the anionic group is preferably at least one selected from phosphorus oxoacid groups or substituents derived from phosphorus oxoacid groups and sulfone groups or substituents derived from sulfone groups, and more preferably a phosphorus oxoacid group or a substituent derived from a phosphorus oxoacid group.

[0028] The phosphorus oxo acid group or the substituent derived from the phosphorus oxo acid group is, for example, a substituent represented by the following formula (1). A plurality of substituents represented by the following formula (1) may be introduced into each fine fibrous cellulose. In this case, the plurality of introduced substituents represented by the following formula (1) may be the same or different.

[0029] [ka]

[0030] In formula (1), a, b, and n are natural numbers, and m is an arbitrary number (where a=b×m). At least one of the n α and α' is O. - and the rest are R or OR. Note that all of α and α' are O - The n α's may all be the same or may be different. b+ is a cation of one or more valences consisting of organic or inorganic substances.

[0031] R is a hydrogen atom, a saturated linear hydrocarbon group, a saturated branched hydrocarbon group, a saturated cyclic hydrocarbon group, an unsaturated linear hydrocarbon group, an unsaturated branched hydrocarbon group, an unsaturated cyclic hydrocarbon group, an aromatic group, or a group derived therefrom. In formula (1), n ​​is preferably 1.

[0032] Examples of saturated linear hydrocarbon groups include, but are not limited to, methyl, ethyl, n-propyl, and n-butyl groups. Examples of saturated branched hydrocarbon groups include, but are not limited to, i-propyl and t-butyl groups. Examples of saturated cyclic hydrocarbon groups include, but are not limited to, cyclopentyl and cyclohexyl groups. Examples of unsaturated linear hydrocarbon groups include, but are not limited to, vinyl and allyl groups. Examples of unsaturated branched hydrocarbon groups include, but are not limited to, i-propenyl and 3-butenyl groups. Examples of unsaturated cyclic hydrocarbon groups include, but are not limited to, cyclopentenyl and cyclohexenyl groups. Examples of aromatic groups include, but are not limited to, phenyl and naphthyl groups.

[0033] In addition, the derivative group in R is a carboxy group, a carboxylate group (-COO - ), a hydroxy group, an amino group, an ammonium group, or another such functional group, may be added or substituted, but is not particularly limited. The number of carbon atoms constituting the main chain of R is not particularly limited, but is preferably 20 or less, and more preferably 10 or less. By setting the number of carbon atoms constituting the main chain of R within the above range, the molecular weight of the phosphorus oxoacid group can be set within an appropriate range, facilitating penetration into the fiber raw material and increasing the yield of fine cellulose fibers. When multiple Rs are present in formula (1) or when multiple types of substituents represented by formula (1) are introduced into the fine fibrous cellulose, the multiple Rs may be the same or different.

[0034] βb+ is a monovalent or higher cation made of an organic or inorganic substance. Examples of the monovalent or higher cation made of an organic substance include organic onium ions. Examples of the organic onium ions include organic ammonium ions and organic onium ions. Examples of the organic ammonium ions include aliphatic ammonium ions and aromatic ammonium ions, and examples of the organic onium ions include aliphatic phosphonium ions and aromatic phosphonium ions. Examples of the monovalent or higher cation made of an inorganic substance include ions of alkali metals such as sodium, potassium, or lithium, ions of divalent metals such as calcium or magnesium, hydrogen ions, ammonium ions, etc. It should be noted that in formula (1), β b+ When a plurality of β b+ may be the same or different. The monovalent or higher cations consisting of organic or inorganic substances include β b+ Sodium or potassium ions are preferred because they are less likely to yellow when the fiber raw material containing the cation is heated and are easy to use industrially, but there is no particular limitation.

[0035] More specifically, examples of the phosphorus oxo acid group or a substituent derived from a phosphorus oxo acid group include a phosphate group (-POH), a salt of a phosphate group, a phosphorous acid (phosphonic acid) group (-POH), and a salt of a phosphite (phosphonic acid) group. The phosphorus oxo acid group or a substituent derived from a phosphorus oxo acid group may also be a group in which a phosphate group is condensed (e.g., a pyrophosphate group), a group in which a phosphonic acid is condensed (e.g., a polyphosphonic acid group), a phosphate ester group (e.g., a monomethyl phosphate group, a polyoxyethylene alkyl phosphate group), or an alkyl phosphonic acid group (e.g., a methylphosphonic acid group).

[0036] Furthermore, the sulfone group (sulfone group or a substituent derived from a sulfone group) is preferably a sulfur oxoacid group (sulfone oxoacid group or a substituent derived from a sulfur oxoacid group), and is preferably, for example, a substituent represented by the following formula (2). A plurality of substituents represented by the following formula (2) may be introduced into each fine fibrous cellulose. In this case, the plurality of introduced substituents represented by the following formula (2) may be the same or different.

[0037] [ka]

[0038] In the above structural formula, b and n are natural numbers, p is 0 or 1, and m is an arbitrary number (where 1 = b × m). When n is 2 or more, multiple p's may be the same number or different numbers. In the above structural formula, β b+ is a monovalent or higher cation made of an organic or inorganic substance. Examples of the monovalent or higher cation made of an organic substance include organic onium ions. Examples of the organic onium ions include organic ammonium ions and organic onium ions. Examples of the organic ammonium ions include aliphatic ammonium ions and aromatic ammonium ions, and examples of the organic onium ions include aliphatic phosphonium ions and aromatic phosphonium ions. Examples of the monovalent or higher cation made of an inorganic substance include ions of alkali metals such as sodium, potassium, or lithium, ions of divalent metals such as calcium or magnesium, hydrogen ions, ammonium ions, etc. Note that when multiple types of substituents represented by the above formula (2) are introduced into the fine fibrous cellulose, the multiple β b+ may be the same or different. The monovalent or higher cations consisting of organic or inorganic substances include β b+ Sodium or potassium ions are preferred because they are less likely to yellow when the fiber raw material containing the cation is heated and are easy to use industrially, but there is no particular limitation.

[0039] The amount of anionic groups introduced into the fine fibrous cellulose can be measured, for example, by neutralization titration, which involves measuring the change in pH while adding an alkali such as an aqueous sodium hydroxide solution to a slurry containing the obtained fine fibrous cellulose.

[0040] 1 is a graph showing the relationship between the amount of NaOH added dropwise to a slurry containing fine fibrous cellulose having phosphorus oxo acid groups and pH. The amount of phosphorus oxo acid groups introduced into the fine fibrous cellulose is measured, for example, as follows. First, a slurry containing fine fibrous cellulose is treated with a strongly acidic ion exchange resin. If necessary, the measurement object may be subjected to a defibration treatment similar to the defibration treatment step described below before the treatment with the strongly acidic ion exchange resin. Next, the change in pH is observed while adding aqueous sodium hydroxide solution, and a titration curve like the one shown in the upper part of Figure 1 is obtained. The titration curve shown in the upper part of Figure 1 plots the measured pH against the amount of alkali added, while the titration curve shown in the lower part of Figure 1 plots the pH increment (derivative value) (1 / mmol) against the amount of alkali added. In this neutralization titration, two points of maximum increment (derivative value of pH with respect to the amount of alkali added) are confirmed on the curve plotting the measured pH against the amount of alkali added. Of these, the first maximum increment obtained after starting to add alkali is called the first endpoint, and the next maximum increment obtained is called the second endpoint. The amount of alkali required from the start of titration to the first endpoint is equal to the amount of first dissociated acid of the fine fibrous cellulose contained in the slurry used for titration; the amount of alkali required from the first endpoint to the second endpoint is equal to the amount of second dissociated acid of the fine fibrous cellulose contained in the slurry used for titration; and the amount of alkali required from the start of titration to the second endpoint is equal to the total amount of dissociated acid of the fine fibrous cellulose contained in the slurry used for titration. The value obtained by dividing the amount of alkali required from the start of titration to the first endpoint by the solids content (g) in the slurry to be titrated is the amount of phosphorus oxo acid group introduced (mmol / g). Note that the term "amount of phosphorus oxo acid group introduced" (or "amount of phosphorus oxo acid group") simply refers to the amount of first dissociated acid. In Figure 1, the region from the start of titration to the first endpoint is referred to as Region 1, and the region from the first endpoint to the second endpoint is referred to as Region 2. For example, if the phosphorus oxoacid group is a phosphate group and this phosphate group undergoes condensation, the apparent amount of weakly acidic groups in the phosphorus oxoacid group (also referred to herein as the second dissociated acid amount) decreases, and the amount of alkali required in Region 2 is less than the amount required in Region 1. On the other hand, the amount of strongly acidic groups in the phosphorus oxoacid group (also referred to herein as the first dissociated acid amount) corresponds to the amount of phosphorus atoms regardless of whether condensation occurs. Furthermore, if the phosphorus oxoacid group is a phosphite group, the phosphorus oxoacid group no longer contains weakly acidic groups, and the amount of alkali required in Region 2 is reduced or may even be zero. In this case, there is only one point on the titration curve where the pH increment is maximized.

[0041] The above-mentioned amount of introduced phosphorus oxoacid groups (mmol / g) indicates the amount of phosphorus oxoacid groups in the acid-form fine fibrous cellulose (hereinafter referred to as the amount of phosphorus oxoacid groups (acid form)), since the denominator indicates the mass of the acid-form fine fibrous cellulose. On the other hand, when the counter ions of the phosphorus oxoacid groups are substituted with any cation C so as to be charge equivalent, the amount of phosphorus oxoacid groups in the fine fibrous cellulose with the cation C as the counter ion (hereinafter referred to as the amount of phosphorus oxoacid groups (C form)) can be determined by converting the denominator to the mass of the fine fibrous cellulose when the cation C is the counter ion. That is, it is calculated using the following formula. Amount of phosphorus oxoacid group (C type) = Amount of phosphorus oxoacid group (acid type) / {1 + (W - 1) × A / 1000} A [mmol / g]: total amount of anions derived from phosphorus oxoacid groups in fine fibrous cellulose (total amount of dissociated acid from phosphorus oxoacid groups) W: Formula weight per valence of cation C (for example, Na is 23, Al is 9)

[0042] When measuring the amount of anionic groups by titration, adding too much sodium hydroxide solution or titrating too quickly can result in a lower anionic group content than expected, making it difficult to obtain accurate values. For example, an appropriate amount and titration interval is desirable, such as titrating 10 to 50 μL of 0.1 N sodium hydroxide solution every 5 to 30 seconds. To eliminate the influence of carbon dioxide dissolved in the fine fibrous cellulose-containing slurry, it is also desirable to measure the amount of anionic groups by blowing an inert gas such as nitrogen gas into the slurry from 15 minutes before the start of titration until the end of titration.

[0043] The amount of sulfonic groups introduced into fine fibrous cellulose can be calculated by freeze-drying a slurry containing fine fibrous cellulose and then measuring the sulfur content of the pulverized sample. Specifically, the slurry containing fine fibrous cellulose is freeze-dried and the pulverized sample is subjected to pressure-heat decomposition using nitric acid in a sealed container, then appropriately diluted and the sulfur content is measured by ICP-OES. The value calculated by dividing by the bone dry mass of the fine fibrous cellulose tested is taken as the amount of sulfonic groups (unit: mmol / g) of the fine fibrous cellulose.

[0044] The amount of xanthate groups introduced into microfibrous cellulose can be measured using the Bredee method as follows. First, 40 mL of saturated ammonium chloride solution is added to 1.5 parts by mass (bone dry mass) of microfibrous cellulose. The sample is crushed with a glass rod and mixed thoroughly. After leaving for approximately 15 minutes, the sample is filtered through GFP filter paper (GS-25, manufactured by Advantec) and thoroughly washed with saturated ammonium chloride solution. Next, the sample, along with the GFP filter paper, is placed in a 500 mL tall beaker, and 50 mL of 0.5 M sodium hydroxide solution (5 °C) is added, stirred, and left for 15 minutes. Phenolphthalein solution is added until the solution turns pink, and then 1.5 M acetic acid is added. The point at which the solution changes from pink to colorless is considered the neutralization point. After neutralization, 250 mL of distilled water is added and stirred thoroughly. 10 mL of 1.5 M acetic acid and 10 mL of 0.05 mol / L iodine solution are added using a volumetric pipette. Then, this solution is titrated with 0.05 mol / L sodium thiosulfate solution, and the amount of xanthate groups is calculated using the following formula from the titration amount of sodium thiosulfate and the bone dry mass of the fine fibrous cellulose. Amount of xanthate group (mmol / g) = (0.05 × 10 × 2 - 0.05 × sodium thiosulfate titration (mL)) / 1000 / bone-dry mass of fine fibrous cellulose (g)

[0045] In this embodiment, the fine fibrous cellulose preferably has a carbamide group. In this specification, the carbamide group is preferably a group represented by the following structural formula:

[0046] [ka]

[0047] In the above structural formula, R is a hydrogen atom, a saturated linear hydrocarbon group, a saturated branched hydrocarbon group, a saturated cyclic hydrocarbon group, an unsaturated linear hydrocarbon group, an unsaturated branched hydrocarbon group, an aromatic group, or a group derived from any of these. Among these, it is particularly preferable that R is a hydrogen atom.

[0048] The amount of carbamide groups introduced into the fine fibrous cellulose is preferably 0.001 mmol / g or more. Furthermore, the amount of carbamide groups introduced into the fine fibrous cellulose is preferably 0.08 mmol / g or less, more preferably 0.04 mmol / g or less, and even more preferably 0.02 mmol / g or less. Here, the amount of carbamide groups introduced into the fine fibrous cellulose can be calculated by freeze-drying a slurry containing the fine fibrous cellulose, followed by pulverizing the resulting sample and subjecting the sample to trace nitrogen analysis. The amount of carbamide groups introduced per unit mass of the fine fibrous cellulose (mmol / g) can be calculated by dividing the nitrogen content (g / g) per unit mass of the fine fibrous cellulose obtained by trace nitrogen analysis by the atomic weight of nitrogen.

[0049] In this embodiment, when the fine fibrous cellulose is dispersed in water at a concentration of 0.1% by mass and the nanofiber yield is calculated using the following formula, the nanofiber yield is preferably 95% by mass or more, more preferably 96% by mass or more. The nanofiber yield may also be 100% by mass. Nanofiber yield [mass%] = C / 0.1 × 100 Here, C is the concentration of fine fibrous cellulose contained in the supernatant obtained when an aqueous dispersion containing 0.1% by mass of fine fibrous cellulose is centrifuged at 12,000 G for 10 minutes.

[0050] Furthermore, in this embodiment, when the fine fibrous cellulose is dispersed in water at a concentration of 0.2% by mass, the haze of the aqueous dispersion is preferably 5.0% or less, more preferably 4.0% or less, and even more preferably 3.0% or less. The haze of the aqueous dispersion may be 0%. If the haze of a 0.2% by mass aqueous dispersion is within the above range, the dispersion can be determined to be transparent. Here, the haze of the aqueous dispersion is a value measured in accordance with JIS K 7136:2000 using a haze meter and a glass cell for liquids with an optical path length of 1 cm. The zero-point measurement is performed using ion-exchanged water placed in the same glass cell. Furthermore, the dispersion to be measured is allowed to stand for 24 hours in an environment of 23°C and relative humidity of 50% before measurement, and the liquid temperature of the dispersion is adjusted to 23°C.

[0051] (Method of producing fine fibrous cellulose) The present invention also relates to a method for producing fine fibrous cellulose. The method for producing fine fibrous cellulose of the present invention includes step (A) of removing at least a portion of the substituents from fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less, and step (B) of uniformly dispersing the resulting cellulose after step (A). The substituents on the fine fibrous cellulose subjected to step (A) are preferably anionic groups, more preferably phosphorus oxo acid groups or substituents derived from phosphorus oxo acid groups. Furthermore, the fine fibrous cellulose subjected to step (A) preferably contains carbamide groups.

[0052] (Process (A)) Step (A) is a step of removing at least a portion of the substituents from fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less. First, a method for producing fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less (fine fibrous cellulose to be subjected to step (A)) will be described below.

[0053] <Fiber raw materials> The fine fibrous cellulose used in step (A) is produced from a cellulose-containing fiber raw material. The cellulose-containing fiber raw material is not particularly limited, but pulp is preferably used because of its availability and low cost. Examples of pulp include wood pulp, non-wood pulp, and deinked pulp. Examples of wood pulp include, but are not limited to, chemical pulps such as hardwood kraft pulp (LBKP), softwood kraft pulp (NBKP), sulfite pulp (SP), dissolving pulp (DP), soda pulp (AP), unbleached kraft pulp (UKP), and oxygen-bleached kraft pulp (OKP); semi-chemical pulps such as semi-chemical pulp (SCP) and chemi-groundwood pulp (CGP); and mechanical pulps such as groundwood pulp (GP) and thermomechanical pulp (TMP, BCTMP). Non-wood pulps include, but are not limited to, cotton-based pulps such as cotton linters and cotton lint, and non-wood pulps such as hemp, straw, and bagasse. Deinked pulps include, but are not limited to, deinked pulp made from recycled paper. The pulp of this embodiment may be used alone or in combination with two or more of the above. Among the above pulps, wood pulp and deinked pulp are preferred from the viewpoint of ease of availability. Furthermore, among wood pulps, chemical pulps are more preferred, and kraft pulp, sulfite pulp, and dissolving pulp are even more preferred, from the viewpoints of a high cellulose content, a high yield of fine fibrous cellulose during defibration treatment, and the small amount of cellulose decomposition in the pulp, resulting in the production of long-fiber fine fibrous cellulose with a large axial ratio. Note that the use of long-fiber fine fibrous cellulose with a large axial ratio tends to increase viscosity.

[0054] Examples of cellulose-containing fiber raw materials include cellulose contained in sea squirts and bacterial cellulose produced by acetic acid bacteria.Furthermore, instead of cellulose-containing fiber raw materials, fibers formed from linear nitrogen-containing polysaccharide polymers such as chitin and chitosan can also be used.

[0055] <Phosphorus oxoacid group introduction step> The fine fibrous cellulose subjected to step (A) has a substituent. Therefore, the process for producing the fine fibrous cellulose subjected to step (A) preferably includes a substituent introduction step, and more preferably an anionic group introduction step. An example of the anionic group introduction step is a phosphorus oxo acid group introduction step. The phosphorus oxo acid group introduction step is a step in which at least one compound selected from compounds capable of introducing a phosphorus oxo acid group by reacting with a hydroxyl group possessed by a cellulose-containing fiber raw material (hereinafter also referred to as "compound A") is allowed to act on the cellulose-containing fiber raw material. This step results in the production of a fiber into which a phosphorus oxo acid group has been introduced.

[0056] In the phosphorus oxoacid group introduction step according to this embodiment, the reaction of the cellulose-containing fiber raw material with compound A is preferably carried out in the presence of at least one selected from urea and its derivatives (hereinafter also referred to as "compound B").

[0057] An example of a method for reacting compound A with a fiber raw material in the presence of compound B is a method in which compound A and compound B are mixed with a fiber raw material in a dry, wet, or slurry state. Among these, using a fiber raw material in a dry or wet state is preferred because of the high uniformity of the reaction, and using a fiber raw material in a dry state is particularly preferred. The form of the fiber raw material is not particularly limited, but is preferably in the form of a cotton or thin sheet. Compound A and compound B may be added to the fiber raw material in the form of a powder, a solution dissolved in a solvent, or a melted state obtained by heating to or above their melting point. Among these, adding compound A and compound B in the form of a solution dissolved in a solvent, particularly an aqueous solution, is preferred because of the high uniformity of the reaction. Compound A and compound B may be added to the fiber raw material simultaneously, separately, or as a mixture. The method for adding compound A and compound B is not particularly limited. When compound A and compound B are in the form of a solution, the fiber raw material may be immersed in the solution to absorb the liquid and then removed, or the solution may be added dropwise to the fiber raw material. Alternatively, the required amounts of compound A and compound B may be added to the fiber raw material, or excess amounts of compound A and compound B may be added to the fiber raw material, and then the excess compound A and compound B may be removed by squeezing or filtration.

[0058] The compound A used in this embodiment may be any compound that has a phosphorus atom and is capable of forming an ester bond with cellulose, and examples thereof include, but are not limited to, phosphoric acid or a salt thereof, phosphorous acid or a salt thereof, dehydrated condensed phosphoric acid or a salt thereof, and phosphoric anhydride (diphosphorus pentoxide). Phosphoric acid can be used with various purities, such as 100% phosphoric acid (orthophosphoric acid) or 85% phosphoric acid. Phosphorous acid can be 99% phosphorous acid (phosphonic acid). Dehydrated condensed phosphoric acid is formed by condensing two or more molecules of phosphoric acid through a dehydration reaction, and examples thereof include pyrophosphoric acid and polyphosphoric acid. Phosphates, phosphites, and dehydrated condensed phosphates include lithium salts, sodium salts, potassium salts, and ammonium salts of phosphoric acid, phosphorous acid, or dehydrated condensed phosphoric acid, which can be neutralized to various degrees. Among these, from the viewpoints of high efficiency of introduction of phosphate groups, ease of further improving defibration efficiency in the defibration step described below, low cost, and ease of industrial application, phosphoric acid, sodium salt of phosphoric acid, potassium salt of phosphoric acid, ammonium salt of phosphoric acid, or phosphorous acid, sodium salt of phosphorous acid, potassium salt of phosphorous acid, ammonium salt of phosphorous acid are preferred, and phosphoric acid, sodium dihydrogen phosphate, disodium hydrogen phosphate, ammonium dihydrogen phosphate, or phosphorous acid, sodium phosphite are more preferred.

[0059] The amount of compound A added to the fiber raw material is not particularly limited, but for example, when the amount of compound A added is converted into the amount of phosphorus atoms, the amount of phosphorus atoms added to the fiber raw material (bone dry mass) is preferably 0.5% by mass or more and 100% by mass or less, more preferably 1% by mass or more and 50% by mass or less, and even more preferably 2% by mass or more and 30% by mass or less. By setting the amount of phosphorus atoms added to the fiber raw material within the above range, the yield of fine fibrous cellulose can be further improved. On the other hand, by setting the amount of phosphorus atoms added to the fiber raw material to the above upper limit or less, a balance can be achieved between the yield improvement effect and costs.

[0060] As described above, the compound B used in this embodiment is at least one selected from urea and its derivatives. Examples of the compound B include urea, biuret, 1-phenylurea, 1-benzylurea, 1-methylurea, and 1-ethylurea. From the viewpoint of improving the uniformity of the reaction, it is preferable to use an aqueous solution of compound B. Furthermore, from the viewpoint of further improving the uniformity of the reaction, it is preferable to use an aqueous solution in which both compound A and compound B are dissolved.

[0061] The amount of compound B added relative to the fiber raw material (bone dry mass) is not particularly limited, but is preferably, for example, 1% by mass or more and 500% by mass or less, more preferably 10% by mass or more and 400% by mass or less, and even more preferably 100% by mass or more and 350% by mass or less.

[0062] In the reaction of a fiber raw material containing cellulose with compound A, the reaction system may contain, in addition to compound B, amides or amines, for example. Examples of amides include formamide, dimethylformamide, acetamide, and dimethylacetamide. Examples of amines include methylamine, ethylamine, trimethylamine, triethylamine, monoethanolamine, diethanolamine, triethanolamine, pyridine, ethylenediamine, and hexamethylenediamine. Among these, triethylamine in particular is known to act as a good reaction catalyst.

[0063] In the phosphorus oxo acid group introduction step, it is preferable to add or mix compound A and compound B to the fiber raw material and then heat-treat the fiber raw material. The heat treatment temperature is preferably selected so that the phosphorus oxo acid group can be efficiently introduced while suppressing thermal decomposition and hydrolysis of the fiber. The heat treatment temperature is preferably, for example, from 50°C to 300°C, more preferably from 100°C to 250°C, and even more preferably from 130°C to 200°C. Furthermore, various types of equipment having heat transfer media can be used for the heat treatment, including, for example, a hot air dryer, agitator dryer, rotary dryer, disk dryer, roll-type heater, plate-type heater, fluidized-bed dryer, band-type dryer, filtration dryer, vibration fluidized dryer, flash dryer, reduced-pressure dryer, infrared heater, far-infrared heater, microwave heater, and high-frequency dryer.

[0064] In the heat treatment according to this embodiment, for example, compound A may be added to a thin sheet-like fiber raw material by impregnation or other methods, followed by heating, or heating while kneading or stirring the fiber raw material and compound A in a kneader or the like. This makes it possible to suppress unevenness in the concentration of compound A in the fiber raw material and more uniformly introduce phosphorus oxoacid groups onto the surface of the cellulose fibers contained in the fiber raw material. This is thought to be because, when water molecules move to the surface of the fiber raw material as it dries, dissolved compound A is attracted to the water molecules by surface tension, preventing it from migrating to the surface of the fiber raw material (i.e., causing unevenness in the concentration of compound A).

[0065] Furthermore, the heating device used for the heat treatment is preferably one that can constantly discharge, to the outside of the device system, for example, the water retained in the slurry and the water generated in the dehydration condensation (phosphorylation) reaction between compound A and hydroxyl groups contained in cellulose or the like in the fiber raw material. Examples of such heating devices include an oven with a blower system. Constantly discharging the water from the device system can suppress the hydrolysis reaction of phosphate ester bonds, which is the reverse reaction of phosphate esterification, as well as the acid hydrolysis of sugar chains in the fiber. This makes it possible to obtain fine fibrous cellulose with a high axial ratio.

[0066] The heat treatment time is preferably from 1 second to 300 minutes after the water content has been substantially removed from the fiber raw material, more preferably from 1 second to 1,000 seconds, and even more preferably from 10 seconds to 800 seconds. In this embodiment, the amount of phosphorus oxo acid groups introduced can be kept within a preferred range by setting the heating temperature and heating time within appropriate ranges.

[0067] The phosphorus oxo acid group introduction step may be carried out at least once, but may also be carried out twice or more. By carrying out the phosphorus oxo acid group introduction step twice or more, a large number of phosphorus oxo acid groups can be introduced into the fiber raw material.

[0068] The amount of phosphorus oxo acid groups introduced in the phosphorus oxo acid group introduction step is preferably 0.60 mmol / g or more, more preferably 0.70 mmol / g or more, even more preferably 0.80 mmol / g or more, even more preferably 1.00 mmol / g or more, and particularly preferably 1.20 mmol / g or more per gram (mass) of fiber raw material. The amount of phosphorus oxo acid groups introduced is, for example, preferably 5.20 mmol / g or less, more preferably 3.65 mmol / g or less, and even more preferably 3.00 mmol / g or less per gram (mass) of fiber raw material. The fact that the amount of phosphorus oxo acid groups introduced in the phosphorus oxo acid group introduction step is within the above range means that the amount of substituents introduced into the fine fibrous cellulose used in step (A) is within the above range. By ensuring that the amount of phosphorus oxo acid groups introduced is within the above range, the amount of substituents introduced into the fine fibrous cellulose used in step (A) can be kept within the above range, which makes it easier to produce fine fibrous cellulose with a final fiber width of 10 nm or less. Furthermore, the transparency of the dispersion and sheet containing the fine fibrous cellulose of the present invention can be more effectively improved.

[0069] <Sulfonic acid group (sulfur oxoacid group) introduction step> The process for producing fine fibrous cellulose subjected to step (A) may include a sulfonic acid group introduction step as an anionic group introduction step, in which hydroxyl groups in a cellulose-containing fiber raw material react with sulfonic acid to obtain cellulose fibers having sulfonic acid groups (sulfonic acid-introduced fibers).

[0070] In the sulfonic acid group introduction step, instead of compound A in the above-described <Phosphorus Oxo Acid Group Introduction Step>, at least one compound (hereinafter also referred to as "compound C") selected from compounds capable of introducing sulfonic acid groups by reacting with hydroxyl groups in a cellulose-containing fiber raw material is used. Compound C may be any compound containing a sulfur atom and capable of forming an ester bond with cellulose, including, but not limited to, sulfuric acid or its salts, sulfurous acid or its salts, and sulfuric acid amides. Sulfuric acid of various purities can be used, for example, 96% sulfuric acid (concentrated sulfuric acid). Sulfurous acid can be 5% aqueous sulfurous acid. Sulfates or sulfites can be lithium, sodium, potassium, or ammonium salts of sulfates or sulfites, which can be neutralized to various degrees. Sulfamic acid or the like can be used as the sulfuric acid amide. In the sulfonic acid group introduction step, it is preferable to use compound B in the above-described <Phosphorus Oxo Acid Group Introduction Step> in the same manner.

[0071] In the sulfonic acid introduction step, the cellulose raw material is preferably mixed with an aqueous solution containing sulfonic acid and urea and / or a urea derivative, and then the cellulose raw material is subjected to a heat treatment. The heat treatment temperature is preferably selected so that sulfonic acid groups can be efficiently introduced while suppressing thermal decomposition and hydrolysis of the fiber. The heat treatment temperature is preferably 100°C or higher, more preferably 120°C or higher, and even more preferably 150°C or higher. The heat treatment temperature is preferably 300°C or lower, more preferably 250°C or lower, and even more preferably 200°C or lower.

[0072] In the heat treatment step, heating is preferably performed until substantially all moisture is removed. Therefore, the heat treatment time varies depending on the amount of moisture contained in the cellulose raw material and the amount of aqueous solution containing sulfonic acid and urea and / or a urea derivative added, but is preferably, for example, 10 to 10,000 seconds. For the heat treatment, various devices having a heat medium can be used, such as a hot air dryer, a stirring dryer, a rotary dryer, a disk dryer, a roll-type heater, a plate-type heater, a fluidized bed dryer, a band-type dryer, a filtration dryer, a vibration fluidized dryer, an airflow dryer, a reduced-pressure dryer, an infrared heater, a far-infrared heater, a microwave heater, or a high-frequency dryer.

[0073] The amount of sulfonic groups introduced in the sulfonic group introduction step is preferably 0.60 mmol / g or more, more preferably 0.70 mmol / g or more, even more preferably 0.80 mmol / g or more, even more preferably 1.00 mmol / g or more, and particularly preferably 1.20 mmol / g or more per gram (mass) of fiber raw material. The amount of sulfonic groups introduced is preferably 5.00 mmol / g or less, more preferably 3.00 mmol / g or less, per gram (mass) of fiber raw material. The fact that the amount of sulfonic groups introduced in the sulfonic group introduction step is within the above range means that the amount of substituents introduced into the fine fibrous cellulose used in step (A) is within the above range. By setting the amount of sulfonic groups introduced within the above range, the amount of substituents introduced into the fine fibrous cellulose used in step (A) can be set within the above range, which makes it easier to produce fine fibrous cellulose having a fiber width of 10 nm or less. Furthermore, the transparency of the dispersion or sheet containing the fine fibrous cellulose of the present invention can be more effectively improved.

[0074] <Xanthate group introduction step> The process for producing fine fibrous cellulose subjected to step (A) may include a xanthate group introduction step as an anionic group introduction step. The xanthate group introduction step substitutes hydroxyl groups in a fiber raw material containing cellulose with xanthate groups represented by the following formula (2), thereby obtaining cellulose fibers having xanthate groups (xanthate group-introduced fibers). -OCSS - M + ……(2) where M + is at least one selected from the group consisting of hydrogen ions, monovalent metal ions, ammonium ions, and aliphatic or aromatic ammonium ions.

[0075] In the xanthate group introduction process, the cellulose-containing fiber raw material is first treated with an alkaline solution to obtain alkali cellulose. Examples of alkaline solutions include an aqueous alkali metal hydroxide solution and an aqueous alkaline earth metal hydroxide solution. Among these, the alkaline solution is preferably an aqueous alkali metal hydroxide solution such as sodium hydroxide or potassium hydroxide, and particularly preferably an aqueous sodium hydroxide solution. When the alkaline solution is an aqueous alkali metal hydroxide solution, the alkali metal hydroxide concentration in the aqueous alkali metal hydroxide solution is preferably 4% by mass or more, more preferably 5% by mass or more. Furthermore, the alkali metal hydroxide concentration in the aqueous alkali metal hydroxide solution is preferably 9% by mass or less. By setting the alkali metal hydroxide concentration at or above the lower limit, the mercerization of cellulose can be sufficiently promoted, the amount of by-products generated during the subsequent xanthation can be reduced, and as a result, the yield of xanthate group-introduced fiber can be increased. This allows the defibration process described below to be performed more effectively. Furthermore, by setting the alkali metal hydroxide concentration to the above upper limit or less, it is possible to prevent the aqueous alkali metal hydroxide solution from penetrating into the crystalline regions of cellulose while allowing mercerization to proceed, which makes it easier to maintain the cellulose type I crystal structure and further increases the yield of fine fibrous cellulose.

[0076] The alkali treatment time is preferably 30 minutes or more, more preferably 1 hour or more. The alkali treatment time is preferably 6 hours or less, more preferably 5 hours or less. By setting the alkali treatment time within the above range, the final yield can be increased, and productivity can be improved.

[0077] The alkali cellulose obtained by the alkali treatment is preferably subjected to solid-liquid separation to remove as much aqueous solution as possible. This reduces the water content during the subsequent xanthate treatment, thereby accelerating the reaction. As a method for solid-liquid separation, a general dehydration method such as centrifugation or filtration can be used. The concentration of alkali metal hydroxide contained in the alkali cellulose after solid-liquid separation is preferably 3% by mass or more and 8% by mass or less based on the total mass of the alkali cellulose after solid-liquid separation.

[0078] In the xanthate group introduction step, a xanthate treatment step is carried out after alkali treatment. In the xanthate treatment step, alkali cellulose is reacted with carbon disulfide (CS2) to form (-O - Na + ) group (-OCSS - Na + ) group to obtain xanthate group-introduced fibers. In the above, the metal ions introduced into the alkali cellulose are typically Na + However, similar reactions occur with other alkali metal ions.

[0079] In the xanthation treatment, it is preferable to supply 10% by mass or more of carbon disulfide relative to the bone dry mass of cellulose in the alkali cellulose. Furthermore, in the xanthation treatment, the contact time between carbon disulfide and alkali cellulose is preferably 30 minutes or more, more preferably 1 hour or more. Although the contact of carbon disulfide with alkali cellulose allows xanthation to proceed quickly, it takes time for carbon disulfide to penetrate into the interior of the alkali cellulose, so it is preferable to set the reaction time within the above range. On the other hand, the contact time between carbon disulfide and alkali cellulose can be 6 hours or less, which allows sufficient penetration into the alkali cellulose mass after dehydration, allowing reactive xanthation to be almost completed.

[0080] The reaction temperature in the xanthate treatment is preferably 46 ° C or less. By setting the reaction temperature within the above range, it is easy to suppress the decomposition of alkali cellulose. In addition, by setting the reaction temperature within the above range, it is easy to react uniformly, so it is possible to suppress the generation of by-products, and further, it is also possible to suppress the removal of the generated xanthate group.

[0081] The amount of xanthate groups introduced in the xanthate group introduction step is preferably 0.60 mmol / g or more per 1 g (mass) of fiber raw material, more preferably 0.70 mmol / g or more, even more preferably 0.80 mmol / g or more, even more preferably 1.00 mmol / g or more, and particularly preferably 1.20 mmol / g or more. Furthermore, the amount of xanthate groups introduced is, for example, preferably 5.00 mmol / g or less per 1 g (mass) of fiber raw material, more preferably 3.00 mmol / g or less. The fact that the amount of xanthate groups introduced in the xanthate group introduction step is within the above range means that the amount of substituents introduced into the fine fibrous cellulose used in step (A) is within the above range. By setting the amount of xanthate groups introduced within the above range, the amount of substituents introduced into the fine fibrous cellulose used in step (A) can be set within the above range, making it easier to produce fine fibrous cellulose with a fiber width of 10 nm or less. Furthermore, the transparency of the dispersion or sheet containing the fine fibrous cellulose of the present invention can be more effectively improved.

[0082] <Cleaning process> In the production process of fine fibrous cellulose to be subjected to step (A), a washing step can be carried out on the anionic group-introduced fibers, if necessary. The washing step is carried out by washing the anionic group-introduced fibers with water or an organic solvent, for example. The washing step may be carried out after each step described below, and the number of washings carried out in each washing step is not particularly limited.

[0083] <Alkali treatment process> In the process for producing fine fibrous cellulose subjected to step (A), the fiber raw material may be subjected to an alkali treatment between the anionic group introduction step and the defibration treatment step described below. The alkali treatment method is not particularly limited, but an example thereof is a method in which the anionic group-introduced fiber is immersed in an alkali solution.

[0084] The alkaline compound contained in the alkaline solution is not particularly limited and may be an inorganic alkaline compound or an organic alkaline compound. In this embodiment, it is preferable to use, for example, sodium hydroxide or potassium hydroxide as the alkaline compound because of their high versatility. The solvent contained in the alkaline solution may be either water or an organic solvent. Among these, the solvent contained in the alkaline solution is preferably a polar solvent including water or a polar organic solvent such as an alcohol, and more preferably an aqueous solvent including at least water. As the alkaline solution, for example, an aqueous sodium hydroxide solution or an aqueous potassium hydroxide solution is preferable because of their high versatility.

[0085] The temperature of the alkaline solution in the alkaline treatment step is not particularly limited, but is preferably, for example, from 5°C to 80°C, and more preferably from 10°C to 60°C. The immersion time of the anionic group-introduced fiber in the alkaline solution in the alkaline treatment step is not particularly limited, but is, for example, preferably from 5 minutes to 30 minutes, and more preferably from 10 minutes to 20 minutes. The amount of alkaline solution used in the alkaline treatment is not particularly limited, but is, for example, preferably from 100% by mass to 100,000% by mass, and more preferably from 1,000% by mass to 10,000% by mass, based on the absolute dry mass of the anionic group-introduced fiber.

[0086] In order to reduce the amount of alkaline solution used in the alkaline treatment step, the anionic group-introduced fiber may be washed with water or an organic solvent after the anionic group-introducing step and before the alkaline treatment step. From the viewpoint of improving handleability, it is preferable to wash the alkaline-treated anionic group-introduced fiber with water or an organic solvent after the alkaline treatment step and before the defibrating treatment step.

[0087] <Acid treatment process> In the production process of the fine fibrous cellulose subjected to step (A), the fibrous raw material may be subjected to an acid treatment between the step of introducing anionic groups and the defibration treatment step described below. For example, the anionic group introduction step, acid treatment, alkali treatment, and defibration treatment may be performed in this order.

[0088] The acid treatment method is not particularly limited, but examples include a method of immersing the fiber raw material in an acid-containing acid solution. The concentration of the acid solution used is not particularly limited, but is preferably 10% by mass or less, and more preferably 5% by mass or less. The pH of the acid solution used is also not particularly limited, but is preferably 0 to 4, and more preferably 1 to 3. Examples of the acid contained in the acid solution include inorganic acids, sulfonic acids, and carboxylic acids. Examples of inorganic acids include sulfuric acid, nitric acid, hydrobromic acid, hydroiodic acid, hypochlorous acid, chlorous acid, chloric acid, perchloric acid, phosphoric acid, and boric acid. Examples of sulfonic acids include methanesulfonic acid, ethanesulfonic acid, benzenesulfonic acid, p-toluenesulfonic acid, and trifluoromethanesulfonic acid. Examples of carboxylic acids include formic acid, acetic acid, citric acid, gluconic acid, lactic acid, oxalic acid, and tartaric acid. Among these, hydrochloric acid or sulfuric acid is particularly preferred.

[0089] The temperature of the acid solution in the acid treatment is not particularly limited, but is preferably, for example, 5°C to 100°C, and more preferably, 20°C to 90°C. The immersion time in the acid solution in the acid treatment is not particularly limited, but is, for example, preferably, 5 minutes to 120 minutes, and more preferably, 10 minutes to 60 minutes. The amount of the acid solution used in the acid treatment is not particularly limited, but is, for example, preferably, 100 mass% to 100,000 mass%, and more preferably, 1,000 mass% to 10,000 mass%, based on the absolute dry mass of the fiber raw material.

[0090] <Nitrogen removal treatment> The process for producing fine fibrous cellulose subjected to step (A) may further include a step of reducing the amount of nitrogen introduced into the fibrous cellulose or the amount of nitrogen present in the system (nitrogen removal treatment step). By reducing the amount of nitrogen, fine fibrous cellulose that can further suppress discoloration can be obtained. The nitrogen removal treatment step may be performed after the uniform dispersion treatment step in step (B) described below, but is preferably performed before the uniform dispersion treatment step in step (B) described below. It is also preferably performed before the defibration treatment step in step (A) described below.

[0091] In the nitrogen removal treatment step, it is preferable to adjust the pH of the slurry containing the anionic group-introduced fiber to 10 or more and then perform a heat treatment. In the heat treatment, the liquid temperature of the slurry is preferably 50°C or more and 100°C or less, and the heating time is preferably 15 minutes or more and 180 minutes or less. When adjusting the pH of the slurry containing the anionic group-introduced fiber, it is preferable to add an alkali compound that can be used in the above-mentioned alkali treatment step to the slurry.

[0092] After the nitrogen removal treatment step, the anionic group-introduced fiber may be subjected to a washing step, if necessary. The washing step is carried out by washing the anionic group-introduced fiber with, for example, water or an organic solvent. The number of washing steps to be carried out in each washing step is not particularly limited.

[0093] <Defibrillation processing> The production process for fine fibrous cellulose subjected to step (A) includes a defibration treatment step. This produces fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less. In the defibration treatment step, for example, a defibration treatment device can be used. The defibration treatment device is not particularly limited, but examples that can be used include a high-speed defibrator, a grinder (stone mill), a high-pressure homogenizer, an ultra-high-pressure homogenizer, a high-pressure collision grinder, a ball mill, a bead mill, a disk refiner, a conical refiner, a twin-screw kneader, a vibration mill, a homomixer under high-speed rotation, an ultrasonic disperser, or a beater. Among the above defibration treatment devices, it is more preferable to use a high-speed defibrator, a high-pressure homogenizer, or an ultra-high-pressure homogenizer, which are less affected by the grinding media and have less risk of contamination.

[0094] The processing conditions in the defibration processing step are not particularly limited, but for example, when a high-pressure homogenizer is used, the pressure during processing is preferably 1 MPa or more and 350 MPa or less, more preferably 10 MPa or more and 300 MPa or less, and even more preferably 50 MPa or more and 250 MPa or less.

[0095] In the defibration process, for example, the anionic group-introduced fibers are preferably diluted with a dispersion medium to form a slurry. The dispersion medium can be one or more selected from water and organic solvents such as polar organic solvents. The polar organic solvent is not particularly limited, but examples thereof include alcohols, polyhydric alcohols, ketones, ethers, esters, and aprotic polar solvents. Examples of alcohols include methanol, ethanol, isopropanol, n-butanol, and isobutyl alcohol. Examples of polyhydric alcohols include ethylene glycol, propylene glycol, and glycerin. Examples of ketones include acetone and methyl ethyl ketone (MEK). Examples of ethers include diethyl ether, tetrahydrofuran, ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol mono-n-butyl ether, and propylene glycol monomethyl ether. Examples of esters include ethyl acetate and butyl acetate. Examples of aprotic polar solvents include dimethyl sulfoxide (DMSO), dimethylformamide (DMF), dimethylacetamide (DMAc), and N-methyl-2-pyrrolidinone (NMP).

[0096] The solid content concentration of the fine fibrous cellulose during the defibration treatment can be appropriately set. In addition, the slurry obtained by dispersing the anionic group-introduced fibers in a dispersion medium may contain solid components other than the anionic group-introduced fibers, such as urea having hydrogen bonding properties.

[0097] The fiber width of the fine fibrous cellulose after defibration treatment to be subjected to step (A) is preferably 1 to 50 nm, more preferably 1 to 25 nm, even more preferably 1 to 15 nm, and particularly preferably 1 to 10 nm.

[0098] Furthermore, when the fine fibrous cellulose used in step (A) is prepared as an aqueous dispersion with a concentration of 0.1% by mass and the nanofiber yield is calculated, the nanofiber yield is preferably 90% by mass or more, more preferably 93% by mass or more, and even more preferably 96% by mass or more. The nanofiber yield may be 100% by mass. Here, the nanofiber yield is a value calculated based on the cellulose concentration of the supernatant obtained by centrifuging a 0.1% by mass fine fibrous cellulose dispersion using a refrigerated high-speed centrifuge (Kokusan Co., Ltd., H-2000B) at 12,000 G for 10 minutes, using the following formula: Nanofiber yield (mass%) = cellulose concentration in supernatant (mass%) / 0.1 × 100

[0099] Furthermore, when the fine fibrous cellulose used in step (A) is prepared as an aqueous dispersion with a concentration of 0.2% by mass, the haze of the aqueous dispersion is preferably 10% or less, more preferably 5.0% or less, and even more preferably 3.0% or less. The haze of the aqueous dispersion may be 0%. The haze of the aqueous dispersion of fine fibrous cellulose is measured using a haze meter (HM-150, manufactured by Murakami Color Research Laboratory) in accordance with JIS K 7136:2000. A glass liquid cell with a 1 cm optical path length (MG-40, manufactured by Fujiwara Seisakusho, reverse optical path) is used for the measurement. Zero-point measurement is performed using ion-exchanged water placed in the glass cell. The dispersion to be measured is allowed to stand for 24 hours in an environment of 23°C and 50% relative humidity before measurement, bringing the dispersion temperature to 23°C.

[0100] By setting the fiber width of the fine fibrous cellulose subjected to step (A) and the nanofiber yield and haze of the fine fibrous cellulose dispersion within the above ranges, the transparency of the fine fibrous cellulose obtained via step (B) when made into a slurry or sheet can be more effectively improved.

[0101] <Substituent removal treatment> The method for producing fine fibrous cellulose of the present invention includes a step (A) of removing at least a portion of the substituents from fine fibrous cellulose having substituents and having a fiber width of 1000 nm or less. In this specification, the step of removing at least a portion of the substituents from the fine fibrous cellulose is also referred to as a substituent removal treatment step.

[0102] Examples of the substituent removal treatment step include a step of heat treating, enzyme treating, acid treating, alkali treating, etc., fine fibrous cellulose having substituents and a fiber width of 1000 nm or less. These may be performed alone or in combination. Among these, the substituent removal treatment step is preferably a heat treating step or an enzyme treating step. By undergoing the above treatment steps, at least a portion of the substituents are removed from the fine fibrous cellulose having substituents and a fiber width of 1000 nm or less, and fine fibrous cellulose with an introduced substituent amount of less than 0.5 mmol / g can be obtained.

[0103] The substituent removal treatment step is preferably carried out in the form of a slurry. That is, the substituent removal treatment step is preferably a step of subjecting a slurry containing a substituent-containing fine fibrous cellulose having a fiber width of 1000 nm or less to a heat treatment, an enzyme treatment, an acid treatment, an alkali treatment, or the like. By carrying out the substituent removal treatment step in the form of a slurry, it is possible to prevent the residue of colored substances generated by heating or the like during the substituent removal treatment, as well as acids, alkalis, salts, and the like that are added or generated. This makes it possible to suppress coloration when the fine fibrous cellulose obtained through step (B) is made into a slurry or sheet. Furthermore, when a treatment is carried out to remove salts derived from the substituents removed after the substituent removal treatment, it is also possible to increase the efficiency of salt removal.

[0104] When a substituent removal treatment is performed on a slurry containing fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less, the concentration of the fine fibrous cellulose in the slurry is preferably 0.05% by mass or more, more preferably 0.1% by mass or more, and even more preferably 0.2% by mass or more. The concentration of the fine fibrous cellulose in the slurry is preferably 20% by mass or less, more preferably 15% by mass or less, and even more preferably 10% by mass or less. By controlling the concentration of the fine fibrous cellulose in the slurry within the above range, the substituent removal treatment can be performed more efficiently. Furthermore, by controlling the concentration of the fine fibrous cellulose in the slurry within the above range, it is possible to prevent the residue of colored substances resulting from heating or the like during the substituent removal treatment, as well as added or generated acids, alkalis, salts, etc. This can suppress coloration when the fine fibrous cellulose obtained through step (B) is made into a slurry or sheet. Furthermore, when a treatment is performed to remove salts derived from the substituents removed after the substituent removal treatment, it is also possible to increase the efficiency of salt removal.

[0105] When the substituent removal treatment step is a step of heat-treating fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less, the heating temperature in the heat treatment step is preferably 40°C or higher, more preferably 50°C or higher, and even more preferably 60°C or higher. Furthermore, the heating temperature in the heat treatment step is preferably 250°C or lower, more preferably 230°C or lower, and even more preferably 200°C or lower. In particular, when the substituent on the fine fibrous cellulose subjected to the substituent removal treatment step is a phosphorus oxo acid group or a sulfone group, the heating temperature in the heat treatment step is preferably 80°C or higher, more preferably 100°C or higher, and even more preferably 120°C or higher.

[0106] When the substituent removal treatment step is a heat treatment step, the heating device that can be used in the heat treatment step is not particularly limited, and examples that can be used include a hot air heater, a steam heater, an electric heater, a hydrothermal heater, a thermal heater, an infrared heater, a far-infrared heater, a microwave heater, a high-frequency heater, a stirring dryer, a rotary dryer, a disk dryer, a roll-type heater, a plate-type heater, a fluidized bed dryer, a band-type dryer, a filtration dryer, a vibration fluidized dryer, a flash dryer, and a reduced-pressure dryer. From the viewpoint of preventing evaporation, the heating is preferably carried out in a closed system, and from the viewpoint of further increasing the heating temperature, it is preferably carried out in a pressure-resistant device or container. The heat treatment may be a batch process, a batch continuous process, or a continuous process.

[0107] When the substituent removal treatment step is a step of enzymatically treating fine fibrous cellulose having substituents and a fiber width of 1000 nm or less, it is preferable to use a phosphate ester hydrolase, a sulfate ester hydrolase, or the like in the enzymatic treatment step depending on the type of substituent.

[0108] In the enzyme treatment step, the enzyme is preferably added so that the enzymatic activity per 1 g of fine fibrous cellulose is 0.1 nkat or more, more preferably 1.0 nkat or more, and even more preferably 10 nkat or more. The enzyme is preferably added so that the enzymatic activity per 1 g of fine fibrous cellulose is 100,000 nkat or less, more preferably 50,000 nkat or less, and even more preferably 10,000 nkat or less. After adding the enzyme to the fine fibrous cellulose dispersion (slurry), it is preferable to treat the dispersion (slurry) at a temperature of 0°C or higher but lower than 50°C for 1 minute to 100 hours.

[0109] After the enzymatic reaction, a step of deactivating the enzyme may be carried out. Examples of methods for deactivating the enzyme include adding an acid or alkali component to the enzymatically treated slurry to deactivate the enzyme, and raising the temperature of the enzymatically treated slurry to 90°C or higher to deactivate the enzyme.

[0110] When the substituent removal treatment step is a step of acid treating fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less, it is preferable to add an acid compound that can be used in the acid treatment step described above to the slurry in the acid treatment step.

[0111] When the substituent removal treatment step is a step of alkali treating fine fibrous cellulose having a substituent and a fiber width of 1000 nm or less, it is preferable to add an alkali compound that can be used in the alkali treatment step described above to the slurry in the alkali treatment step.

[0112] In the substituent removal treatment step, it is preferable that the substituent removal reaction proceeds uniformly. To proceed with the reaction uniformly, for example, the slurry containing the fine fibrous cellulose may be stirred, or the specific surface area of ​​the slurry may be increased. As a method for stirring the slurry, external mechanical shear may be applied, or self-stirring may be promoted by increasing the liquid feed rate of the slurry during the reaction.

[0113] In the substituent removal treatment step, spacer molecules may be added. The spacer molecules penetrate between adjacent fine fibrous cellulose particles, thereby acting as spacers to create fine spaces between the fine fibrous cellulose particles. Adding such spacer molecules in the substituent removal treatment step can suppress aggregation of the fine fibrous cellulose after the substituent removal treatment. This can more effectively improve the transparency of dispersions and sheets containing fine fibrous cellulose.

[0114] The spacer molecule is preferably a water-soluble organic compound. Examples of the water-soluble organic compound include sugars, water-soluble polymers, urea, and the like. Specifically, trehalose, urea, polyethylene glycol (PEG), polyethylene oxide (PEO), carboxymethyl cellulose, polyvinyl alcohol (PVA), and the like can be mentioned. Further, as the water-soluble organic compound, alkyl methacrylate-acrylic acid copolymer, polyvinyl pyrrolidone, sodium polyacrylate, propylene glycol, dipropylene glycol, polypropylene glycol, isoprene glycol, hexylene glycol, 1,3-butylene glycol, polyacrylamide, xanthan gum, guar gum, tamarind gum, carrageenan, locust bean gum, quince seed, alginic acid, pullulan, carrageenan, pectin, cationized starch, raw starch, oxidized starch, etherified starch, esterified starch, amylose and other starches, glycerin, diglycerin, polyglycerin, hyaluronic acid, metal salts of hyaluronic acid can also be used.

[0115] Also, known pigments can be used as the spacer molecule. For example, kaolin (including clay), calcium carbonate, titanium oxide, zinc oxide, amorphous silica (including colloidal silica), aluminum oxide, zeolite, sepiolite, smectite, synthetic smectite, magnesium silicate, magnesium carbonate, magnesium oxide, diatomaceous earth, styrene-based plastic pigment, hydrotalcite, urea resin-based plastic pigment, benzoguanamine-based plastic pigment, and the like can be mentioned.

[0116] <pH adjustment step> When the substituent removal treatment step is performed in a slurry state, a step of adjusting the pH of the slurry containing microfibrillar cellulose may be provided before the substituent removal treatment step. For example, an anionic group is introduced into the cellulose fiber, and the counter ion of this anionic group is Na +In this case, the slurry containing the defibrated fine fibrous cellulose exhibits a weak alkaline pH. If the slurry is heated in this state, monosaccharides, which are one of the causes of coloration, may be generated due to the decomposition of cellulose, so the pH of the slurry is preferably adjusted to 8 or less, more preferably to 6 or less. Similarly, monosaccharides may be generated under acidic conditions, so the pH of the slurry is preferably adjusted to 3 or more, more preferably to 4 or more.

[0117] Furthermore, when the substituted fine fibrous cellulose is a phosphate-containing fine fibrous cellulose, it is preferable that the phosphorus of the phosphate group is susceptible to nucleophilic attack, from the viewpoint of improving the efficiency of removing the substituent. The phosphorus susceptible to nucleophilic attack is cellulose-OP(=O)(-OH + )(-O-Na + To achieve this state, the pH of the slurry is preferably adjusted to 3 or more and 8 or less, and more preferably adjusted to 4 or more and 6 or less.

[0118] The means for adjusting the pH is not particularly limited, and for example, an acid component or an alkali component may be added to a slurry containing fine fibrous cellulose. The acid component may be either an inorganic acid or an organic acid. Examples of inorganic acids include sulfuric acid, hydrochloric acid, nitric acid, and phosphoric acid. Examples of organic acids include formic acid, acetic acid, citric acid, malic acid, lactic acid, adipic acid, sebacic acid, stearic acid, maleic acid, succinic acid, tartaric acid, fumaric acid, and gluconic acid. The alkali component may be an inorganic alkali compound or an organic alkali compound. Examples of inorganic alkali compounds include lithium hydroxide, sodium hydroxide, potassium hydroxide, lithium carbonate, lithium bicarbonate, potassium carbonate, potassium bicarbonate, sodium carbonate, and sodium bicarbonate. Examples of organic alkali compounds include ammonia, hydrazine, methylamine, ethylamine, diethylamine, triethylamine, propylamine, dipropylamine, butylamine, diaminoethane, diaminopropane, diaminobutane, diaminopentane, diaminohexane, cyclohexylamine, aniline, tetramethylammonium hydroxide, tetraethylammonium hydroxide, tetrapropylammonium hydroxide, tetrabutylammonium hydroxide, benzyltrimethylammonium hydroxide, pyridine, and N,N-dimethyl-4-aminopyridine.

[0119] In addition, in the pH adjustment step, an ion exchange treatment may be performed to adjust the pH. A strong acid cation exchange resin or a weak acid ion exchange resin can be used in the ion exchange treatment. By treating with an appropriate amount of cation exchange resin for a sufficient time, a slurry containing fine fibrous cellulose with the desired pH can be obtained. Furthermore, in the pH adjustment step, the addition of an acid component or an alkali component may be combined with the ion exchange treatment.

[0120] <Salt removal treatment> After the substituent removal treatment step, it is preferable to carry out a treatment to remove salts derived from the removed substituents. Removing the salts derived from the substituents makes it easier to obtain fine fibrous cellulose that can suppress coloration. The means for removing the salts derived from the substituents is not particularly limited, and examples thereof include a washing treatment. The washing treatment is carried out by washing the fine fibrous cellulose that has aggregated in the substituent removal treatment with, for example, water or an organic solvent. From the viewpoint of more effectively suppressing yellowing, it is preferable to carry out the washing treatment by filtration dehydration, centrifugal dehydration, or centrifugation.

[0121] (Process (B)) The method for producing fine fibrous cellulose of the present invention includes step (A) of removing at least a portion of the substituents from fine fibrous cellulose having a substituent and a fiber width of 1,000 nm or less, and step (B) of uniformly dispersing the cellulose after step (A). The uniformly dispersing step (B) is a step of uniformly dispersing the fine fibrous cellulose obtained through the substituent removal treatment in step (A). In step (A), the fine fibrous cellulose is subjected to the substituent removal treatment, thereby causing at least a portion of the fine fibrous cellulose to aggregate. In step (B), the uniformly dispersed state of the fine fibrous cellulose in step (B) refers to a state in which the fiber width of the fine fibrous cellulose is 10 nm or less. Thus, the fine fibrous cellulose obtained by the production method of the present invention has a fiber width of 10 nm or less, despite the low amount of substituents introduced, that is, less than 0.5 mmol / g.

[0122] In the uniform dispersion treatment step (B), for example, a high-speed defibrator, grinder (stone mill type grinder), high-pressure homogenizer, high-pressure collision type grinder, ball mill, bead mill, disk type refiner, conical refiner, twin-screw kneader, vibration mill, homomixer under high-speed rotation, ultrasonic disperser or beater can be used. Among the above-mentioned uniform dispersion treatment devices, it is more preferable to use a high-speed defibrator or high-pressure homogenizer.

[0123] The treatment conditions in step (B) of uniform dispersion treatment are not particularly limited, but it is preferable to increase the maximum movement speed of the fine fibrous cellulose during treatment and the pressure during treatment. In the case of a high-speed defibrator, the peripheral speed is preferably 20 m / sec or more, more preferably 25 m / sec or more, and even more preferably 30 m / sec or more. A high-pressure homogenizer is more preferably used because it has a higher maximum movement speed of the fine fibrous cellulose during treatment and a higher pressure during treatment than a high-speed defibrator. In high-pressure homogenizer treatment, the pressure during treatment is preferably 1 MPa or more, more preferably 10 MPa or more, even more preferably 50 MPa or more, and particularly preferably 100 MPa or more. In addition, in high-pressure homogenizer treatment, the pressure during treatment is preferably 350 MPa or less, more preferably 300 MPa or less, and even more preferably 250 MPa or less.

[0124] In step (B), the above-mentioned spacer molecules may be added. By adding such spacer molecules in the uniform dispersion treatment step of step (B), the fine fibrous cellulose can be dispersed more smoothly and uniformly. This makes it possible to more effectively improve the transparency of the dispersion or sheet containing the fine fibrous cellulose.

[0125] (dispersion) The present invention also relates to a dispersion containing the above-mentioned fine fibrous cellulose. That is, the dispersion of the present invention contains fine fibrous cellulose having an introduced substituent content of less than 0.5 mmol / g and a fiber width of 1 to 10 nm.

[0126] The amount of substituent introduced into the fine fibrous cellulose contained in the dispersion may be less than 0.5 mmol / g, preferably 0.4 mmol / g or less, more preferably 0.3 mmol / g or less, even more preferably 0.25 mmol / g or less, and particularly preferably 0.15 mmol / g or less. The amount of substituent introduced into the fine fibrous cellulose contained in the dispersion may be 0.0 mmol / g, but is preferably 0.01 mmol / g or more, more preferably 0.04 mmol / g or more, even more preferably 0.05 mmol / g or more, and particularly preferably 0.07 mmol / g or more.

[0127] The fiber width of the fine fibrous cellulose contained in the dispersion may be 1 to 10 nm, preferably 1 to 9 nm, more preferably 1 to 8 nm, and even more preferably 1 to 7 nm. The number-average fiber width of the fibrous cellulose contained in the dispersion is preferably 1 to 10 nm, more preferably 1 to 9 nm, even more preferably 1 to 8 nm, and particularly preferably 1 to 7 nm. In this specification, fibrous cellulose includes fine fibrous cellulose, but also includes coarse cellulose fibers with a fiber width greater than 1,000 nm. The number-average fiber width of the fibrous cellulose contained in the dispersion within the above range means that the dispersion is substantially free of coarse cellulose fibers, and furthermore, 70% or more of the fibrous cellulose has a fiber width of 10 nm or less. The proportion of fine fibrous cellulose with a fiber width of 10 nm or less of the total fibrous cellulose contained in the dispersion is preferably 70% or more, more preferably 80% or more, and even more preferably 90% or more. The proportion of fine fibrous cellulose having a fiber width of 10 nm or less is a value expressed by the following formula. Percentage of fine fibrous cellulose with a fiber width of 10 nm or less (%) = (Number of fine fibrous cellulose with a fiber width of 10 nm or less / Total number of fibrous cellulose) × 100

[0128] The dispersion of the present embodiment is preferably a dispersion containing the above-described microfibrillar cellulose and a dispersion medium. The dispersion medium is not particularly limited, but preferably contains water, and more preferably is a solvent containing water as a main component. That is, the dispersion of the present embodiment is preferably an aqueous dispersion containing microfibrillar cellulose. Note that the dispersion medium may be an organic solvent. Examples of the organic solvent include dimethylformamide (DMF), dimethylacetamide (DMAc), N-methylpyrrolidone (NMP), aniline, pyridine, quinoline, lutidine, acetonitrile, tetrahydrofuran (THF), dimethyl sulfoxide (DMSO), dioxane, ethanol, isopropanol, and the like. Further, as the dispersion medium, a mixed solvent obtained by mixing these organic solvents and water can also be used.

[0129] The pH of the dispersion with a microfibrillar cellulose concentration of 1% by mass is preferably 3 or more, more preferably 4 or more, and even more preferably 5 or more. Also, the pH of the dispersion with a microfibrillar cellulose concentration of 1% by mass is preferably 10 or less, more preferably 9 or less, and even more preferably 8 or less. By setting the pH of the dispersion within the above range, yellowing of the dispersion and the sheet can be more effectively suppressed. Note that, in order to set the pH of the dispersion within the above range, the same method as the above-described <pH adjustment step> can also be employed.

[0130] The concentration of the above-described microfibrillar cellulose in the dispersion of the present embodiment is not particularly limited, but is preferably 0.5% by mass or more, more preferably 1.0% by mass or more, and even more preferably 2.0% by mass or more. Further, the dispersion of the present embodiment may be a high-concentration dispersion containing 3.0% by mass or more of the above-described microfibrillar cellulose.

[0131] The haze of the dispersion of this embodiment is preferably 5% or less, more preferably 4% or less, and even more preferably 3% or less. Here, the haze of the dispersion is a value measured in accordance with JIS K 7136:2000 using a haze meter and a glass cell for liquids with an optical path length of 1 cm. Note that zero-point measurement is performed using ion-exchanged water placed in the same glass cell. Furthermore, the dispersion to be measured is allowed to stand for 24 hours in an environment of 23°C and relative humidity 50% before measurement, and the liquid temperature of the dispersion is brought to 23°C.

[0132] In the dispersion of this embodiment, when the fine fibrous cellulose is dispersed in a concentration of 0.1% by mass and the nanofiber yield is calculated using the following formula, the nanofiber yield is preferably 95% by mass or more, more preferably 96% by mass or more. The nanofiber yield may also be 100% by mass. Nanofiber yield [mass%] = C / 0.1 × 100 Here, C is the concentration of fine fibrous cellulose contained in the supernatant obtained when a dispersion liquid with a fine fibrous cellulose concentration of 0.1 mass % is centrifuged at 12,000 G for 10 minutes.

[0133] In the dispersion of this embodiment, when the concentration of fine fibrous cellulose is 0.4% by mass, the viscosity of the dispersion at 23°C is preferably 100 mPa·s or more, more preferably 1000 mPa·s or more, and even more preferably 2000 mPa·s or more. Furthermore, the viscosity of the dispersion at 23°C is preferably 200,000 mPa·s or less, and more preferably 100,000 mPa·s or less. The viscosity of a dispersion with a fine fibrous cellulose concentration of 0.4% by mass can be measured using a Brookfield T-LVT type viscometer. The measurement conditions are 23°C, a rotation speed of 3 rpm, and the viscosity is measured 3 minutes after the start of measurement. Furthermore, the dispersion to be measured is allowed to stand for 24 hours in an environment of 23°C and 50% relative humidity, and the liquid temperature of the dispersion is set to 23°C.

[0134] The amount of free nitrogen in the dispersion is preferably small. The amount of free nitrogen in the dispersion can be measured by measuring the nitrogen concentration in the filtrate obtained by filtering the fine fibrous cellulose dispersion. For example, the free nitrogen concentration in a dispersion having a fine fibrous cellulose concentration of 0.2% by mass is preferably 100 ppm or less, more preferably 80 ppm or less, even more preferably 70 ppm or less, even more preferably 60 ppm or less, even more preferably 50 ppm or less, even more preferably 40 ppm or less, and particularly preferably 30 ppm or less. The nitrogen concentration in a dispersion having a fine fibrous cellulose concentration of 0.2% by mass may be 0 ppm. Since free nitrogen present in the dispersion causes coloration, yellowing of the dispersion or sheet containing fine fibrous cellulose can be more effectively suppressed by keeping the nitrogen concentration in the filtrate within the above range. The nitrogen concentration in the filtrate is measured as follows. First, distilled water was added so that the concentration of fine fibrous cellulose was 0.2% by mass, and after stirring for 24 hours, the mixture was filtered using a filter medium with a pore size of 0.45 μm to obtain a filtrate. The nitrogen concentration (ppm) in the filtrate was then measured by trace nitrogen analysis.

[0135] <Optional ingredients> The dispersion may contain optional components in addition to the fine fibrous cellulose and dispersion medium described above. Examples of optional components include the spacer molecules, hydrophilic polymers, and organic ions described above. The hydrophilic polymer is preferably a hydrophilic oxygen-containing organic compound (excluding the above-mentioned cellulose fibers). The oxygen-containing organic compound is preferably non-fibrous, and such non-fibrous oxygen-containing organic compounds do not include fine fibrous cellulose or thermoplastic resin fibers. Examples of optional components include antifoaming agents, lubricants, UV absorbers, dyes, pigments, stabilizers, surfactants, and preservatives (e.g., phenoxyethanol).

[0136] The oxygen-containing organic compound is preferably a hydrophilic organic compound. The hydrophilic oxygen-containing organic compound can improve the strength, density, chemical resistance, etc. of the sheet. The hydrophilic oxygen-containing organic compound preferably has an SP value of 9.0 or more. Furthermore, the hydrophilic oxygen-containing organic compound is preferably one in which 1 g or more of the oxygen-containing organic compound dissolves in 100 ml of ion-exchanged water.

[0137] Examples of oxygen-containing organic compounds include hydrophilic polymers such as polyethylene glycol, polyethylene oxide, casein, dextrin, starch, modified starch, polyvinyl alcohol, modified polyvinyl alcohol (such as acetoacetylated polyvinyl alcohol), polyethylene oxide, polyvinylpyrrolidone, polyvinyl methyl ether, polyacrylates, polyacrylamide, acrylic acid alkyl ester copolymers, urethane copolymers, and cellulose derivatives (such as hydroxyethyl cellulose, carboxyethyl cellulose, and carboxymethyl cellulose); and hydrophilic low-molecular-weight compounds such as glycerin, sorbitol, and ethylene glycol. Among these, from the viewpoint of improving the strength, density, chemical resistance, and the like of the sheet, polyethylene glycol, polyethylene oxide, polyvinyl alcohol, glycerin, and sorbitol are preferred, with at least one selected from polyethylene glycol and polyethylene oxide being more preferred, and at least one selected from polyethylene oxide, polyvinyl alcohol, and polyethylene glycol being even more preferred.

[0138] The oxygen-containing organic compound is preferably an organic polymer having a molecular weight of 50,000 to 8,000,000. The molecular weight of the oxygen-containing organic compound is also preferably 100,000 to 5,000,000, but may also be a low molecular weight compound having a molecular weight of less than 1,000, for example.

[0139] Examples of organic ions include tetraalkylammonium ions and tetraalkylphosphonium ions. Examples of tetraalkylammonium ions include tetramethylammonium ions, tetraethylammonium ions, tetrapropylammonium ions, tetrabutylammonium ions, tetrapentylammonium ions, tetrahexylammonium ions, tetraheptylammonium ions, tributylmethylammonium ions, lauryltrimethylammonium ions, cetyltrimethylammonium ions, stearyltrimethylammonium ions, octyldimethylethylammonium ions, lauryldimethylethylammonium ions, didecyldimethylammonium ions, lauryldimethylbenzylammonium ions, and tributylbenzylammonium ions. Examples of tetraalkylphosphonium ions include tetramethylphosphonium ions, tetraethylphosphonium ions, tetrapropylphosphonium ions, tetrabutylphosphonium ions, and lauryltrimethylphosphonium ions. Examples of tetrapropylonium ions and tetrabutylonium ions include tetra-n-propylonium ions and tetra-n-butylonium ions, respectively.

[0140] (sheet) The present invention also relates to a sheet containing the above-mentioned fine fibrous cellulose. That is, the sheet of the present invention contains fine fibrous cellulose having an introduced substituent content of less than 0.5 mmol / g and a fiber width of 1 to 10 nm.

[0141] The present invention also relates to a sheet containing fine fibrous cellulose having an introduced substituent content of less than 0.5 mmol / g and a fiber width of 1 to 10 nm, the sheet having a YI value of 1.5 or less at a thickness of 50 μm. The YI value at a sheet thickness of 50 μm is preferably 1.3 or less, more preferably 1.2 or less. The lower limit of the YI value at a sheet thickness of 50 μm is not particularly limited and may be 0.0. The YI value at a sheet thickness of 50 μm is the yellowness index measured in accordance with JIS K 7373:2006. An example of a device that can be used to measure the YI value is the Colour Cute i (manufactured by Suga Test Instruments Co., Ltd.). The above-mentioned YI value is sometimes referred to as the initial YI value because it is measured before the sheet is heated, as described below.

[0142] The YI value at a thickness of 50 μm can be calculated by the following formula. YI value at a thickness of 50 μm = YI value of sheet (measured value) × [50 / sheet thickness (μm)] The thickness of the sheet can be measured using a stylus-type constant pressure thickness gauge (Militron 1202DPG-02, manufactured by Mahl TECLOCK CORPORATION). Specifically, a sheet cut into a size of 50 mm or more square is conditioned at 23°C and a relative humidity of 50% for 24 hours, and then the thickness is measured at four arbitrary points, and the average value is taken as the thickness of the sheet.

[0143] The YI increase rate of the sheet of this embodiment is preferably 1500% or less, more preferably 1200% or less, even more preferably 1000% or less, even more preferably 800% or less, and particularly preferably 750% or less. The lower limit of the YI increase rate of the sheet is not particularly limited and may be 0%. Here, the YI increase rate of the sheet refers to the increase rate of the YI value of the sheet before and after heating the sheet at 160°C for 6 hours. Specifically, the YI increase rate is a value calculated using the following formula: YI increase rate (%) = (yellowness of sheet after heating - yellowness of sheet before heating) / yellowness of sheet before heating × 100 In the above formula, the yellowness of the sheet is measured in accordance with JIS K 7373:2006. In the present invention, when the initial YI value is 1.5 or less and the YI increase rate is within the above range, it can be determined that coloring (yellowing) of the sheet is suppressed.

[0144] The haze of the sheet of this embodiment is preferably 5.0% or less, more preferably less than 3.5%, even more preferably 3.0% or less, even more preferably 2.5% or less, and particularly preferably 2.0% or less. If the haze of the sheet is within the above range, it can be determined that a highly transparent sheet has been formed by using the fine fibrous cellulose of the present invention. The haze of the sheet is a value measured using a haze meter in accordance with JIS K 7136:2000.

[0145] The total light transmittance of the sheet of this embodiment is preferably 90.0% or more, more preferably 90.5% or more, and even more preferably 91.0% or more. The haze of the sheet is a value measured using a haze meter in accordance with JIS K 7361-1:1997.

[0146] The surface roughness of at least one surface of the sheet of this embodiment is preferably 50 nm or less, more preferably 30 nm or less, and even more preferably 10 nm or less. It is particularly preferable that the surface roughness of both surfaces of the sheet is within the above range. By setting the surface roughness within the above range, the transparency of the sheet can be further improved. Specifically, the haze of the sheet can be further reduced. Here, the surface roughness (arithmetic mean) of the sheet is the arithmetic mean roughness of at least one surface of the sheet. The surface roughness (arithmetic mean) is a value obtained by measuring the arithmetic mean roughness of a 3 μm square area using an atomic force microscope (NanoScope IIIa, manufactured by Veeco).

[0147] The surface pH of the sheet of this embodiment is preferably 3 or higher, more preferably 4 or higher, and even more preferably 5 or higher. Furthermore, the surface pH of the sheet is preferably 10 or lower, more preferably 9 or lower, and even more preferably 8 or lower. By controlling the surface pH of the sheet within the above range, the effect of inhibiting yellowing is more easily achieved. To control the surface pH of the sheet within the above range, it is desirable to set the pH of the dispersion (dispersion having a fine fibrous cellulose concentration of 1% by mass) within the preferred range described above. When measuring the surface pH of the sheet, 10 μL of ion-exchanged water is dropped onto a 1 cm square area of ​​the sheet surface using a micropipette, and the pH of that area is measured using a flat pH composite electrode (6261-10C; manufactured by HORIBA).

[0148] The sheet of this embodiment is manufactured from the dispersion described above. Specifically, the sheet manufacturing process preferably includes a coating process of applying the dispersion described above to a substrate, or a papermaking process of making paper from the dispersion described above. The dispersion may contain the additives described above as necessary.

[0149] In the coating process, a dispersion (coating liquid) containing the above-mentioned fine fibrous cellulose is applied to a substrate, and the resulting sheet is dried and peeled off from the substrate to obtain a sheet. By using a coating device and a long substrate, sheets can be produced continuously. The papermaking process is carried out by making paper from the slurry using a papermaking machine. Papermaking machines used in the papermaking process are not particularly limited, but examples include continuous papermaking machines such as Fourdrinier, cylinder, and tilting machines, as well as multi-layer papermaking machines that combine these. Known papermaking methods, such as handmaking, may also be used in the papermaking process.

[0150] The sheet of the present embodiment may further be laminated with a resin layer or an inorganic layer. The present invention may also relate to a laminate having the above-mentioned sheet and a resin layer and / or an inorganic layer.

[0151] <Optional ingredients> The sheet of this embodiment may contain any optional component that can be contained in the dispersion. In particular, the sheet preferably contains the hydrophilic polymer described above, and the hydrophilic polymer is preferably a hydrophilic oxygen-containing organic compound. The content of the oxygen-containing organic compound contained in the sheet is preferably 1 part by mass or more, more preferably 10 parts by mass or more, and even more preferably 15 parts by mass or more, per 100 parts by mass of the fine fibrous cellulose contained in the sheet. Furthermore, the content of the oxygen-containing organic compound contained in the sheet is preferably 1,000 parts by mass or less, more preferably 500 parts by mass or less, even more preferably 100 parts by mass or less, and particularly preferably 50 parts by mass or less, per 100 parts by mass of the fine fibrous cellulose contained in the sheet. By setting the content of the oxygen-containing organic compound within the above range, a sheet with high transparency and strength can be formed.

[0152] (Application) The uses of the fine fibrous cellulose of the present invention are not particularly limited, and examples thereof include concrete pre-mixers, lubricants, mold-forming compositions, dental materials, abrasives, release agents, papermaking additives, metal surface treatment agents, resin surface treatment agents, oil drilling, adhesives, detergents, electrodes and separators for batteries and capacitors, antifreeze agents, agents for reducing frictional resistance in piping, filters, fragrances and deodorizers, asphalt, absorbent articles, water-degradable sheets, antibacterial agents, insecticides and insect repellents, agricultural chemicals, etc. Among these, the fine fibrous cellulose of the present invention is preferably used for concrete pre-mixers, lubricants, mold-forming compositions, dental materials, abrasives, release agents, and papermaking additives.

[0153] The present invention also relates to a concrete preform, a lubricant, a molding composition, a dental material, an abrasive, a release agent, or a papermaking additive containing the above-mentioned fine fibrous cellulose. [Example]

[0154] The features of the present invention will be explained in more detail below with reference to examples and comparative examples. The materials, amounts used, ratios, treatment contents, treatment procedures, etc. shown in the following examples can be changed as appropriate without departing from the spirit of the present invention. Therefore, the scope of the present invention should not be construed as being limited by the specific examples shown below.

[0155] <Production Example 1> [Phosphorylation] Hardwood dissolving pulp (dry sheet) manufactured by Oji Paper Co., Ltd. was used as the raw material pulp. This raw material pulp was subjected to a phosphating treatment as follows. First, a mixed aqueous solution of ammonium dihydrogen phosphate and urea was added to 100 parts by mass (bone dry mass) of the raw material pulp to adjust the composition to 45 parts by mass of ammonium dihydrogen phosphate, 120 parts by mass of urea, and 150 parts by mass of water, thereby obtaining a chemical-impregnated pulp. Next, the obtained chemical-impregnated pulp was heated in a hot air dryer at 165°C for 250 seconds to introduce phosphate groups into the cellulose in the pulp, thereby obtaining a phosphorylated pulp.

[0156] [Cleaning process] The resulting phosphorylated pulp was then washed. 100 g (bone dry mass) of phosphorylated pulp was mixed with 10 L of ion-exchanged water to obtain a pulp dispersion. The pulp was stirred to uniformly disperse the pulp, and then repeatedly filtered and dehydrated. The washing was completed when the electrical conductivity of the filtrate reached 100 μS / cm or less.

[0157] [Neutralization treatment] Next, the washed phosphorylated pulp was neutralized as follows. First, the washed phosphorylated pulp was diluted with 10 L of ion-exchanged water, and then a 1 N aqueous solution of sodium hydroxide was added little by little while stirring to obtain a phosphorylated pulp slurry with a pH of 12 to 13. Next, the phosphorylated pulp slurry was dehydrated to obtain a neutralized phosphorylated pulp. Next, the neutralized phosphorylated pulp was subjected to the above-mentioned washing treatment.

[0158] The infrared absorption spectrum of the obtained phosphorus oxyoxidized pulp was measured using FT-IR. -1 The absorption due to the P=O of the phosphate group was observed around the 2θ=14° to 17° and the 2θ=22° to 23° angle, confirming that the pulp had phosphate groups. The phosphorylated pulp was analyzed using an X-ray diffractometer, and typical peaks were observed at two positions, around 2θ=14° to 17° and 2θ=22° to 23°, confirming the presence of cellulose type I crystals.

[0159] [Fiber defibration processing] Ion-exchanged water was added to the obtained phosphorylated pulp to prepare a slurry with a solids concentration of 2% by mass. This slurry was processed six times with a high-pressure homogenizer (Starburst, manufactured by Sugino Machine Co., Ltd.) at a pressure of 200 MPa to obtain a fine fibrous cellulose dispersion containing fine fibrous cellulose. X-ray diffraction confirmed that this fine fibrous cellulose maintained cellulose type I crystallinity. The amount of phosphate groups (amount of first dissociated acid) measured by the measurement method described below in the measurement of [amount of phosphorus oxo acid group] was 1.45 mmol / g. The total amount of dissociated acid was 2.45 mmol / g.

[0160] <Production Example 2> A fine fibrous cellulose dispersion containing phosphorylated pulp and fine fibrous cellulose was obtained in the same manner as in Production Example 1, except that the following nitrogen removal treatment was carried out after the phosphorylated pulp was washed and neutralized.

[0161] [Nitrogen removal treatment] Deionized water was added to phosphorylated pulp to prepare a slurry with a solids concentration of 4% by mass. A 48% by mass aqueous solution of sodium hydroxide was added to the slurry to adjust the pH to 13.4 and heated at 85°C for 1 hour. The pulp slurry was then dehydrated, and 10 L of deionized water was added to 100 g of phosphorylated pulp (bone dry mass) to obtain a pulp dispersion. The pulp was stirred to uniformly disperse, and the filtration and dehydration process was repeated to remove excess sodium hydroxide. The removal was completed when the electrical conductivity of the filtrate reached 100 μS / cm or less.

[0162] The infrared absorption spectrum of the obtained phosphorus oxyoxidized pulp was measured using FT-IR. -1 Absorption due to P=O of phosphate groups was observed near the nucleus, confirming that phosphate groups had been added to the pulp. Furthermore, X-ray diffraction confirmed that the resulting fine fibrous cellulose maintained cellulose type I crystallinity. The amount of phosphate groups (amount of first dissociated acid) measured by the method described below in [Measurement of amount of phosphorus oxoacid groups] was 1.35 mmol / g. The total amount of dissociated acid was 2.30 mmol / g.

[0163] <Production Example 3> [Phosphorous Treatment] The same procedure as in Production Example 1 was carried out, except that 33 parts by mass of phosphorous acid (phosphonic acid) was used instead of ammonium dihydrogen phosphate in the phosphating treatment, to obtain a fine fibrous cellulose dispersion containing phosphorylated pulp and fine fibrous cellulose.

[0164] The infrared absorption spectrum of the phosphorylated pulp obtained was measured using FT-IR. -1Absorption due to P=O of the phosphonic acid group, which is a tautomer of the phosphorous acid group, was observed near the peak, confirming that phosphorous acid groups (phosphonic acid groups) had been added to the pulp. Furthermore, X-ray diffraction confirmed that the resulting fine fibrous cellulose maintained cellulose type I crystallinity. The amount of phosphorous acid groups (amount of first dissociated acid), measured by the method described below in [Measurement of phosphorus oxoacid group amount], was 1.51 mmol / g, and the total amount of dissociated acid was 1.54 mmol / g.

[0165] <Production Example 4> [Sulfation treatment] The same procedure as in Production Example 1 was carried out, except that 38 parts by mass of amidosulfonic acid (sulfamic acid) was used instead of ammonium dihydrogen phosphate in the phosphorylation treatment and the heating time was extended to 19 minutes, to obtain a fine fibrous cellulose dispersion containing sulfated pulp and fine fibrous cellulose.

[0166] The infrared absorption spectrum of the sulfated pulp obtained was measured using FT-IR. -1 Absorption due to sulfate groups (sulfonic groups) was observed around 1000 kJ / g, confirming that sulfate groups (sulfonic groups) had been added to the pulp. X-ray diffraction also confirmed that the obtained fine fibrous cellulose maintained cellulose type I crystal structure. The amount of sulfonic groups measured by the method described in [Measurement of sulfonic group amount] below was 1.12 mmol / g.

[0167] <Production Example 5> The same operation as in Production Example 1 was performed except that the following xanthation treatment was performed instead of the phosphate treatment, to obtain a fine fibrous cellulose dispersion containing xanthated pulp and fine fibrous cellulose.

[0168] [Xanthate treatment] To 100 parts by mass (bone dry mass) of raw pulp (hardwood dissolving pulp (dry sheet) manufactured by Oji Paper Co., Ltd.), 2500 parts by mass of an 8.5% by mass aqueous solution of sodium hydroxide was added, and the mixture was stirred at room temperature for 3 hours to perform an alkali treatment. The pulp after this alkali treatment was subjected to solid-liquid separation by centrifugation (filter cloth 400 mesh, 3000 rpm for 5 minutes) to obtain a dehydrated alkali cellulose. To 10 parts by mass (bone dry mass) of the obtained alkali cellulose, 3.5 parts by mass of carbon disulfide was added, and the sulfurization reaction was carried out at room temperature for 4.5 hours to perform a xanthate formation treatment.

[0169] X-ray diffraction confirmed that the obtained fine fibrous cellulose maintained cellulose type I crystals. The amount of xanthate groups measured by the measurement method described below in [Measurement of xanthate group amount] was 1.73 mmol / g.

[0170] <Production Example 6> Ion-exchanged water was added to raw pulp (hardwood dissolving pulp (dry sheet) manufactured by Oji Paper Co., Ltd.) to prepare a slurry with a solids concentration of 2% by mass. This slurry was processed 30 times in a wet atomizer (Starburst manufactured by Sugino Machine Co., Ltd.) at a pressure of 200 MPa to obtain a cellulose dispersion containing coarse fibrous cellulose with a fiber width of more than 1000 nm.

[0171] [Table 1]

[0172] Example 1 [Substituent removal treatment (high temperature heat treatment)] A 20% by mass aqueous citric acid solution was added to the fine fibrous cellulose dispersion obtained in Production Example 1 to adjust the pH of the dispersion to 5.5. The resulting slurry was placed in a pressure-resistant container and heated at a liquid temperature of 160°C for 15 minutes until the amount of phosphate groups reached 0.08 mmol / g. The formation of fine fibrous cellulose aggregates was confirmed by this operation.

[0173] [Cleaning of slurry after removing substituents] After heating, the slurry was washed by adding an equal amount of ion-exchanged water to the slurry to obtain a slurry with a solids concentration of approximately 1% by mass. The slurry was then stirred and then filtered and dehydrated. When the electrical conductivity of the filtrate reached 10 μS / cm or less, ion-exchanged water was added again to obtain a slurry with a solids concentration of approximately 1% by mass, which was then allowed to stand for 24 hours. The filtration and dehydration process was then repeated, and the washing endpoint was reached when the electrical conductivity of the filtrate again reached 10 μS / cm or less. Ion-exchanged water was added to the resulting fine fibrous cellulose aggregates, and a slurry was obtained after removing the substituents. The solids concentration of this slurry was 1.7% by mass.

[0174] [Uniform dispersion of slurry after removing substituents] Ion-exchanged water was added to the resulting slurry after the removal of substituents to give a slurry with a solids concentration of 1.0% by mass. This slurry had a pH of 5.5. Treatment was carried out three times at a pressure of 200 MPa using a wet atomization apparatus (Starburst, manufactured by Sugino Machine Co., Ltd.) to obtain a dispersion of substituent-removed fine fibrous cellulose containing the substituent-removed fine fibrous cellulose. The number-average fiber width of the substituent-removed fine fibrous cellulose measured in the "Fiber Width Measurement" section described below was 4 nm, and the proportion of fine fibrous cellulose with a fiber width of 10 nm or less out of all the fibrous cellulose contained in the dispersion was 98%.

[0175] [Sheet production 1] Acetoacetyl group-modified polyvinyl alcohol (Gohsenex Z-200, manufactured by Mitsubishi Chemical Corporation) was added to ion-exchanged water to a concentration of 12% by mass, and the mixture was stirred at 95° C. for 1 hour to dissolve. By the above procedure, an aqueous polyvinyl alcohol solution was obtained.

[0176] The substituent-removed fine fibrous cellulose dispersion and the polyvinyl alcohol aqueous solution were each diluted with ion-exchanged water to a solid content of 0.6% by mass. Then, 70 parts by mass of the diluted substituent-removed fine fibrous cellulose dispersion were mixed with 30 parts by mass of the diluted polyvinyl alcohol aqueous solution to obtain a mixed solution. Furthermore, the finished basis weight of the sheet was 35 g / m. 2The mixture was weighed out so that the weight of the mixture was 100g and spread on a commercially available acrylic plate. A damming frame (inner dimensions 250mm x 250mm, height 5cm) was placed on the acrylic plate to obtain the specified basis weight. The mixture was then dried in a dryer at 70°C for 24 hours and peeled off from the acrylic plate to obtain a sheet containing the substituent-removed microfibrous cellulose. The thickness of the sheet was 25µm.

[0177] <Example 2> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituent-removal treatment was carried out at a liquid temperature of 85°C for 5 days.

[0178] Example 3 The fine fibrous cellulose dispersion obtained in Production Example 1 was diluted to 0.7% by mass and subjected to a substituent removal treatment. After the washing treatment step following the removal of the substituents, ion-exchanged water was added to the obtained fine fibrous cellulose aggregate to form a slurry with a solids concentration of 1.0% by mass. Otherwise, the same procedures as in Example 1 were carried out to obtain a substituent-removed fine fibrous cellulose dispersion and a substituent-removed fine fibrous cellulose-containing sheet.

[0179] Example 4 A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituent removal treatment was carried out at a liquid temperature of 160°C for 40 minutes and continued until the amount of phosphate groups reached 0.05 mmol / g.

[0180] <Example 5> A dispersion of substituting-free fine fibrous cellulose and a sheet containing substituting-free fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituting-free treatment was carried out at a liquid temperature of 150°C for 15 minutes and continued until the amount of phosphate groups reached approximately 0.21 mmol / g.

[0181] Example 6 A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituent removal treatment was carried out at a liquid temperature of 140°C for 20 minutes and continued until the amount of phosphate groups reached approximately 0.40 mmol / g.

[0182] Example 7 A dispersion of fine fibrous cellulose from which substituents had been removed and a sheet containing fine fibrous cellulose from which substituents had been removed were obtained in the same manner as in Example 1, except that the pH of the fine fibrous cellulose dispersion to be subjected to the substituent removal treatment was adjusted to 2.4 and that the pH after the washing treatment of the slurry from which substituents had been removed was adjusted to 5.5. The amount of phosphate groups after the removal of the substituents was 0.22 mmol / g.

[0183] Example 8 A dispersion of fine fibrous cellulose from which substituents had been removed and a sheet containing fine fibrous cellulose from which substituents had been removed were obtained in the same manner as in Example 1, except that the pH of the fine fibrous cellulose dispersion to be subjected to the substituent removal treatment was not adjusted and the pH was adjusted to 5.5 after the washing treatment of the slurry from which substituents had been removed. The amount of phosphate groups after the removal of substituents was 0.29 mmol / g.

[0184] Example 9 A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the slurry after substituent removal was uniformly dispersed using a high-speed defibrator (Clearmix-11S, manufactured by M Technique Co., Ltd.) at a peripheral speed of 34 m / sec for 180 minutes.

[0185] Example 10 A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituent removal treatment was carried out by the enzyme treatment described below instead of a heat treatment, and further, the slurry after substituent removal was washed by the method described below.

[0186] [Substituent removal treatment (enzyme treatment)] A 20% by mass aqueous solution of citric acid was added to the obtained fine fibrous cellulose dispersion, and the slurry was adjusted to pH 5.5. Acid phosphatase (Sumiteam PM, manufactured by Shin-Nippon Chemical Industry Co., Ltd.) was added to the obtained slurry in an amount of 3 parts by mass per 100 parts by mass of fine fibrous cellulose, and the mixture was subjected to enzyme treatment in a water bath at 37°C for 2.5 hours. The formation of fine fibrous cellulose aggregates was confirmed by this procedure.

[0187] [Washing treatment of slurry after removal of substituents by enzyme treatment] To the resulting slurry after the removal of the substituents, one-fifth by volume of a strongly basic ion exchange resin (Amberjet 4400; Organo Corporation, conditioned) and a weakly acidic ion exchange resin (Amberlite IRC76; Organo Corporation, conditioned) were added, and the mixture was shaken for 1 hour. After that, the slurry was washed by pouring it onto a mesh with 90 μm openings to separate the resin from the slurry.

[0188] Example 11 A substituent-removed fine fibrous cellulose dispersion and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 2 was used instead of the fine fibrous cellulose dispersion obtained in Production Example 1.

[0189] Example 12 A substituent-removed fine fibrous cellulose dispersion and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 3 was used instead of the fine fibrous cellulose dispersion obtained in Production Example 1.

[0190] Example 13 A substituent-removed fine fibrous cellulose dispersion and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 4 was used instead of the fine fibrous cellulose dispersion obtained in Production Example 1.

[0191] Example 14 The fine fibrous cellulose dispersion obtained in Production Example 5 was used instead of the fine fibrous cellulose dispersion obtained in Production Example 1. Furthermore, instead of the substituent removal treatment (high-temperature heat treatment), a substituent removal treatment (low-temperature heat treatment) described below was carried out. Otherwise, the same procedures as in Example 1 were carried out to obtain a substituent-removed fine fibrous cellulose dispersion and a sheet containing substituent-removed fine fibrous cellulose.

[0192] [Removal of substituents (low-temperature heat treatment)] The obtained fine fibrous cellulose dispersion was heated at a liquid temperature of 40°C for 45 minutes until the amount of xanthate groups reached 0.08 mmol / g.

[0193] <Comparative Example 1> In [Sheet Preparation 1], the same operation as in [Sheet Preparation 1] above was carried out, except that the fine fibrous cellulose dispersion obtained in Production Example 1 was used instead of the substituent-removed fine fibrous cellulose dispersion, to obtain a fine fibrous cellulose-containing sheet.

[0194] <Comparative Example 2> A fine fibrous cellulose-containing sheet was obtained in the same manner as in Comparative Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 3 was used.

[0195] <Comparative Example 3> A fine fibrous cellulose-containing sheet was obtained in the same manner as in Comparative Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 4 was used.

[0196] <Comparative Example 4> A fine fibrous cellulose-containing sheet was obtained in the same manner as in Comparative Example 1, except that the fine fibrous cellulose dispersion obtained in Production Example 5 was used.

[0197] <Comparative Example 5> A dispersion of substituting-free fine fibrous cellulose and a sheet containing substituting-free fine fibrous cellulose were obtained in the same manner as in Example 1, except that the substituting-free treatment was carried out at a liquid temperature of 140°C for 10 minutes and continued until the amount of phosphate groups reached approximately 0.74 mmol / g.

[0198] <Comparative Example 6> A sheet containing coarse fibrous cellulose was obtained in the same manner as in Comparative Example 1, except that the cellulose dispersion containing coarse fibrous cellulose obtained in Production Example 6 was used.

[0199] <Comparative Example 7> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the slurry was not uniformly dispersed after the substituent removal.

[0200] <Comparative Example 8> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 12, except that the slurry was not uniformly dispersed after the substituent removal.

[0201] <Comparative Example 9> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 13, except that the slurry was not uniformly dispersed after the substituent removal.

[0202] <Comparative Example 10> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 14, except that the slurry was not uniformly dispersed after the substituent removal.

[0203] <Comparative Example 11> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that after the substitution groups were removed, the slurry was not uniformly dispersed but was stirred in a disperser at 2000 rpm for 10 minutes.

[0204] <Comparative Example 12> As described below, the substituent removal was carried out in the form of a sheet, not in the form of a slurry, to obtain a sheet containing the substituent-removed fine fibrous cellulose.

[0205] [Sheet production 2] To the fine fibrous cellulose dispersion obtained in Production Example 1 before the removal of the substituents, glycerin was added in an amount of 15 parts by mass per 100 parts by mass of the fine fibrous cellulose. The concentration was adjusted so that the solid content concentration was 0.5% by mass. The finished basis weight of the sheet was 37.5 g / m 2 The amount of slurry was measured so that the thickness was 25 μm, and the slurry was spread on a commercially available acrylic plate and dried in an oven at 50°C. A blocking plate was placed on the acrylic plate to ensure a predetermined basis weight, and the resulting sheet was made into a square shape. By the above procedure, a sheet containing fine fibrous cellulose was obtained. The resulting sheet had a thickness of 25 μm and a density of 1.49 g / cm. 3 It was.

[0206] [Substituent removal treatment] A heat-resistant rubber sheet (X-30-4084-U, manufactured by Shin-Etsu Chemical Co., Ltd.) with a 100 mm diameter hole was placed on a stainless steel plate, and 11 mL of ethylene glycol was filled into the hole. A 5 cm square microfibrous cellulose-containing sheet was immersed in the sheet, and a stainless steel plate was placed on top of it and placed in a heat press (manual hydraulic vacuum heating press, manufactured by Imoto Manufacturing Co., Ltd.) heated to 180 °C. The sheet was treated at 180 °C for 15 minutes to remove the substituents, and then immersed in 30 mL of methanol and washed. This washing was repeated three times, and the sheet was attached to a glass plate and dried by heating at 100 °C for 5 minutes to obtain a microfibrous cellulose-containing sheet with the substituents removed. The amount of phosphate groups measured by the method described below in "Measurement of the amount of phosphate groups in a sheet" was less than 0.1 mmol / g.

[0207] <Comparative Example 13> A dispersion of substituent-removed fine fibrous cellulose and a sheet containing substituent-removed fine fibrous cellulose were obtained in the same manner as in Example 1, except that the following [Ion exchange resin treatment of slurry after substituent removal] was carried out instead of the [Washing treatment of slurry after substituent removal].

[0208] [Ion exchange resin treatment of slurry after removal of substituents] Ion-exchange water was added to the heated slurry obtained in the [substituent removal treatment (high-temperature heat treatment)] to obtain a slurry with a solids concentration of approximately 1.1% by mass. A strongly acidic ion-exchange resin (Amberjet 1024; Organo Corporation, conditioned) and a strongly basic ion-exchange resin (Amberjet 4400; Organo Corporation, conditioned) were then added in a volume ratio of 1 / 10. The mixture was shaken for 1 hour, and then poured onto a 90 μm mesh to separate the resin and slurry. The resulting slurry had a pH of 3.1.

[0209] <Comparative Example 14> A substituent-removed fine fibrous cellulose dispersion and a substituent-removed fine fibrous cellulose-containing sheet were obtained in the same manner as in Comparative Example 13, except that citric acid was not added in the [substituent removal treatment (high-temperature heat treatment)] and urea was added in an amount 1 / 10 of the amount of the fine fibrous cellulose dispersion.

[0210] [evaluation] The dispersions and sheets obtained in the examples and comparative examples were evaluated by the following methods.

[0211] [Fiber width measurement] The fiber width of fibrous cellulose was measured using the following method. Each fibrous cellulose dispersion was diluted with water to a cellulose concentration of 0.01% by mass or more and 0.1% by mass or less and cast onto a hydrophilized carbon film-coated grid. After drying, the grid was stained with uranyl acetate and observed under a transmission electron microscope (TEM, JEOL-2000EX, manufactured by JEOL Ltd.). The obtained image was visualized by imagining arbitrary vertical and horizontal axes of the image width, and the magnification was adjusted so that 20 or more fibers intersected these axes. After obtaining observation images satisfying these conditions, two random axes were drawn vertically and horizontally per image, and the fiber widths of the fibers intersecting the axes were visually determined. Three unique observation images were taken for each dispersion, and the fiber widths of the fibers intersecting each of the two axes were read (20 or more × 2 × 3 = 120 or more). The number-average fiber width was calculated from the fiber widths obtained in this manner. However, in Production Example 6 only, the obtained dispersion was diluted with water so that the cellulose concentration was 0.01% by mass or more and 0.1% by mass or less, and then cast onto a glass plate and observed with a scanning electron microscope (SEM). In addition, the proportion of fine fibrous cellulose having a fiber width of 10 nm or less was calculated based on the following formula. Percentage of fine fibrous cellulose with a fiber width of 10 nm or less (%) = (Number of fine fibrous cellulose with a fiber width of 10 nm or less / Total number of fibrous cellulose) × 100

[0212] [Measurement of phosphorus oxoacid group content] In measuring the amount of phosphorus oxoacid groups (amount of phosphate groups or phosphite groups), ion-exchanged water was first added to the target fine fibrous cellulose to prepare a slurry with a solids concentration of 0.2% by mass. The resulting slurry was treated with an ion-exchange resin and then titrated with an alkali to measure the amount of phosphorus oxoacid groups. Treatment with ion exchange resin was carried out by adding 1 / 10 by volume of a strongly acidic ion exchange resin (Amberjet 1024; Organo Corporation, conditioned) to the above-mentioned fine fibrous cellulose-containing slurry, shaking for 1 hour, and then pouring it onto a mesh with 90 μm openings to separate the resin from the slurry. In addition, alkali titration was performed by measuring the change in the pH of a slurry containing fine fibrous cellulose after ion exchange resin treatment while adding 10 μL of 0.1 N sodium hydroxide solution every 5 seconds. Nitrogen gas was bubbled through the slurry 15 minutes before the start of the titration. In this neutralization titration, two maximum points of increment (the derivative of pH with respect to the amount of alkali added) were observed on the plot of pH versus the amount of alkali added. The first maximum point of increment after starting the addition of alkali is called the first endpoint, and the second maximum point is called the second endpoint (Figure 1). The amount of alkali required from the start of the titration to the first endpoint is equal to the amount of first dissociated acid in the slurry used for titration. The amount of alkali required from the start of the titration to the second endpoint is equal to the total amount of dissociated acid in the slurry used for titration. The amount of alkali (mmol) required from the start of titration to the first endpoint was divided by the solid content (g) in the slurry to be titrated, and the value was taken as the amount of phosphorus oxo acid groups (mmol / g). When measuring the amount of phosphorus oxoacid groups in the pulp, ion-exchanged water was added to the phosphorus oxo-oxidized pulp to prepare a slurry with a solids concentration of 2% by mass. This slurry was then treated six times in a wet pulverization apparatus (Starburst, manufactured by Sugino Machine Co., Ltd.) at a pressure of 200 MPa, and the resulting dispersion was titrated with alkali in the same manner as described above.

[0213] [Measurement of sulfonic acid group content] The amount of sulfonic acid groups was measured as follows. The fine fibrous cellulose was frozen in a freezer and then dried for three days in a freeze dryer (FreeZone, manufactured by Labconco). The freeze-dried material was then pulverized into powder using a hand mixer (Lab Millser PLUS, manufactured by Osaka Chemical) at 20,000 rpm for 60 seconds. The freeze-dried and pulverized sample was subjected to pressure-thermal decomposition using nitric acid in a sealed container. The sample was then appropriately diluted and the amount of sulfur was measured using ICP-OES. The value calculated by dividing by the bone-dry mass of the fine fibrous cellulose used was taken as the amount of sulfate ester groups (unit: mmol / g).

[0214] [Measurement of xanthate group content] The xanthate group content was measured using the Bredee method. Specifically, 40 mL of saturated ammonium chloride solution was added to 1.5 parts by mass (bone dry mass) of fibrous cellulose. The sample was crushed with a glass rod and mixed thoroughly. After leaving the mixture for approximately 15 minutes, it was filtered through GFP filter paper (GS-25, manufactured by Advantec) and thoroughly washed with saturated ammonium chloride solution. The sample, along with the GFP filter paper, was placed in a 500 mL tall beaker, and 50 mL of 0.5 M sodium hydroxide solution (5 °C) was added and stirred. After leaving the mixture for 15 minutes, phenolphthalein solution was added until the solution turned pink, followed by 1.5 M acetic acid. The point at which the solution changed from pink to colorless was designated as the neutralization point. After neutralization, 250 mL of distilled water was added and stirred thoroughly. 10 mL of 1.5 M acetic acid and 10 mL of 0.05 mol / L iodine solution were added using a volumetric pipette. This solution was then titrated with 0.05 mol / L sodium thiosulfate solution. The amount of xanthate groups was calculated using the following formula from the titration amount of sodium thiosulfate and the bone dry mass of fibrous cellulose. Amount of xanthate group (mmol / g) = (0.05 × 10 × 2 - 0.05 × sodium thiosulfate titration (mL)) / 1000 / bone-dry mass of fibrous cellulose (g)

[0215] [Measurement of the amount of phosphate groups in the sheet] The phosphorus atom concentration in the sheet was measured by X-ray fluorescence analysis. Specifically, when the sheet was irradiated with X-rays, the intensity of the characteristic X-rays of the phosphorus atoms emitted when the outer electron transitioned to a vacancy created by the excitation of the inner electron of the phosphorus atom. The concentration of phosphorus atoms was calculated from a calibration curve prepared by the following method. The calibration curve was prepared by preparing a sheet from a dispersion of fine fibrous cellulose with a known amount of phosphate groups, performing X-ray fluorescence analysis, and then plotting the characteristic X-ray intensity of the phosphorus atoms versus the amount of phosphate groups.

[0216] [Measurement of Haze of Dispersion Liquid] The haze of the dispersion was measured by diluting the fibrous cellulose dispersion with ion-exchanged water to 0.2% by mass, and then measuring the haze using a haze meter (HM-150, manufactured by Murakami Color Research Laboratory) and a glass cell for liquids with a 1 cm optical path length (MG-40, manufactured by Fujiwara Seisakusho, reverse optical path) in accordance with JIS K 7136:2000. Zero-point measurement was performed using ion-exchanged water placed in the same glass cell. The dispersion to be measured was allowed to stand for 24 hours in an environment of 23°C and 50% relative humidity before measurement. The liquid temperature of the dispersion during measurement was 23°C.

[0217] [Nanofiber yield measurement] The nanofiber yield after centrifuging the fibrous cellulose dispersion was measured using the method described below. The nanofiber yield is an indicator of the yield of fine fibrous cellulose; the higher the nanofiber yield, the higher the yield of fine fibrous cellulose. Each dispersion was adjusted to a cellulose concentration of 0.1% by mass and centrifuged at 12,000 G for 10 minutes using a refrigerated high-speed centrifuge (Kokusan Co., Ltd., H-2000B). The resulting supernatant was recovered and its cellulose concentration was measured. The yield of fine fibrous cellulose was calculated based on the following formula: Nanofiber yield (mass%) = cellulose concentration in supernatant (mass%) / 0.1 × 100

[0218] [Measuring the amount of nitrogen] The total amount of nitrogen contained in the fine fibrous cellulose and the free nitrogen contained in the fine fibrous cellulose dispersion was measured using the method described below. Each dispersion was adjusted to a solids concentration of 1% by mass and decomposed using the Kjeldahl method (JIS K 0102:2016 44.1). After decomposition, the amount of ammonium ions (mmol) was measured using cation chromatography and divided by the amount of cellulose (g) used in the measurement to calculate the nitrogen content (mmol / g).

[0219] [Measurement of carbamide group] Slurries containing fibrous cellulose (fine fibrous cellulose and coarse fibrous cellulose) were freeze-dried and then pulverized to measure the amount of carbamide groups by trace nitrogen analysis. The amount of carbamide groups introduced per unit mass of fine fibrous cellulose (mmol / g) was calculated by dividing the nitrogen content (g / g) per unit mass of fine fibrous cellulose obtained by trace nitrogen analysis by the atomic weight of nitrogen.

[0220] [Measurement of total light transmittance of sheet] The total light transmittance of the sheet was measured using a haze meter (HM-150, manufactured by Murakami Color Research Laboratory Co., Ltd.) in accordance with JIS K 7361-1:1997.

[0221] [Sheet haze measurement] The haze of the sheet was measured in accordance with JIS K 7136:2000 using a haze meter (HM-150, manufactured by Murakami Color Research Laboratory Co., Ltd.).

[0222] [Yellowness measurement of sheet before and after heating] The yellowness of the sheet was measured before and after heating using Colour Cute i (manufactured by Suga Test Instruments Co., Ltd.) in accordance with JIS K 7373:2006. The yellowness after heating was measured as the yellowness of the sheet heated at 160°C for 6 hours. The measured yellowness was converted into a YI value at a thickness of 50 μm using the following formula. YI value at a thickness of 50 μm = YI value of sheet (measured value) × [50 / sheet thickness (μm)] The thickness of the sheet was measured using a stylus-type constant pressure thickness gauge (Militron 1202DPG-02, manufactured by Mahl TECLOCK CORPORATION) according to the following method: A sheet cut into a size of 50 mm square or larger was conditioned at 23°C and a relative humidity of 50% for 24 hours, and the thickness was measured at four random points, and the average value was used as the sheet thickness. Furthermore, the YI increase rate was calculated from the yellowness index of the sheet before and after heating by the following method. YI increase rate (%) = (yellowness of sheet after heating - yellowness of sheet before heating) / yellowness of sheet before heating × 100

[0223] [Table 2]

[0224] [Table 3]

[0225] [Table 4]

[0226] The dispersions obtained in the examples contained fine fibrous cellulose with a low amount of substituents and were highly transparent. Furthermore, the sheets obtained from these dispersions were highly transparent and showed a small increase in YI before and after heating.

[0227] On the other hand, when the substituent removal treatment was not performed or when the removal treatment was insufficient, the resulting sheet showed a large increase in YI before and after heating (Comparative Examples 1 to 5). Furthermore, when unmodified coarse fibrous cellulose was used, the resulting sheet was opaque (Comparative Example 6). Furthermore, when uniform dispersion was not performed after substituent removal, the resulting slurry had low transparency, and the resulting sheet tended to have low transparency (Comparative Examples 7 to 11). When the substituent removal treatment was performed in sheet form, the sheet had high haze and a high YI value before heating (Comparative Example 12). Furthermore, when uniform dispersion treatment was performed at a pH of less than 4, the sheet had high haze and a high YI value after heating (Comparative Example 13).

[0228] [Measuring the surface roughness of a sheet] Furthermore, the surface roughness of the sheets containing the substituent-removed fine fibrous cellulose obtained in Examples 1, 3, 10, and 11 was measured. The surface roughness of the sheet was measured using an atomic force microscope (NanoScope IIIa, manufactured by Veeco), and the arithmetic mean roughness of a 3 μm square area on the surface of the sheet was taken as the surface roughness of the sheet.

[0229] [Table 5]

[0230] As can be seen from the results in the table above, the surface roughness of the sheets was low in all examples.

[0231] [Measurement of dispersion pH and sheet surface pH] Furthermore, the pH of the dispersion containing the substituent-removed fine fibrous cellulose obtained in Example 1 and Comparative Example 13 and the pH of the sheet surface were measured. When measuring the surface pH of the sheet, 10 μL of ion-exchanged water was dropped onto a 1 cm square area on the sheet surface using a micropipette, and the pH of that area was measured using a flat pH composite electrode (6261-10C; manufactured by HORIBA).

[0232] [Viscosity measurement] Furthermore, the viscosity was measured for the dispersions containing the substituent-removed fine fibrous cellulose obtained in Example 1 and Comparative Example 13. The viscosity was measured using a B-type viscometer (manufactured by BLOOKFIELD, analog viscometer T-LVT) at a temperature of 23°C and a rotation speed of 3 rpm after leaving the dispersion to stand for 24 hours at a fine fibrous cellulose concentration of 0.4% by mass and a relative humidity of 50% before measurement.

[0233] [Table 6]

[0234] As shown in the results in the table above, the pH of the dispersion obtained in Comparative Example 13 and the pH of the sheet surface were less than 4. Therefore, yellowing was observed after heating. Furthermore, the viscosity of the dispersion obtained in Comparative Example 13 was lower than that of the dispersion obtained in Example 1, and the fine fibrous cellulose in Comparative Example 13 was shortened.

[0235] [Measurement of free nitrogen concentration in dispersion liquid] Furthermore, the amount of free nitrogen was measured in the dispersions containing the substituent-removed fine fibrous cellulose obtained in Example 1 and Comparative Examples 13 and 14. Distilled water was added to the fine fibrous cellulose dispersion so that the fine fibrous cellulose concentration was 0.2% by mass, and the mixture was stirred for 24 hours. After stirring, a filtrate was obtained using a filter medium with a pore size of 0.45 μm.

[0236] [Table 7]

[0237] [Concrete pre-mixing agent] Example 15 A concrete pre-mixing agent was prepared by mixing 100 parts by mass of porous calcium carbonate and 200 parts by mass of water, adding the substituent-removed microfibrous cellulose dispersion obtained in Example 1 to a solids content of 0.015 parts by mass, and mixing thoroughly. The resulting concrete pre-mixing agent exhibited good dispersion stability, and the viscosity of the composition was sufficiently low, within a range that did not pose any problems in terms of handleability during actual use. Therefore, the above composition was a good concrete pre-mixing agent.

[0238] [Lubricant] Example 16 A lubricant was prepared by mixing 0.2 parts by mass (solids) of the substituent-removed fine fibrous cellulose dispersion obtained in Example 1, 12.5 parts by mass of polyalkylene glycol, 45.0 parts by mass of propylene glycol, 1.0 part by mass of morpholine, 1.5 parts by mass of lauric acid, and 0.001 parts by mass of a metal deactivator (methylbenzotriazole alkanolamine salt) to a total of 100 parts by mass, with the remainder being water, followed by stirring. The resulting lubricant exhibited good lubricity and storage stability. Therefore, the above composition was suitable as a lubricant for use in frictional parts of equipment.

[0239] [Mold forming composition] Example 17 A mold-forming composition was prepared by mixing 0.25 parts by mass (solids) of the desubstituted fine fibrous cellulose dispersion obtained in Example 1, 100 parts by mass of alumina (Al2O3) (Al-160SG-4, manufactured by Showa Denko K.K.) as an inorganic material, 0.2 parts by mass of A-6114 (carboxylic acid copolymer ammonium salt, manufactured by Toagosei Co., Ltd.) as a dispersant, and 40 parts by mass of water, followed by mixing for 24 hours using a ball mill. The resulting mold-forming composition exhibited good dispersion stability and castability. The resulting mold-forming composition was poured into a gypsum mold and allowed to dry at room temperature for 24 hours to obtain a wet molded body. The resulting wet molded body was fired in an electric furnace to produce a molded body. The resulting molded body was easily demolded from the mold and had high ceramic density. Therefore, the above composition was suitable as a mold-forming composition for improving the production efficiency of molded bodies such as ceramic products.

[0240] [Dental materials] Example 18 A hardener paste was prepared by kneading 4 parts by mass of gypsum dihydrate, 9 parts by mass of anhydrous gypsum, 3.2 parts by mass of magnesium oxide, 6 parts by mass of liquid paraffin, 1 part by mass of surfactant (decaglyceryl trioleate), 0.3 parts by mass of trisodium phosphate, and 3 parts by mass of diatomaceous earth. Furthermore, 3.5 parts by mass of potassium alginate, 60 parts by mass of water, and 10 parts by mass of diatomaceous earth were kneaded to prepare a base paste. Furthermore, 200 parts by mass of isopropanol was added to 100 parts by mass of the substituent-removed fine fibrous cellulose dispersion obtained in Example 1 to precipitate fine fibrous cellulose. The precipitate was recovered by filtration, and the recovered fine fibrous cellulose was heated in an oven at 70°C for 3 hours. After heating, the fine fibrous cellulose had a solids concentration of 15% by mass. The fine fibrous cellulose was mixed and kneaded to obtain a dental material composition, with 1 part by mass of the solids, 26.2 parts by mass of the hardener paste, and 72.8 parts by mass of the base paste. The dental composition thus obtained exhibited good fracture resistance and heat resistance, and was therefore suitable as a dental material for use in intraoral cast crown restorations and prosthetic restorations.

[0241] <Comparative Example 15> A dental composition was obtained in the same manner as in Example 18, except that the fine fibrous cellulose dispersion obtained in Comparative Example 1 was used.

[0242] [YI increase rate before and after heating of dental material composition] In accordance with JIS K 7373:2006, the YI increase rate before and after heating of the dental compositions obtained in Example 18 and Comparative Example 15 was measured by a reflectance measurement method using Colour Cute i (manufactured by Suga Test Instruments Co., Ltd.) The yellowness index after heating was defined as the yellowness index of the composition heated at 160°C for 6 hours, and the YI increase rate was measured by the following method. YI increase rate (%)=(yellowness of composition after heating−yellowness of composition before heating) / yellowness of composition before heating×100

[0243] The YI increase rate in Example 18 was 850%, while the YI increase rate in Comparative Example 15 was 2130%, and yellowing was improved when the substituent-removed fine fibrous cellulose obtained in Example 18 was used.

[0244] [Abrasive] Example 19 The dispersion of the substituent-removed fine fibrous cellulose obtained in Example 1 was mixed with 0.2 parts by mass (solids content) of cerium oxide at 30 parts by mass, and a polishing agent was obtained by mixing the mixture to a total of 100 parts by mass, with the remainder being water. The resulting polishing agent exhibited good sprayability and anti-sagging properties. Therefore, the above composition was suitable as a polishing agent for polishing and cleaning metal products, glass products, stone products, resin products, etc.

[0245] [Removal agent] Example 20 A release agent was prepared by mixing 0.4 parts by mass (solid content) of the substituent-removed fine fibrous cellulose dispersion obtained in Example 1, 35 parts by mass of benzyl alcohol, and 2 parts by mass of hydrogen peroxide (H2O2) to a total of 100 parts by mass, with the remainder being water, and stirring. The obtained release agent showed good results in the coating film peeling test, and no dripping was observed after the addition of the release aid. Therefore, the above composition was suitable as a release agent to be used when removing coating films from substrates such as exterior walls and structures.

[0246] [Papermaking additives] Example 21 Waste paper (papers such as newspapers, cardboard, high-quality waste paper, and discarded confidential documents) was dissolved using a pulper to obtain a recycled waste paper pulp slurry (freeness: 220 ml, calcium content: 60 ppm, sodium content: 35 ppm). Then, foreign matter such as dust was removed from the recycled waste paper pulp slurry using a foreign matter removal device. Next, the substituent-removed fine fibrous cellulose dispersion obtained in Example 1 was added to the recycled waste paper pulp slurry so that the solid content was 30 parts by mass per 100 parts by mass of the recycled waste paper pulp. The obtained recycled waste paper pulp slurry was placed in the container of a molding machine, and a conventional pulp molding die was used to mold the slurry into a thickness of 2.5±0.3 mm and a basis weight of 420±50 g / m. 2 A flat pulp mold was obtained. The obtained pulp mold exhibited good releasability and tensile strength. Therefore, the above composition was suitable as a papermaking additive.

[0247] Example 22 A pulp mold was obtained in the same manner as in Example 21, except that hardwood dissolving pulp manufactured by Oji Paper Co., Ltd. was used instead of recycled waste paper pulp.

[0248] <Comparative Example 16> A pulp mold was obtained in the same manner as in Example 22, except that the fine fibrous cellulose dispersion obtained in Comparative Example 1 was used.

[0249] [YI increase rate before and after heating of pulp mold] The YI increase rates before and after heating of the pulp molds obtained in Example 22 and Comparative Example 16 were measured by a reflectance measurement method using Colour Cute i (manufactured by Suga Test Instruments Co., Ltd.) in accordance with JIS K 7373:2006. The yellowness index after heating was defined as the yellowness index of a composition heated at 160°C for 6 hours, and the YI increase rates were measured by the following method. YI increase rate (%)=(yellowness of composition after heating−yellowness of composition before heating) / yellowness of composition before heating×100 The YI increase rate in Example 22 was 820%, while the YI increase rate in Comparative Example 16 was 2060%, and yellowing was improved when the substituent-removed fine fibrous cellulose obtained in Example 22 was used.

Claims

1. An aqueous dispersion of fine fibrous cellulose having an introduction amount of anionic groups of 0.01 mmol / g or more and 0.4 mmol / g or less and a fiber width of 1 to 10 nm, The nanofiber yield calculated by the following formula is 95% by mass or more, an aqueous dispersion of fine fibrous cellulose, the haze of which is 5.0% or less when the concentration of the fine fibrous cellulose in the aqueous dispersion is 0.2% by mass; Nanofiber yield [mass%] = C / 0.1 × 100 Here, C is the concentration of fine fibrous cellulose contained in the supernatant obtained when an aqueous dispersion containing 0.1% by mass of fine fibrous cellulose is centrifuged at 12,000 G for 10 minutes.

2. 2. The aqueous dispersion of fine fibrous cellulose according to claim 1, wherein the anionic group is a phosphorus oxo acid group or a group derived from a phosphorus oxo acid group.

3. 3. The aqueous dispersion of fine fibrous cellulose according to claim 1, wherein the fine fibrous cellulose has carbamide groups.

4. A method for producing a sheet, comprising forming a sheet from the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

5. A sheet containing fine fibrous cellulose having an introduction amount of anionic groups of 0.01 mmol / g or more and 0.4 mmol / g or less and a fiber width of 1 to 10 nm, The haze is 5.0% or less, A sheet having a YI value of 1.5 or less at a thickness of 50 μm, calculated using the following formula: YI value at a thickness of 50 μm=YI value of sheet (actual measured value)×[50 / sheet thickness (μm)]

6. 6. The sheet according to claim 5, wherein when the sheet is heated at 160°C for 6 hours, the YI increase rate calculated by the following formula is 1500% or less: YI increase rate (%)=(yellowing index of sheet after heating−yellowing index of sheet before heating) / yellowing index of sheet before heating×100 In the above formula, the yellowness of the sheet is the yellowness measured in accordance with JIS K 7373:2006.

7. The sheet according to claim 5 or 6, which has a total light transmittance of 90.0% or more.

8. The sheet according to any one of claims 5 to 7, wherein the surface roughness of at least one surface is 10 nm or less.

9. a step (A) of removing at least a portion of the anionic groups from fine fibrous cellulose having anionic groups and having a fiber width of 1000 nm or less; The method includes, after the step (A), a step of washing the slurry after removing the substituents, and a step (B) of uniformly dispersing the slurry at a pH of 4 or higher, The step (A) is carried out in a slurry state, and anionic groups are removed until the amount of anionic groups introduced is 0.01 mmol / g or more and 0.4 mmol / g or less; In the step (B), a uniform dispersion treatment is carried out so that the fiber width of the fine fibrous cellulose is 1 to 10 nm.

10. The method for producing fine fibrous cellulose according to claim 9, wherein the amount of anionic groups introduced into the fine fibrous cellulose subjected to step (A) is 0.60 mmol / g or more.

11. The method for producing fine fibrous cellulose according to claim 9 or 10, wherein the anionic group is a phosphorus oxo acid group or a group derived from a phosphorus oxo acid group.

12. The method for producing fine fibrous cellulose according to any one of claims 9 to 11, wherein the fine fibrous cellulose subjected to step (A) has a carbamide group.

13. The method for producing fine fibrous cellulose according to any one of claims 9 to 12, further comprising a step of reducing the nitrogen content.

14. The method for producing fibrous cellulose according to any one of claims 9 to 13, further comprising a step of adjusting the pH of the slurry containing the fine fibrous cellulose to 3 to 8 before the step (A).

15. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as a concrete pre-mixing agent.

16. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as a lubricant.

17. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used for a molding composition.

18. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as a dental material.

19. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as an abrasive.

20. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as a release agent.

21. The aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3, which is used as a papermaking additive.

22. A concrete pre-mixing agent comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

23. A lubricant comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

24. A mold-forming composition comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

25. A dental material comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

26. An abrasive comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

27. A release agent comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

28. A papermaking additive comprising the aqueous dispersion of fine fibrous cellulose according to any one of claims 1 to 3.

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