Biodegradable resin composition and biodegradable resin molded article

A biodegradable resin composition with a polyester-based resin and protein blend addresses the challenge of ocean biodegradation, enhancing decomposition rates and moldability by providing a nitrogen source for microorganisms.

JP7800424B2Active Publication Date: 2026-01-16MITSUBISHI CHEM CORP
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Patent Information

Application Number
JP2022526652
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-28
Filing Date
2021-05-27
Publication Date
2026-01-16
Estimated Expiration
2041-05-27

AI Technical Summary

Technical Problem

There is insufficient research on resins that biodegrade in ocean environments, where conditions differ significantly from soil or compost, leading to inadequate biodegradation rates of conventional biodegradable plastics.

Method used

A biodegradable resin composition containing a polyester-based resin blended with a specific amount of protein, such as casein or albumin, promotes biodegradation in ocean conditions by providing a nitrogen source for microorganisms, enhancing biodegradability and moldability.

Benefits of technology

The resin composition exhibits excellent marine biodegradability and moldability, facilitating rapid decomposition in seawater through biofilm formation and microbial growth promotion.

✦ Generated by Eureka AI based on patent content.

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Abstract

A biodegradable resin composition contains a resin and protein. The resin composition contains 40-99.9 mass% of the resin, and the resin contains a polyester resin. The polyester resin has at least three species of structural units, and at least one species of these structural units is selected from the succinic acid unit, azelaic acid unit, sebacic acid unit, and brassylic acid unit. The following can be provided: a biodegradable resin composition that exhibits an excellent molding processability and that can increase the marine biodegradation rate and / or degradation percentage of polyester resin; and molded articles of the biodegradable resin composition.
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Description

[Technical Field]

[0001] The present invention relates to a biodegradable resin composition and a biodegradable resin molded article. More specifically, the present invention relates to a biodegradable resin composition that is biodegradable at a rate suitable for marine biodegradation, and a biodegradable resin molded article obtained by molding the biodegradable resin composition. [Background technology]

[0002] In recent years, concerns about ecosystem and environmental pollution due to the disposal of plastic products and other factors have become apparent. For example, in Europe, regulations and laws are being enacted that prohibit the use of disposable plastic shopping bags and disposable plastic containers such as cups and plates in retail stores, and various regulations are being enacted around the world from the perspective of preventing environmental pollution. Recently, there has been a demand for products made from biodegradable plastics, such as plastic products that can be composted in ordinary households (home compostable products). In addition, plastic waste dumped into the ocean has also become a problem in recent years.

[0003] As a means for solving the above-mentioned problems, research has been conducted into biodegradable materials that can be decomposed into carbon dioxide and water by microorganisms in the soil, and polybutylene succinate (hereinafter abbreviated as PBS) is one known example.

[0004] Patent Document 1 discloses a composition containing a water-soluble organic nitrogen compound and an inorganic component that promotes the growth of microorganisms in a biodegradable resin, as a biodegradable plastic with an increased rate of biodegradation in soil. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Special Publication No. 2012-505271 Summary of the Invention [Problem to be solved by the invention]

[0006] However, there has been insufficient research into resins that biodegrade in the ocean. The resin composition and molded articles made from the resin composition described in Patent Document 1 above are shown to be accelerated in soil and compost, but no mention is made of biodegradation in the ocean. Furthermore, in the ocean, biodegradation is required under conditions that are significantly different from the conditions for biodegradation in compost or soil under which conventional biodegradable plastics are decomposed (for example, environments with low temperatures, underwater, high salinity, low nutrients, low oxygen levels, and few microorganisms).

[0007] The present invention has been made in view of the above background, and aims to provide a biodegradable resin composition that can increase the biodegradation rate and decomposition rate of polyester-based resins in the ocean and has good moldability, and a molded article thereof. [Means for solving the problem]

[0008] The present inventors have conducted extensive research to solve the above problems, and as a result, based on the idea that proteins may contribute to promoting biodegradation in the ocean, they have discovered that by blending a specific amount of protein with a specific polyester resin, it is possible to obtain a biodegradable resin composition and a molded article thereof that have excellent biodegradability and moldability in the ocean, thereby completing the present invention. That is, the gist of the present invention resides in the following [1] to

[10] . [1] A biodegradable resin composition containing a resin and a protein, wherein the resin is contained in the resin composition in an amount of 40 to 99.9% by mass, the resin containing a polyester-based resin, the polyester-based resin having three or more types of structural units, at least one of which is selected from a succinic acid unit, an azelaic acid unit, a sebacic acid unit, and a brassylic acid unit (however, this does not include a biodegradable resin degradation accelerator containing cellulose, hemicellulose, and lignin, in which the mass ratio of nitrogen to carbon in the biodegradable resin degradation accelerator is 0.04 or more, and the mass ratio of the hemicellulose content to the total content of cellulose and lignin is 0.2 or more). [2] The biodegradable resin composition according to the above [1], wherein the polyester resin has a melting enthalpy, as defined below, of 10 to 300 J / g. (enthalpy of fusion) Using a Hitachi High-Tech Science DSC7020 differential scanning calorimeter, the sample was heated from 25°C to 200°C at 10°C / min, then cooled from 200°C to -50°C at 10°C / min, and heated a second time from -50°C to 200°C at 10°C / min. The area of ​​the endothermic peak corresponding to the melting of the sample during this second heating process was taken as the enthalpy of fusion (ΔHm). [3] The biodegradable resin composition according to [1] or [2] above, wherein the polyester resin is at least one selected from the group consisting of polybutylene succinate adipate (PBSA), polybutylene glutarate azelate (PBGAz), polybutylene succinate sebacate (PBSSe), polybutylene sebacate terephthalate (PBSeT), and polybutylene glutarate brassinate (PBGBr). [4] The biodegradable resin composition according to any one of the above [1] to [3], wherein the protein has a molecular weight of 10,000 or more. [5] The biodegradable resin composition according to any one of the above [1] to [4], wherein the average particle size of the protein is 1 to 150 μm. [6] The biodegradable resin composition according to any one of the above [1] to [5], wherein the concentration of nitrogen atoms derived from the protein contained in the resin composition is 50 ppm by mass or more. [7] The biodegradable resin composition according to any one of the above [1] to [6], wherein the protein is at least one selected from the group consisting of casein, zein, albumin, gelatin, and gluten. [8] A biodegradable resin molded article obtained by molding the biodegradable resin composition according to any one of [1] to [7] above. [9] A biodegradable resin molded article according to the above item [8], which is a film or sheet.

[10] A method for biodegrading a polyester resin, comprising biodegrading the polyester resin in seawater in the presence of proteins. [Effects of the Invention]

[0009] According to the present invention, it is possible to provide a biodegradable resin composition that is excellent in marine biodegradability and moldability, and a biodegradable resin molded article that is excellent in biodegradability. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, an embodiment of the present invention will be described in detail. The present invention is not limited to the following description, and can be implemented by any modification within the scope of the gist of the present invention. In this specification, when "~" is used to express a numerical value or a physical property value, the value before and after the "~" is used to include the values ​​before and after the "~"

[0011] The biodegradable resin composition of the present invention contains a resin and a protein (hereinafter, sometimes referred to as "the protein of the present invention" or simply "the protein"). The resin composition preferably contains 40 to 99.9% by mass of the resin. The resin contains a polyester-based resin (hereinafter, sometimes referred to as "the polyester-based resin of the present invention" or simply "the polyester-based resin"), and the polyester-based resin preferably has three or more types of structural units, at least one of which is selected from a succinic acid unit, an azelaic acid unit, a sebacic acid unit, and a brassylic acid unit. However, the biodegradable resin composition of the present invention excludes a biodegradable resin degradation accelerator containing cellulose, hemicellulose, and lignin, in which the mass ratio of nitrogen to carbon in the biodegradable resin degradation accelerator is 0.04 or more, and the mass ratio of the hemicellulose content to the total content of cellulose and lignin is 0.2 or more. Furthermore, the biodegradable resin composition of the present invention excludes biodegradable thermoplastic pellets containing at least caseinate and / or casein, a plasticizer, and a biodegradable polyester. Each of the constituent elements will be described in detail below.

[0012] [protein] The biodegradable resin composition of the present invention is characterized by containing a certain amount of protein relative to the polyester resin.

[0013] Examples of proteins used in the present invention include zein, gluten, gelatin, casein and its salts, whey protein, albumin, keratin, fibroin, protamine, etc. In addition, proteins artificially synthesized by enzymatic reaction, solid-phase peptide synthesis, methods using genetically modified organisms, etc. can also be used. Among these, casein, zein, albumin, gelatin, and gluten are preferred, and casein and albumin are more preferred.

[0014] The amount of protein contained in the biodegradable resin composition of the present invention is preferably 0.1% by mass or more, more preferably 0.2% by mass or more, even more preferably 0.3% by mass or more, and particularly preferably 0.5% by mass or more, because it has excellent biodegradation-promoting effects and mechanical properties, while on the other hand, it is preferably 60% by mass or less, more preferably 50% by mass or less, even more preferably 40% by mass or less, and particularly preferably 30% by mass or less. Furthermore, the protein is preferably contained in an amount of 0.1 to 70 parts by mass per 100 parts by mass of polyester resin. The biodegradable resin composition of the present invention may contain one type of protein or two or more types of proteins.

[0015] The biodegradable resin composition of the present invention can be obtained by mixing the above-mentioned protein with a polyester-based resin in a predetermined ratio. Furthermore, the protein may be directly mixed with the polyester-based resin without separation or purification from a natural product containing the protein, as long as the required mechanical properties and moldability are not impaired. While this can keep production costs low, the appearance and tactile feel of the molded product may be impaired, or an odor may be generated. The degree of protein purification can be appropriately selected depending on the intended use of the molded product, taking into account the required quality and cost.

[0016] There are no particular limitations on the type of protein, but proteins with a molecular weight of 10,000 or more are particularly suitable. The molecular weight of the protein is more preferably 12,000 or more, and particularly preferably 15,000 or more. A high molecular weight prevents the protein from eluting in seawater in a short period of time, and makes it easier to fully exhibit the biodegradation-promoting effect. On the other hand, there is no particular upper limit on the molecular weight of the protein, but it is usually 5,000,000 or less. When the protein is a polymer, the weight-average molecular weight is used.

[0017] The molecular weight of a protein can generally be measured using known methods such as SDS-polyacrylamide gel electrophoresis (SDS-PAGE) and gel permeation chromatography (GPC). In SDS-PAGE, the protein is first denatured with sodium dodecyl sulfate (SDS), so that the protein molecular chains have a negative charge proportional to their chain length. This is then injected into one end of a polyacrylamide gel, and electrophoresis is performed under an applied electric field. The molecular weight can then be measured by comparing the migration distance with that of a protein of known molecular weight. Proteins that are soluble in water or other solvents can also be measured using GPC.

[0018] The concentration of protein-derived nitrogen atoms contained in the biodegradable resin composition is preferably 50 ppm by mass or more, more preferably 70 ppm by mass or more, even more preferably 100 ppm by mass or more, particularly preferably 200 ppm by mass or more, and most preferably 500 ppm by mass or more, since this facilitates the development of a biodegradation-promoting effect. On the other hand, the concentration is preferably 19% by mass or less, more preferably 10% by mass or less, and even more preferably 5% by mass or less, since the basicity is not too high and the activity of microorganisms is unlikely to decrease.

[0019] The average particle size of the protein is preferably 150 μm or less, more preferably 130 μm or less, even more preferably 100 μm or less, and particularly preferably 80 μm or less, from the viewpoints of easier mixing with the polyester resin, preventing poor appearance, and facilitating the biodegradation-promoting effect. Furthermore, in order to obtain good mechanical properties and appearance along with the biodegradation-promoting effect, the average particle size is preferably 15 μm or less, and particularly preferably 10 μm or less. The lower limit is not particularly limited, but from the viewpoint of workability (such as scattering and adhesion due to static electricity), it is preferably 1 μm or more, more preferably 2 μm or more, and even more preferably 4 μm or more. Here, the particle size of the protein is usually measured by sieving, but various known methods such as laser diffraction and microscopy can also be used.

[0020] As described above, the average particle size of the protein used in the present invention is preferably 1 to 150 μm, and a biodegradable resin composition containing a polyester resin and a protein having an average particle size of 1 to 150 μm is also one embodiment of the present invention. In this embodiment, the protein content is preferably 0.1 to 70 parts by mass, more preferably 0.2 to 60 parts by mass, even more preferably 0.3 to 50 parts by mass, particularly preferably 0.5 to 40 parts by mass, and especially preferably 1 to 30 parts by mass, relative to 100 parts by mass of the polyester resin, as this provides excellent biodegradation-promoting effects and mechanical properties. The biodegradable resin composition of the present invention may contain one kind of protein or a combination of two or more kinds of proteins.

[0021] The mechanism by which proteins promote marine biodegradation is thought to be as follows. An example of a polyester resin suitable for use in the biodegradable resin composition of the present invention is polybutylene succinate / adipate (PBSA), an aliphatic polyester resin. PBSA boasts superior moldability compared to polyhydroxyalkanoates (PHAs) and the like, but its use alone results in insufficient biodegradability in the ocean. This is likely due to the fact that the ocean is home to fewer microorganisms capable of degrading PBSA than soil or compost, and that it contains fewer nutrients necessary for microbial growth. In particular, since the main constituent elements of biodegradable resins are carbon, oxygen, and hydrogen, nitrogen is thought to be insufficient for microbial growth and biodegradation of the resin. Therefore, the biodegradable resin composition of the present invention contains protein as a nitrogen source available to microorganisms, which is thought to promote microbial growth on the surface of biodegradable resin molded articles and enable rapid biodegradation. The inventors also focused on the formation of biofilms required for seawater biodegradation, and hypothesized that specific polyamines promote biofilm formation, accelerating the biodegradation of polyester resins. Since proteins were found to have a biodegradation-promoting effect, they hypothesized that amino acids produced by the decomposition of proteins in seawater promote biofilm formation and thereby biodegradation in seawater.

[0022] [Polyester resin] The polyester resin contained in the biodegradable resin composition of the present invention is not particularly limited as long as it has three or more structural units, at least one of which is selected from a succinic acid unit, an azelaic acid unit, a sebacic acid unit, and a brassylic acid unit. The polyester resin of the present invention is preferably a biodegradable resin, and more preferably a marine biodegradable resin, because the biodegradation-promoting effect of proteins is more likely to be exhibited more effectively.

[0023] Each structural unit of the polyester resin may be derived from a compound derived from petroleum or a compound derived from a plant raw material, but is preferably derived from a compound derived from a plant raw material.

[0024] Each polyester resin will be described below. Each repeating unit in a polyester resin is also referred to as a compound unit corresponding to the compound from which the repeating unit is derived. For example, a repeating unit derived from an aliphatic diol is referred to as an "aliphatic diol unit," a repeating unit derived from an aliphatic dicarboxylic acid is referred to as an "aliphatic dicarboxylic acid unit," and a repeating unit derived from an aromatic dicarboxylic acid is referred to as an "aromatic dicarboxylic acid unit." Furthermore, the "main structural unit" in a polyester-based resin usually refers to a structural unit that accounts for 80% by mass or more of the polyester-based resin, and there are cases in which no structural units other than the main structural unit are contained.

[0025] The polyester resin may be used alone or in a blend of two or more polyester resins differing in the type of structural unit, the ratio of structural units, the production method, the physical properties, etc. Furthermore, a resin other than the polyester resin may be used in combination as long as the effects of the present invention are not impaired. When a resin other than the polyester resin is used in combination, it is preferable to use a biodegradable resin in combination. The polyester resin according to the present invention has three or more types of structural units. It is believed that the presence of three or more types of structural units in the polyester resin reduces the crystallinity of the polyester resin, increasing the amount of amorphous parts, and thereby facilitating biodegradation.

[0026] The polyester resin according to the present invention has at least one aliphatic dicarboxylic acid unit selected from succinic acid units, azelaic acid units, sebacic acid units, and brassylic acid units. Since the biodegradability of polyester resins is likely to be improved by forming a resin composition with proteins, polyester resins having dicarboxylic acid units and diol units are more preferred. That is, preferred polyester resins are aliphatic polyester resins (hereinafter sometimes referred to as "aliphatic polyester resin (A)") containing aliphatic diol units and aliphatic dicarboxylic acid units as main structural units, and aliphatic-aromatic polyester resins (B) in which at least a portion of the repeating units of the aliphatic polyester resin (A) have been replaced with aromatic compound units.

[0027] <Diol unit> The diol units contained in the polyester resin may be aliphatic or aromatic, but are preferably aliphatic because they are easily biodegradable, and diol units represented by the following general formula (1) are particularly preferred. The diol units contained in the polyester resin may be one type or two or more types of units in any combination and ratio, and may contain aliphatic diol units and aromatic diol units. When the polyester resin contains multiple types of diol units, the aliphatic diol units preferably account for 30 mol % or more, and more preferably 50 mol % or more, of the total diol units. -OR 1-O- (1) In formula (1), R 1 represents a divalent aliphatic hydrocarbon group. R 1 From the viewpoints of moldability, mechanical strength, etc., the number of carbon atoms in the divalent aliphatic hydrocarbon group represented by the formula (I) is preferably 2 or more, more preferably 4 or more. On the other hand, it is preferably 20 or less, more preferably 16 or less, even more preferably 12 or less, and particularly preferably 6 or less. A particularly preferred group as the aliphatic hydrocarbon group is an aliphatic hydrocarbon group having 4 carbon atoms.

[0028] Specific examples of the aliphatic diol that provides the diol unit represented by formula (1) include ethylene glycol, 1,3-propanediol, 1,4-butanediol, 1,4-cyclohexanedimethanol, etc., and 1,4-butanediol is particularly preferred. Two or more types of the aliphatic diol units can also be used.

[0029] The diol units contained in the polyester resin may contain aromatic diol units. Specific examples of aromatic diol components that provide aromatic diol units include xylylene glycol, 4,4'-dihydroxybiphenyl, 2,2-bis(4'-hydroxyphenyl)propane, 2,2-bis(4'-β-hydroxyethoxyphenyl)propane, bis(4-hydroxyphenyl)sulfone, and bis(4-β-hydroxyethoxyphenyl)sulfonic acid. The aromatic diol component may be a derivative of an aromatic diol compound. Alternatively, the aromatic diol component may be a compound having a structure in which a plurality of aliphatic diol compounds and / or aromatic diol compounds are dehydrated and condensed with each other.

[0030] <Dicarboxylic acid unit> The polyester resin according to the present invention has aliphatic dicarboxylic acid units. When the polyester resin has aliphatic dicarboxylic acid units, it is easy to exhibit the effect of promoting biodegradation by proteins. The dicarboxylic acid units contained in the polyester resin may be one type or two or more types of units in any combination and ratio, but it is preferable that the polyester resin has two or more types of dicarboxylic acid units. When the polyester resin has two or more types of dicarboxylic acid units, it may contain only aliphatic units or may further contain aromatic units. When a polyester resin contains multiple types of dicarboxylic acid units, the aliphatic dicarboxylic acid units preferably account for 30 mol% or more, and more preferably 40 mol% or more, of the total dicarboxylic acid units. Meanwhile, the upper limit of the aliphatic dicarboxylic acid units is 100 mol%. When a polyester resin contains aromatic dicarboxylic acid units, the aromatic dicarboxylic acid units preferably account for 70 mol% or less, more preferably 60 mol% or less, even more preferably 40 mol% or less, and particularly preferably 25 mol% or less, of the total dicarboxylic acid units.

[0031] The dicarboxylic acid unit contained in the polyester resin is preferably a dicarboxylic acid unit represented by the following general formula (2) or oxalic acid. -OC-R 2 -CO- (2) In formula (2), R 2 represents a divalent aliphatic hydrocarbon group.

[0032] The aliphatic dicarboxylic acid component that provides the aliphatic dicarboxylic acid unit represented by formula (2) is not particularly limited, but an aliphatic dicarboxylic acid or a derivative thereof such as an alkyl ester that will provide the desired dicarboxylic acid unit may be used. At least one of the dicarboxylic acid units contained in the polyester resin according to the present invention is selected from succinic acid units, azelaic acid units, sebacic acid units, and brassylic acid units (hereinafter, these units may be collectively referred to as "essential dicarboxylic acid units"). Of these, succinic acid units are preferred, and it is more preferred that the polyester resin contains both succinic acid units and sebacic acid units. Since succinic acid takes a short time to reach 90% saturation in seawater, it is thought that the succinic acid units quickly become low molecular weight in seawater, promoting biodegradation. Furthermore, although the biodegradation rate of azelaic acid units, sebacic acid units, and brassylic acid units as dicarboxylic acids alone is not as fast as that of succinic acid, when copolymerized into polyesters, they are more likely to biodegrade in seawater, making them more easily recognized by enzymes in seawater and promoting decomposition. Specific examples of the aliphatic dicarboxylic acid units other than the essential dicarboxylic acid units include units derived from oxalic acid, malonic acid, glutaric acid, pimelic acid, suberic acid, undecanedioic acid, dodecanedioic acid, dimer acid, and the like.

[0033] When the polyester resin has an aromatic dicarboxylic acid unit, specific examples of the aromatic dicarboxylic acid unit include terephthalic acid, isophthalic acid, naphthalenedicarboxylic acid, diphenyldicarboxylic acid, 2,5-furandicarboxylic acid, etc. Among these, terephthalic acid and 2,5-furandicarboxylic acid are preferred.

[0034] The aromatic dicarboxylic acid component that becomes the aromatic dicarboxylic acid unit may be a derivative of an aromatic dicarboxylic acid compound. For example, derivatives of the aromatic dicarboxylic acid components exemplified above are preferred, and among them, lower alkyl esters having 1 to 4 carbon atoms and acid anhydrides are mentioned. Specific examples of derivatives of aromatic dicarboxylic acid compounds include lower alkyl esters such as methyl esters, ethyl esters, propyl esters, and butyl esters of the aromatic dicarboxylic acid components exemplified above; cyclic acid anhydrides of the aromatic dicarboxylic acid components exemplified above, such as succinic anhydride; and the like. Among them, dimethyl terephthalate is preferred. When the polyester resin has two or more types of dicarboxylic acid units, combinations of succinic acid units and adipic acid units, succinic acid units and sebacic acid units, succinic acid units and azelaic acid units, succinic acid units and brassylic acid units, succinic acid units and terephthalic acid units, succinic acid units and furandicarboxylic acid units, sebacic acid units and terephthalic acid units, sebacic acid units and furandicarboxylic acid units, azelaic acid units and terephthalic acid units, brassylic acid units and terephthalic acid units, azelaic acid units and glutaric acid units, and brassylic acid units and glutaric acid units are preferred, and combinations of succinic acid units and adipic acid units, succinic acid units and sebacic acid units, sebacic acid units and terephthalic acid units, azelaic acid units and glutaric acid units, and brassylic acid units and glutaric acid units are more preferred. More specifically, examples of polyester resins include polybutylene succinate adipate (PBSA), polybutylene succinate sebacate (PBSSe), polybutylene succinate azelate (PBSAz), polybutylene succinate brassylate (PBSBr), polybutylene succinate terephthalate (PBST), polybutylene succinate furanoate (PBSF), polybutylene sebacate terephthalate (PBSeT), polybutylene sebacate furanoate (PBSeF), and polybutylene azelate. Polybutylene succinate terephthalate (PBAzT), polybutylene brassylate terephthalate (PBBrT), polybutylene glutarate azelate (PBGAz), and polybutylene glutarate brassylate (PBGBr) are preferred, and polybutylene succinate adipate (PBSA), polybutylene succinate sebacate (PBSSe), polybutylene sebacate terephthalate (PBSeT), polybutylene glutarate azelate (PBGAz), and polybutylene glutarate brassylate (PBGBr) are more preferred.

[0035] Since the polyester resin can provide a biodegradable resin composition with improved moldability, heat resistance, and decomposability, it is preferable that the polyester resin contains 5 mol% to 100 mol% of essential dicarboxylic acid units relative to the total dicarboxylic acid units. The content is preferably 10 mol% or more, more preferably 50 mol% or more, even more preferably 64 mol% or more, and particularly preferably 68 mol% or more. When the polyester resin contains two or more types of essential dicarboxylic acid units, it is preferable that the most abundant unit be within the above-mentioned range.

[0036] Furthermore, when a polyester resin has two or more types of dicarboxylic acid units, it is more preferable that the second most abundant type of unit is 5 mol% or more and 50 mol% or less of the total dicarboxylic acid units. By copolymerizing the second type of unit within the above-mentioned predetermined range, the crystallinity of the polyester resin can be reduced, and the biodegradation rate can be increased. For the same reason, the amount of the unit is more preferably 10 mol% or more and 45 mol% or less, and even more preferably 15 mol% or more and 40 mol% or less of the total dicarboxylic acid units. The polyester resin having dicarboxylic acid units may be a mixture of polyester resins having different amounts of dicarboxylic acid units. For example, a polyester resin containing only essential dicarboxylic acid units as dicarboxylic acid units may be blended with a polyester resin containing dicarboxylic acid units other than the essential dicarboxylic acid units, thereby adjusting the proportion of dicarboxylic acid units contained in the polyester resin composition to fall within the above range.

[0037] <Aliphatic polyester resin (A)> The aliphatic polyester resin (A) used in the present invention is preferably an aliphatic polyester resin containing an aliphatic diol unit and an aliphatic dicarboxylic acid unit as main structural units, where the types and amounts of the structural units contained in the aliphatic polyester resin are as described above.

[0038] More specifically, the aliphatic polyester resin (A) is preferably a polyester resin containing an aliphatic diol unit represented by the above formula (1) and an aliphatic dicarboxylic acid unit represented by the above formula (2).

[0039] The aliphatic polyester resin (A) may contain two or more types of aliphatic diol units represented by formula (1), and the aliphatic polyester resin (A) may contain two or more types of aliphatic dicarboxylic acid units represented by formula (2).

[0040] The aliphatic polyester resin (A) used in the present invention preferably has a proportion of succinic acid units in all dicarboxylic acid units of 5 mol% or more and 100 mol% or less. The aliphatic polyester resin (A) may be a mixture of aliphatic polyester resins having different amounts of succinic acid units. For example, it is possible to blend an aliphatic polyester resin that does not contain aliphatic dicarboxylic acid units other than succinic acid (containing only succinic acid units as aliphatic dicarboxylic acid units) with an aliphatic polyester resin that contains aliphatic dicarboxylic acid units other than succinic acid, and use the aliphatic polyester resin (A) with the amount of succinic acid units adjusted to fall within the above-mentioned preferred range.

[0041] The aliphatic polyester resin (A) may contain an oxycarboxylic acid unit. In this case, from the viewpoint of moldability, the content thereof is preferably 20 mol % or less, more preferably 10 mol % or less, even more preferably 5 mol % or less, and most preferably 0 mol % (not included), based on 100 mol % of all structural units constituting the polyester resin (A).

[0042] <Aliphatic-aromatic polyester resin (B)> The aliphatic-aromatic polyester resin (B) is preferably a polyester resin in which at least a portion of the repeating units of the above-mentioned aliphatic polyester resin (A) have been replaced with aromatic compound units, preferably a polyester resin in which a portion of the aliphatic dicarboxylic acid units of the above-mentioned aliphatic polyester resin (A) have been replaced with aromatic dicarboxylic acid units, and which contains aliphatic diol units, aliphatic dicarboxylic acid units, and aromatic dicarboxylic acid units as main structural units.

[0043] Examples of aromatic compound units include aromatic diol units having an aromatic hydrocarbon group which may have a substituent, aromatic dicarboxylic acid units having an aromatic hydrocarbon group which may have a substituent, aromatic dicarboxylic acid units having an aromatic heterocyclic group which may have a substituent, and aromatic oxycarboxylic acid units having an aromatic hydrocarbon group which may have a substituent. The aromatic hydrocarbon group and aromatic heterocyclic group may be monocyclic or may have multiple rings bonded or condensed together. Specific examples of aromatic hydrocarbon groups include 1,2-phenylene groups, 1,3-phenylene groups, 1,4-phenylene groups, dinaphthylene groups, and diphenylene groups. Specific examples of aromatic heterocyclic groups include 2,5-furandiyl groups.

[0044] Specific examples of aromatic oxycarboxylic acid components that provide aromatic oxycarboxylic acid units include p-hydroxybenzoic acid and p-β-hydroxyethoxybenzoic acid. The aromatic oxycarboxylic acid component may be a derivative of an aromatic oxycarboxylic acid compound. Alternatively, it may be a compound (oligomer) having a structure in which a plurality of aliphatic oxycarboxylic acid compounds and / or aromatic oxycarboxylic acid compounds are dehydrated and condensed with each other. That is, an oligomer may be used as a raw material.

[0045] When the aromatic compound component that provides these aromatic compound units has optical isomers, any of the D-isomer, L-isomer, and racemic isomer may be used. Furthermore, the aromatic compound component is not limited to the above examples, as long as it can provide an aromatic compound unit. Furthermore, the aromatic compound component may be used alone, or two or more types may be used in any combination and ratio.

[0046] In the aliphatic-aromatic polyester resin (B), the aromatic compound unit is preferably an aromatic dicarboxylic acid unit, and in this case, the content of the aromatic dicarboxylic acid unit is preferably 10 mol% to 80 mol% based on the total amount of the aliphatic dicarboxylic acid unit and the aromatic dicarboxylic acid unit (100 mol%). Furthermore, it is preferable to use a terephthalic acid unit or a 2,5-furandicarboxylic acid unit as the aromatic dicarboxylic acid unit. In this case, the aliphatic-aromatic polyester resin (B) is preferably at least one selected from polybutylene terephthalate succinate (PBST) resin, polybutylene succinate furanoate (PBSF) resin, polybutylene terephthalate sebacate (PBSeT) resin, polybutylene sebacate furanoate (PBSeF) resin, polybutylene terephthalate azelate (PBAzT) resin, and polybutylene brassylate terephthalate (PBBrT) resin. Furthermore, as the aliphatic-aromatic polyester resin (B), polybutylene-2,5-furandicarboxylate resin is also preferred.

[0047] The aliphatic-aromatic polyester resin (B) is not limited to one type, and two or more types of aliphatic-aromatic polyester resins (B) differing in the type and ratio of structural units, production method, physical properties, etc. can be blended and used.

[0048] <Units of 3 or more functions> The polyester resin may have an increased melt viscosity by copolymerizing a trifunctional or higher aliphatic polyhydric alcohol, a trifunctional or higher aliphatic polycarboxylic acid or its acid anhydride, or a trifunctional or higher aliphatic polyoxycarboxylic acid. When using these copolymerization components, one type may be used alone, or two or more types may be used in any combination and ratio.

[0049] Specific examples of trifunctional aliphatic polyhydric alcohols include trimethylolpropane and glycerin, and specific examples of tetrafunctional aliphatic polyhydric alcohols include pentaerythritol. A specific example of a trifunctional aliphatic polycarboxylic acid or an acid anhydride thereof is propanetricarboxylic acid or an acid anhydride thereof, and a specific example of a tetrafunctional polycarboxylic acid or an acid anhydride thereof is cyclopentanetetracarboxylic acid or an acid anhydride thereof.

[0050] Trifunctional aliphatic oxycarboxylic acids are divided into (i) types having two carboxyl groups and one hydroxyl group in the same molecule, and (ii) types having one carboxyl group and two hydroxyl groups. Either type can be used, but from the viewpoints of moldability, mechanical strength, and the appearance of molded products, types having two carboxyl groups and one hydroxyl group in the same molecule, such as malic acid, are preferred, and more specifically, malic acid is preferred. Tetrafunctional aliphatic oxycarboxylic acid components are divided into (i) types having three carboxyl groups and one hydroxyl group in the same molecule, (ii) types having two carboxyl groups and two hydroxyl groups in the same molecule, and (iii) types having three hydroxyl groups and one carboxyl group in the same molecule. Either type can be used, but those having multiple carboxyl groups are preferred, and more specifically, citric acid, tartaric acid, etc.

[0051] When the polyester resin contains such structural units derived from trifunctional or higher functional components, the content thereof is preferably 0.01 mol% or more, and usually 5 mol% or less, preferably 2.5 mol% or less, based on 100 mol% of all structural units constituting the polyester resin. Note that the polyester resin does not necessarily need to contain the structural units derived from the trifunctional or higher functional components.

[0052] (Method of producing polyester resin) The polyester resin can be produced by a known method for producing polyester resins. The polycondensation reaction can be carried out under suitable conditions that have been conventionally used, and is not particularly limited. Usually, a method is employed in which the degree of polymerization is further increased by carrying out a reduced pressure operation after the esterification reaction has proceeded.

[0053] The polyester resin having diol units and dicarboxylic acid units is produced by reacting a diol component that forms the diol units with a dicarboxylic acid component that forms the dicarboxylic acid units. The amounts of the diol component and the dicarboxylic acid component used are adjusted so that the polyester resin produced has the desired composition. The diol component and the dicarboxylic acid component are usually reacted in substantially equimolar amounts, but the diol component is usually used in a 1 to 20 mol % excess over the dicarboxylic acid component because it is distilled off during the esterification reaction.

[0054] When a polyester resin contains components (optional components) other than the essential components such as aliphatic hydroxycarboxylic acid units and polyfunctional component units, the corresponding compounds (monomers and oligomers) are reacted so that the aliphatic hydroxycarboxylic acid units and polyfunctional component units have the desired compositions. In this case, there are no limitations on the timing or method of introducing the optional components into the reaction system, and any method is acceptable as long as the polyester resin suitable for the present invention can be produced.

[0055] For example, the timing and method of introducing the hydroxycarboxylic acid unit into the reaction system are not particularly limited as long as it is introduced before the polycondensation reaction between the diol component and the dicarboxylic acid component, and examples include (1) a method in which the catalyst is dissolved in an hydroxycarboxylic acid solution in advance and mixed, and (2) a method in which the catalyst is introduced into the reaction system and mixed at the same time when the raw materials are charged.

[0056] The timing of introducing the compound that forms the polyfunctional component unit may be such that it is charged simultaneously with other monomers or oligomers at the initial stage of polymerization, or it may be charged after the transesterification reaction and before the start of decompression. However, charging it simultaneously with other monomers or oligomers is preferred from the viewpoint of simplifying the process.

[0057] Polyester resins are usually produced in the presence of a catalyst. Any catalyst that can be used in the production of known polyester resins can be selected as the catalyst, as long as it does not significantly impair the effects of the present invention. Suitable examples of the catalyst include metal compounds of germanium, titanium, zirconium, hafnium, antimony, tin, magnesium, calcium, zinc, etc. Among these, germanium compounds and titanium compounds are preferred.

[0058] Examples of germanium compounds that can be used as catalysts include organic germanium compounds such as tetraalkoxygermanium, and inorganic germanium compounds such as germanium oxide and germanium chloride. Among these, germanium oxide, tetraethoxygermanium, and tetrabutoxygermanium are preferred in terms of cost and availability, with germanium oxide being particularly preferred.

[0059] Examples of titanium compounds that can be used as catalysts include organic titanium compounds such as tetraalkoxytitanium compounds such as tetrapropyl titanate, tetrabutyl titanate, and tetraphenyl titanate. Among these, tetrapropyl titanate, tetrabutyl titanate, and the like are preferred in terms of price and availability.

[0060] In addition, other catalysts may be used in combination as long as the object of the present invention is not impaired. The catalysts may be used alone or in any combination and ratio of two or more.

[0061] The amount of catalyst used is arbitrary as long as it does not significantly impair the effects of the present invention, but is usually 0.0005% by mass or more, more preferably 0.001% by mass or more, and usually 3% by mass or less, preferably 1.5% by mass or less, based on the amount of monomer used. A large amount of catalyst makes the catalytic effect more likely to be exhibited, while a small amount reduces production costs, makes the resulting polymer less likely to be discolored, and provides excellent hydrolysis resistance.

[0062] The timing of introducing the catalyst is not particularly limited as long as it is before the polycondensation reaction, and the catalyst may be introduced when the raw materials are charged or when pressure reduction is started. When the hydroxycarboxylic acid unit is introduced, it is preferably introduced simultaneously with the monomer or oligomer that forms the hydroxycarboxylic acid unit when the raw materials are charged, or by dissolving the catalyst in an aqueous hydroxycarboxylic acid solution and introducing it, and particularly, the method of dissolving the catalyst in an aqueous hydroxycarboxylic acid solution and introducing it is preferred because it increases the polymerization rate.

[0063] The reaction conditions, such as temperature, polymerization time, and pressure, used in producing the polyester resin may be any as long as they do not significantly impair the effects of the present invention. However, the reaction temperature for the esterification reaction and / or transesterification reaction between the dicarboxylic acid component and the diol component is usually 150°C or higher, preferably 180°C or higher, and on the other hand, usually 260°C or lower, preferably 250°C or lower. The reaction atmosphere is usually an inert atmosphere such as nitrogen or argon. The reaction pressure is usually normal pressure to 10 kPa, with normal pressure being preferred. The reaction time is usually 1 hour or longer, and on the other hand, usually 10 hours or shorter, preferably 6 hours or shorter, and more preferably 4 hours or shorter. When the reaction temperature is not too high, excessive generation of unsaturated bonds is unlikely to occur, gelation caused by unsaturated bonds is unlikely to occur, and polymerization control is easy.

[0064] In addition, the polycondensation reaction after the esterification reaction and / or transesterification reaction between the dicarboxylic acid component and the diol component is carried out under a pressure of usually 0.01 × 10 3 Pa or more, preferably 0.03 x 10 3 On the other hand, it is usually 1.4 x 10 Pa or more. 3 Pa or less, preferably 0.4×10 3 It is desirable to carry out the reaction under a vacuum of 100 Pa or less. The reaction temperature is usually 150°C or higher, preferably 180°C or higher, and usually 260°C or lower, preferably 250°C or lower. The reaction time is usually 2 hours or longer, and usually 15 hours or shorter, preferably 10 hours or shorter. When the reaction temperature is not too high, gelation caused by unsaturated bonds due to excessive generation of unsaturated bonds is less likely to occur, and polymerization can be easily controlled.

[0065] When producing a polyester resin, a chain extender such as a carbonate compound or a diisocyanate compound can also be used. In this case, the amount of chain extender is typically 10 mol% or less, preferably 5 mol% or less, and more preferably 3 mol% or less, as the proportion of carbonate bonds or urethane bonds in the polyester resin, assuming that all structural units constituting the polyester resin are 100 mol%. However, the presence of urethane bonds or carbonate bonds in the polyester resin may inhibit biodegradability. Therefore, in the present invention, the carbonate bonds are less than 1 mol%, preferably 0.5 mol% or less, more preferably 0.1 mol% or less, and the urethane bonds are 0.55 mol% or less, preferably 0.3 mol% or less, more preferably 0.12 mol% or less, and even more preferably 0.05 mol% or less, relative to all structural units constituting the aliphatic polyester resin. This amount is 0.9 parts by mass or less, preferably 0.5 parts by mass or less, more preferably 0.2 parts by mass or less, and even more preferably 0.1 parts by mass or less, calculated per 100 parts by mass of polyester resin. In particular, by setting the amount of urethane bonds within the above range, smoke and odor from the molten film caused by decomposition of the urethane bonds during the film-forming process and the like are suppressed, and film breakage due to foaming during the molten film is less likely to occur, making it easier to form the film stably. The carbonate bond amount and urethane bond amount in the aliphatic polyester resin (A) are 1 H-NMR and 13 It can be calculated from the results of measurements using NMR (nuclear magnetic resonance spectroscopy) such as C-NMR.

[0066] Specific examples of carbonate compounds as the chain extender include diphenyl carbonate, ditolyl carbonate, bis(chlorophenyl) carbonate, m-cresyl carbonate, dinaphthyl carbonate, dimethyl carbonate, diethyl carbonate, dibutyl carbonate, ethylene carbonate, diamyl carbonate, dicyclohexyl carbonate, etc. In addition, carbonate compounds composed of the same or different hydroxy compounds derived from hydroxy compounds such as phenols and alcohols can also be used.

[0067] Specific examples of the diisocyanate compound include known diisocyanates such as 2,4-tolylene diisocyanate, a mixture of 2,4-tolylene diisocyanate and 2,6-tolylene diisocyanate, 1,5-naphthylene diisocyanate, xylylene diisocyanate, hydrogenated xylylene diisocyanate, hexamethylene diisocyanate, isophorone diisocyanate, 4,4'-dicyclohexylmethane diisocyanate, tetramethylxylylene diisocyanate, 2,4,6-triisopropylphenyl diisocyanate, 4,4'-diphenylmethane diisocyanate, and tolidine diisocyanate.

[0068] Other chain extenders such as dioxazoline and silicate esters may also be used. Specific examples of silicate esters include tetramethoxysilane, dimethoxydiphenylsilane, dimethoxydimethylsilane, and diphenyldihydroxysilane.

[0069] High molecular weight polyester resins using these chain extenders (coupling agents) can also be produced using conventional techniques. After polycondensation is complete, the chain extender is added to the reaction system in a homogeneous molten state without a solvent, and reacted with the polyester obtained by polycondensation.

[0070] More specifically, a polyester resin with a substantially hydroxyl end group and a weight-average molecular weight (Mw) of 20,000 or more, preferably 40,000 or more, obtained by catalytically reacting a diol component with a dicarboxylic acid component, can be reacted with a chain extender to obtain a higher molecular weight polyester resin. Prepolymers with a weight-average molecular weight of 20,000 or more can be produced with the use of a small amount of chain extender without being affected by residual catalyst, even under harsh conditions such as a molten state, and therefore can produce high molecular weight polyester resins without forming gels during the reaction. The weight-average molecular weight (Mw) of a polyester resin is determined by gel permeation chromatography (GPC) using chloroform as the solvent at 40°C, converted into a monodisperse polystyrene equivalent.

[0071] Therefore, for example, when the above-mentioned diisocyanate compound is used as a chain extender to further increase the molecular weight of a polyester resin, it is preferable to use a prepolymer having a weight-average molecular weight of 20,000 or more, preferably 40,000 or more. A high weight-average molecular weight requires only a small amount of diisocyanate compound to increase the molecular weight, making it less likely that the heat resistance will decrease. Using such a prepolymer, a polyester resin having urethane bonds with a linear structure linked via urethane bonds derived from the diisocyanate compound is produced.

[0072] The pressure during chain extension is usually 0.01 MPa or more and 1 MPa or less, preferably 0.05 MPa or more and 0.5 MPa or less, more preferably 0.07 MPa or more and 0.3 MPa or less, and most preferably normal pressure.

[0073] The reaction temperature during chain extension is usually 100° C. or higher, preferably 150° C. or higher, more preferably 190° C. or higher, and most preferably 200° C. or higher, and on the other hand, is usually 250° C. or lower, preferably 240° C. or lower, and more preferably 230° C. or lower. When the reaction temperature is within the above range, gelation or decomposition of the polyester resin does not occur at the same time, and the reaction is easy to carry out with a viscosity that is easy to stir, without using high stirring power.

[0074] The time for chain extension is usually 0.1 minute or more, preferably 1 minute or more, more preferably 5 minutes or more, and usually 5 hours or less, preferably 1 hour or less, more preferably 30 minutes or less, and most preferably 15 minutes or less. By setting the chain extension time within the above range, it is possible to extend the chain to the desired molecular weight and also to prevent the polyester resin from gelling or decomposing.

[0075] <Physical properties of polyester resin> (molecular weight) The molecular weight of the polyester resin used in the present invention can be measured by gel permeation chromatography (GPC). The weight average molecular weight (Mw) of the polyester resin, using monodisperse polystyrene as the standard, is usually 10,000 or more and 1,000,000 or less. However, because of advantages in terms of moldability and mechanical strength, it is preferably 20,000 or more, more preferably 30,000 or more, and even more preferably 50,000 or more. On the other hand, it is preferably 800,000 or less, more preferably 600,000 or less, even more preferably 500,000 or less, and particularly preferably 400,000 or less.

[0076] (Melt Flow Rate) The melt flow rate (MFR) of polyester resins is measured at 190°C under a load of 2.16 kg according to JIS K7210 (1999), and is usually 0.1 g / 10 min or more and 100 g / 10 min or less, but from the viewpoint of moldability and mechanical strength, it is preferably 50 g / 10 min or less, more preferably 40 g / 10 min or less, and particularly preferably 30 g / 10 min or less. The MFR of polyester resins can be adjusted by the molecular weight.

[0077] (Melting point and tensile modulus) The melting point of the polyester resin is usually 15° C. or higher, preferably 20° C. or higher, more preferably 60° C. or higher, even more preferably 70° C. or higher, particularly preferably 75° C. or higher, and most preferably 80° C. or higher, because it has excellent moldability. On the other hand, it is preferably 170° C. or lower, more preferably 150° C. or lower, even more preferably 140° C. or lower, particularly preferably 130° C. or lower, and most preferably 110° C. or lower. When there are multiple melting points, it is preferable that at least one of the melting points is within the above range. Furthermore, the tensile modulus of the polyester resin is preferably 60 MPa or more, more preferably 100 MPa or more, even more preferably 140 MPa or more, and particularly preferably 180 MPa or more, because it has excellent moldability and impact strength, and on the other hand, it is preferably 1000 MPa or less, more preferably 700 MPa or less, even more preferably 500 MPa or less, and particularly preferably 300 MPa or less, that is, it is especially preferably 180 to 1000 MPa.

[0078] The melting point and tensile modulus of the polyester resin may be adjusted by any method, but may be adjusted, for example, by selecting the type of dicarboxylic acid component (copolymerization component) other than the component that constitutes the essential dicarboxylic acid unit, adjusting the copolymerization ratio of each component, or combining these. The tensile modulus is measured by the method described in the examples below.

[0079] (enthalpy of fusion) The melting enthalpy of a polyester-based resin is an index indicating the crystallinity of the resin. A low crystallinity of the resin is preferable in terms of the ease of polymer molecular chain mobility and biodegradability. On the other hand, a high crystallinity of the resin is preferable in terms of moldability. Therefore, the melting enthalpy of the polyester-based resin is preferably 10 J / g or more and 300 J / g or less. The melting enthalpy of the polyester-based resin is more preferably 12 J / g or more, even more preferably 15 J / g or more, particularly preferably 20 J / g or more, and most preferably 30 J / g or more. On the other hand, the melting enthalpy of the polyester-based resin is more preferably 200 J / g or less, even more preferably 150 J / g or less, particularly preferably 100 J / g or less, and most preferably 90 J / g or less. The melting enthalpy is measured by the method described in the Examples below.

[0080] (glass transition temperature) When a polyester resin is biodegraded, its glass transition temperature is lower than the temperature of the environment in which it is placed, such as the ocean, which loosens the crystalline structure of the polyester resin and allows the molecular main chain to rotate and vibrate, facilitating biodegradation. Therefore, the glass transition temperature (Tg) of the polyester resin is preferably 40°C or lower, more preferably 30°C or lower, even more preferably 25°C or lower, particularly preferably 20°C or lower, and most preferably 0°C or lower. The glass transition temperature is measured by the method described in the Examples.

[0081] (acid number) The acid value of the polyester resin is preferably low in order to prevent hydrolysis and to ensure excellent storage stability. Therefore, the acid value of the polyester resin is preferably 250 eq / t or less, more preferably 150 eq / t or less, even more preferably 100 eq / t or less, and particularly preferably 50 eq / t or less. The lower limit is not particularly limited, but is usually 3 eq / t or more. The acid value can be measured by the method described in the Examples.

[0082] (reduced viscosity) Reduced viscosity (η) of polyester resinsp / c) may be appropriately selected depending on the application, processing method, etc. Specifically, the reduced viscosity of the resin at 30°C is preferably 0.5 dL / g or more, more preferably 0.8 dL / g or more, even more preferably 1.0 dL / g or more, and particularly preferably 1.2 dL / g or more, and on the other hand, it is preferably 4.0 dL / g or less, more preferably 3.0 dL / g or less, even more preferably 2.5 dL / g or less, and particularly preferably 2.3 dL / g or less. By setting the reduced viscosity of the polyester-based resin within the above range, it is possible to ensure the mechanical properties when processed into a molded article, and also to ensure that the melt viscosity of the biodegradable resin composition during molding processing is such that it does not place an excessive load on molding machines such as extruders and injection machines, thereby ensuring productivity.

[0083] The reduced viscosity of a polyester resin can usually be measured by the following method. First, the resin is dissolved in a solvent to prepare a resin solution with a concentration c (g / dL). Next, using a capillary viscometer (Ubbelohde viscometer), the passage time t0 of the solvent and the passage time t of the resin solution are measured at a temperature of 30.0°C ± 0.1°C, and the relative viscosity η is calculated based on the following formula (i): rel Then, the relative viscosity η rel From the above, the specific viscosity η is calculated based on the following formula (ii): sp Ask for. η rel =t / t0 (i) η sp =η rel -1 (ii) The obtained specific viscosity η sp Dividing by the concentration c (g / dL) gives the reduced viscosity η sp / c can be calculated. Generally, the higher this value, the larger the molecular weight.

[0084] <Amount of resin> The biodegradable resin composition of the present invention may contain a resin other than the above-mentioned polyester, but the amount of the resin contained in the biodegradable resin composition of the present invention, including the resin other than the above-mentioned polyester, is preferably 40 to 99.9% by mass. A large amount of resin is preferable in terms of excellent mechanical properties and appearance of the resulting molded article, while a small amount is preferable in terms of easily exhibiting the biodegradability-promoting effect in seawater. Therefore, the amount of resin contained in the biodegradable resin composition of the present invention is preferably 45% by mass or more, more preferably 50% by mass or more, and even more preferably 60% by mass or more, and is preferably 99% by mass or less, more preferably 95% by mass or less, and even more preferably 90% by mass or less.

[0085] In addition, in order to facilitate the expression of the biodegradability-promoting effect of proteins, it is preferable that the resin contains a large amount of polyester-based resin. Therefore, the amount of polyester-based resin contained in the biodegradable resin composition of the present invention is preferably 40% by mass or more, more preferably 45% by mass or more, even more preferably 50% by mass or more, and particularly preferably 60% by mass or more, and on the other hand, it is preferably 99.9% by mass or less, more preferably 99% by mass or less, even more preferably 95% by mass or less, and particularly preferably 90% by mass or less.

[0086] <Other resins> Next, other resins that can be contained in the biodegradable resin composition of the present invention will be described. When the biodegradable resin composition of the present invention contains other resins, only one type or two or more types may be contained. The physical properties of the other resins, such as molecular weight, melt flow rate, melting point, tensile modulus, fusion enthalpy, glass transition temperature, and reduced viscosity, are preferably in the same ranges as those for the polyester resins described above for the same reasons.

[0087] <Oxycarboxylic acid resin (C)> The oxycarboxylic acid resin (C) has an oxycarboxylic acid unit as a main structural unit, and the oxycarboxylic acid unit is preferably an aliphatic oxycarboxylic acid unit represented by the following formula (3). -OR 3 -CO- (3) (In the above formula (3), R 3 represents a divalent aliphatic hydrocarbon group or a divalent alicyclic hydrocarbon group.

[0088] Specific examples of the aliphatic oxycarboxylic acid component that provides the aliphatic oxycarboxylic acid unit of formula (3) include glycolic acid, 2-hydroxy-n-butyric acid, 2-hydroxycaproic acid, 2-hydroxy-3,3-dimethylbutyric acid, 2-hydroxy-3-methylbutyric acid, 2-hydroxyisocaproic acid, 6-hydroxycaproic acid, and mixtures thereof. When optical isomers exist in these, they may be either the D-form or the L-form. Two or more of these aliphatic oxycarboxylic acid components can also be used in combination.

[0089] Furthermore, urethane bonds, amide bonds, carbonate bonds, ether bonds, etc. can be introduced into the hydroxycarboxylic acid resin (C) to the extent that biodegradability is not affected.

[0090] The method for producing the hydroxycarboxylic acid resin (C) is not particularly limited, and it can be produced by a known method such as direct polymerization of hydroxycarboxylic acid or ring-opening polymerization of a cyclic compound.

[0091] The molecular weight of the hydroxycarboxylic acid resin (C) can be measured by gel permeation chromatography (GPC). The weight average molecular weight (Mw) of the hydroxycarboxylic acid resin (C) is usually 10,000 or more and 1,000,000 or less, using monodisperse polystyrene as the standard substance. However, because of advantages in terms of moldability and mechanical strength, it is preferably 20,000 or more and 500,000 or less, and more preferably 50,000 or more and 400,000 or less.

[0092] The melt flow rate (MFR) of the hydroxycarboxylic acid resin (C), as measured at 190°C under a load of 2.16 kg according to JIS K7210 (1999), is usually 0.1 g / 10 min or more and 100 g / 10 min or less, but from the viewpoints of moldability and mechanical strength, it is preferably 50 g / 10 min or less, particularly preferably 40 g / 10 min or less. The MFR of the hydroxycarboxylic acid resin (C) can be adjusted by the molecular weight.

[0093] The melting point of the hydroxycarboxylic acid resin (C) is preferably 50° C. or higher, more preferably 55° C. or higher, even more preferably 70° C. or higher, and particularly preferably 75° C. or higher. On the other hand, it is preferably 200° C. or lower, more preferably 190° C. or lower, even more preferably 180° C. or lower, particularly preferably 170° C. or lower, and especially preferably 150° C. or lower. When there are multiple melting points, it is preferable that at least one of the melting points is within the above range. The tensile modulus of elasticity of the oxycarboxylic acid resin (C) is preferably 180 to 1000 MPa. When the melting point is within the above range, the moldability is excellent, and when the tensile modulus is within the above range, the moldability and impact strength are excellent.

[0094] The method for adjusting the melting point and tensile modulus of the hydroxycarboxylic acid resin (C) is not particularly limited. For example, the melting point and tensile modulus can be adjusted by selecting the type of copolymerization component other than the hydroxycarboxylic acid, adjusting the copolymerization ratio of each component, or combining these components.

[0095] <Polyhydroxyalkanoate (D)> As the aliphatic oxycarboxylic acid resin (C), polyhydroxyalkanoates (D) described below can also be preferably used. The polyhydroxyalkanoate (hereinafter sometimes referred to as PHA) (D) preferably used in the present invention is an aliphatic polyester containing a repeating unit represented by the general formula: [-CHR-CH2-CO-O-] (wherein R is an alkyl group having 1 to 15 carbon atoms).

[0096] From the viewpoints of moldability and thermal stability, the polyhydroxyalkanoate (D) used in the present invention preferably contains 80 mol% or more, and more preferably 85 mol% or more, of 3-hydroxybutyrate units as a constituent component. Furthermore, polyhydroxyalkanoates (D) produced by microorganisms are preferred. Specific examples of polyhydroxyalkanoates (D) include poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) copolymer resins and poly(3-hydroxybutyrate-co-3-hydroxyvalerate-co-3-hydroxyhexanoate) copolymer resins. In particular, poly(3-hydroxybutyrate-co-3-hydroxyhexanoate) copolymer resin, ie, PHBH, is preferred from the viewpoint of molding processability and the physical properties of the resulting molded article.

[0097] In the polyhydroxyalkanoate (D), the ratio of 3-hydroxybutyrate (hereinafter sometimes referred to as 3HB) to the copolymerized comonomer, such as 3-hydroxyhexanoate (hereinafter sometimes referred to as 3HH), i.e., the monomer ratio in the copolymer resin, is preferably 3-hydroxybutyrate / comonomer = 97 / 3 to 80 / 20 (mol % / mol %), and more preferably 95 / 5 to 85 / 15 (mol % / mol %), from the viewpoints of molding processability and molded product quality. A high comonomer ratio facilitates molding processability because the molding temperature and thermal decomposition temperature are not close to each other. A low comonomer ratio facilitates crystallization of the polyhydroxyalkanoate (D), resulting in excellent productivity.

[0098] The ratio of each monomer in the polyhydroxyalkanoate (D) can be measured by gas chromatography as follows. Approximately 20 mg of dried PHA is added to 2 ml of a sulfuric acid / methanol mixture (15 / 85 by mass) and 2 ml of chloroform, sealed, and heated at 100°C for 140 minutes to obtain the methyl ester of the PHA decomposition product. After cooling, 1.5 g of sodium bicarbonate is added little by little to neutralize the mixture, and the mixture is left to stand until the evolution of carbon dioxide gas stops. 4 ml of diisopropyl ether is added and mixed well, and the monomer unit composition of the PHA decomposition product in the supernatant is analyzed by capillary gas chromatography to determine the ratio of each monomer in the copolymer resin.

[0099] The weight-average molecular weight (hereinafter sometimes referred to as Mw) of the polyhydroxyalkanoate (D) used in the present invention can be measured by the aforementioned gel permeation chromatography (GPC), and the weight-average molecular weight (Mw) using monodisperse polystyrene as the standard substance is usually 200,000 to 2,500,000, preferably 250,000 to 2,000,000, and more preferably 300,000 to 1,000,000. When the weight-average molecular weight is within the above range, the mechanical properties and moldability are excellent.

[0100] The melt flow rate (MFR) of the polyhydroxyalkanoate (D), as measured at 190°C under a load of 2.16 kg according to JIS K7210 (1999), is preferably 1 g / 10 min or more and 100 g / 10 min or less, but from the viewpoints of moldability and mechanical strength, is more preferably 80 g / 10 min or less, and particularly preferably 50 g / 10 min or less. The MFR of the polyhydroxyalkanoate (D) can be adjusted by the molecular weight.

[0101] The melting point of the polyhydroxyalkanoate (D) is preferably 100° C. or higher, more preferably 120° C. or higher, and is preferably 180° C. or lower, more preferably 170° C. or lower, and particularly preferably lower than 160° C. When there are multiple melting points, it is preferable that at least one of the melting points is within the above range.

[0102] Polyhydroxyalkanoate (D) can be produced by, for example, a microorganism such as Alcaligenes eutrophus AC32 strain, which is obtained by introducing a PHA synthase gene derived from Aeromonas caviae into Alcaligenes eutrophus (international deposit under the Budapest Treaty, international depository authority: National Institute of Advanced Industrial Science and Technology International Patent Organism Depositary (6-1 Central, 1-1 Higashi, Tsukuba, Ibaraki Prefecture, Japan), original deposit date: August 12, 1996, transferred on August 7, 1997, deposit number FERM BP-6038 (transferred from original deposit FERM P-15786)) (J. Bacteriol., 179, 4821 (1997)).

[0103] Commercially available products can be used as the polyhydroxyalkanoate (D), and examples of commercially available polyhydroxyalkanoates (D) containing 3-hydroxybutyrate units and 3-hydroxyhexanoate units as main structural units include "PHBH X331N," "PHBH X131A," "PHBH X151A," and "PHBH 151C" manufactured by Kaneka Corporation.

[0104] In the present invention, the aliphatic hydroxycarboxylic acid resin (C), including the polyhydroxyalkanoate (D), is not limited to one type, and two or more types of aliphatic hydroxycarboxylic acid resins (C) differing in the type and ratio of structural units, production method, physical properties, etc. may be blended and used.

[0105] [Other ingredients] In addition to proteins, the biodegradable resin composition of the present invention may contain, as "other components," one or more of various additives such as fillers, plasticizers, antistatic agents, antioxidants, light stabilizers, ultraviolet absorbers, dyes, pigments, hydrolysis inhibitors, crystal nucleating agents, antiblocking agents, weathering agents, heat stabilizers, flame retardants, release agents, antifogging agents, surface wetting improvers, incineration aids, dispersing aids, various surfactants, and slip agents. The biodegradable resin composition of the present invention may also contain functional additives such as a freshness-preserving agent and an antibacterial agent.

[0106] These other components can be blended as desired within the range that does not impair the effects of the present invention, and one type may be used alone, or two or more types may be used.

[0107] The content of other components in the biodegradable resin composition of the present invention is usually preferably such that the total amount thereof is 0.01% by mass or more and 40% by mass or less relative to the total amount of the biodegradable resin composition of the present invention so as not to impair the physical properties of the biodegradable resin composition of the present invention.

[0108] [Method for producing biodegradable resin composition] The biodegradable resin composition of the present invention can be produced by kneading the above-mentioned protein and resin in a kneader to disperse the protein in the resin. Furthermore, other resins and other components may be mixed in the kneader together with the protein and resin, as needed.

[0109] This mixing step is carried out by mixing the protein and polyester resin with other resins and other components used as needed in a predetermined ratio simultaneously or in any order using a mixer such as a tumbler, V-type blender, Nauta mixer, Banbury mixer, kneading roll, or extruder, and preferably further melt-kneading the mixture.

[0110] The kneader used in the mixing step may be a melt kneader. The extruder may be either a twin-screw extruder or a single-screw extruder, with a twin-screw extruder being more preferred. The temperature during melt-kneading is preferably 140 to 220°C. This temperature range makes it possible to shorten the time required for the melting reaction, prevent resin deterioration and protein denaturation, and further improve practical physical properties such as impact resistance and moist heat resistance. From the same perspective, the melt-kneading temperature is more preferably 150 to 210°C. The melt-kneading time is preferably 20 seconds to 20 minutes, more preferably 30 seconds to 15 minutes, from the viewpoint of more reliably avoiding resin deterioration, etc. Therefore, it is preferable to set the melt-kneading temperature and time conditions so as to satisfy these melt-kneading conditions.

[0111] It is desirable to pulverize the protein before mixing it with the biodegradable polyester resin, which allows the protein to be uniformly dispersed in the biodegradable resin composition, resulting in a molded article that is biodegradable as well as has excellent mechanical properties and appearance. The pulverization step can be carried out using a pulverizer such as a stone mill, a cutter mill, a jet mill, a crush mill, etc. The particle size (average particle size) after pulverization is as described above.

[0112] Furthermore, it is preferable to dry the protein before mixing it with the biodegradable polyester resin. By drying, the molecular weight is less likely to decrease due to hydrolysis of the resin when mixed with the resin, and the mechanical strength is less likely to decrease. The moisture content of the protein after drying is preferably 20% by mass or less, more preferably 10% by mass or less, and particularly preferably 5% by mass or less. Proteins can be dried using batch dryers such as hot air dryers, vacuum dryers, and inert ovens, or continuous dryers such as vibration fluidized bed dryers, flash dryers, and cylindrical dryers. The drying temperature is usually in the range of 40°C to 200°C. A higher drying temperature improves drying efficiency, while a lower temperature reduces the risk of discoloration, deterioration, and other problems such as poor appearance and odor.

[0113] <Biodegradability> In this specification, "biodegradable" means that a resin is decomposed by the action of microorganisms through hydrolysis or the like into low molecular weight compounds such as oligomers and monomers, which are then further decomposed into water, carbon dioxide, and the like. In this specification, the degree of biodegradation is calculated as the ratio of biological oxygen demand (BOD) to theoretical oxygen demand (ThOD). The degree of biodegradation in seawater is measured in accordance with ISO 14851:1999 (Plastics - Determination of ultimate aerobic biodegradability in aqueous culture medium - Method by measurement of oxygen consumption using a closed respirometer).

[0114] The degree of biodegradability of a resin usually varies depending on the temperature of the environment in which the resin exists. When the polyester-based resin according to the present invention is biodegraded in the sea, the crystalline structure of the polyester-based resin is loosened, and the molecular main chain is likely to rotate and vibrate, which is thought to facilitate biodegradation. Therefore, it is preferable that the glass transition temperature of the polyester-based resin be lower than the seawater temperature. Therefore, it is preferable that the glass transition temperature of the polyester-based resin according to the present invention be 20°C or lower. Furthermore, from the viewpoint of marine biodegradability, it is preferable that the polyester-based resin according to the present invention is not polylactic acid. The biodegradability of the biodegradable resin composition according to this embodiment, at any time point after the start of a biodegradation test, preferably exceeds 1.4 times the biodegradability of a composition obtained by removing proteins from the biodegradable resin composition according to this embodiment (hereinafter, this may be referred to as the "reference composition"). (Hereinafter, the increase in biodegradability relative to the biodegradability of the reference composition may be referred to as the "improved biodegradation degree.") Specifically, on the 28th day after the start of a biodegradation test in accordance with the above-mentioned standard, the improved biodegradation degree of the biodegradable resin composition according to this embodiment is more preferably 1.5 times or more, even more preferably 1.7 times or more, and particularly preferably 2.0 times or more. In this specification, "high biodegradability" means that the degree of improvement in biodegradability of the biodegradable resin composition is large at any time point after the start of the biodegradability test.

[0115] [Biodegradation method for polyester resins] As described above, since the biodegradation of polyester resins can be promoted by proteins, the biodegradable resin composition of the present invention can be applied to a method for biodegrading polyester resins. That is, it can be applied to a method for biodegrading polyester resins in seawater in the presence of proteins. Here, the preferred ranges of polyester resins, proteins, other resins, components, etc. suitable for this method are as described above.

[0116] [Biodegradable resin molded body] The biodegradable resin composition of the present invention can be molded by various molding methods applicable to general-purpose plastics. That is, the biodegradable resin composition of the present invention is preferably molded and used as a biodegradable resin molded article. Examples of molding methods include compression molding (compression molding, laminate molding, stampable molding), injection molding, extrusion molding, and coextrusion molding (film molding by inflation or T-die methods, laminate molding, pipe molding, electric wire / cable molding, and molding of profiled materials), heat press molding, blow molding (various blow moldings), calendar molding, solid molding (uniaxial stretch molding, biaxial stretch molding, roll molding, stretch-oriented nonwoven fabric molding), thermoforming (vacuum forming, pressure forming), plastic processing, powder molding (rotational molding), and various nonwoven fabric moldings (dry method, adhesive method, entanglement method, spunbonding method, etc.). Among these, injection molding, extrusion molding, compression molding, or heat press molding, particularly extrusion molding or injection molding, is preferred. Specific shapes include sheets, films, and containers, with films or sheets being more preferred.

[0117] Furthermore, the biodegradable polyester resin molded article of the present invention obtained by molding the biodegradable resin composition of the present invention can be subjected to various secondary processing steps in order to impart surface functions such as chemical functions, electrical functions, magnetic functions, mechanical functions, friction / wear / lubrication functions, optical functions, thermal functions, biocompatibility, etc. Examples of secondary processing steps include embossing, painting, bonding, printing, metallizing (plating, etc.), machining, and surface treatments (antistatic treatment, corona discharge treatment, plasma treatment, photochromism treatment, physical vapor deposition, chemical vapor deposition, coating, etc.).

[0118] [Application] The biodegradable resin composition of the present invention is suitable for a wide range of uses, such as packaging materials for packaging liquid, powdered, and solid materials, such as various foods, medicines, and miscellaneous goods, agricultural materials, and construction materials. Specific uses include injection-molded products (e.g., trays for fresh food, fast-food containers, coffee capsule containers, cutlery, outdoor leisure products, etc.), extrusion-molded products (e.g., films, sheets, fishing lines, fishing nets, vegetation nets, sheets for secondary processing, water-retaining sheets, etc.), and blown-molded products (e.g., bottles). Further examples include agricultural films, coating materials, fertilizer coating materials, seedling pots, laminated films, plates, stretched sheets, monofilaments, nonwoven fabrics, flat yarns, staples, crimped fibers, creased tape, split yarns, composite fibers, blown bottles, shopping bags, garbage bags, compost bags, cosmetic containers, detergent containers, bleach containers, ropes, binding materials, sanitary cover stock materials, cooler boxes, cushioning films, multifilaments, synthetic paper, and medical applications such as surgical thread, sutures, artificial bones, artificial skin, DDS such as microcapsules, and wound dressings. The biodegradable resin molded article of the present invention is particularly suitable as a packaging material for shopping bags, packaging films, trays for fresh food, fast food containers, lunch boxes and the like. [Example]

[0119] The present invention will be described in more detail below using examples and comparative examples, but the present invention is not limited to the following examples as long as it does not deviate from the gist of the invention. The values ​​of various production conditions and evaluation results in the following examples represent preferred upper or lower limit values ​​in the embodiments of the present invention, and preferred ranges may be defined by a combination of the above-mentioned upper or lower limit values ​​and the values ​​in the following examples or values ​​between the examples.

[0120] [Analysis methods for each physical property and composition] (Method for measuring enthalpy of fusion) Using a Hitachi High-Tech Science DSC7020 differential scanning calorimeter, the sample was heated from 25°C to 200°C at 10°C / min, then cooled from 200°C to -50°C at 10°C / min, and heated a second time from -50°C to 200°C at 10°C / min. The area of ​​the endothermic peak corresponding to the melting of the sample during this second heating process was taken as the enthalpy of fusion (ΔHm).

[0121] (Method for measuring tensile modulus) The tensile modulus was measured according to JIS K 7127:1999. Specifically, a heat-pressed sheet of each resin was prepared as follows. A metal frame with a release-treated surface was placed on a 150 mm × 150 mm PTFE tape. 1.6 g of resin was weighed inside the metal frame, and a 150 mm × 150 mm PTFE tape was placed on top of it. The resin sandwiched between the PTFE tape was placed between two iron plates (160 mm × 160 mm, 3 mm thick). The resin was then heat-pressed using a heat press and then cold-pressed using a cooling press to obtain a 70 mm × 70 mm × 0.2 mm thick heat-pressed sheet. The heat press temperature was 180°C, and the heat press time was 2 minutes for preheating and 2 minutes for pressing. The cold press temperature was 20°C, and the cold press time was 2 minutes. The resulting heat-pressed sheet was punched into a No. 8 dumbbell shape to prepare a test specimen. The test piece was stretched uniaxially at a rate of 50 mm / min, and the initial slope of the resulting stress-strain curve was taken as the tensile modulus.

[0122] (Method for measuring glass transition temperature) 10 mg of resin was placed in an aluminum sample container to serve as a measurement sample. Next, using a differential scanning calorimeter "DSC7020" manufactured by Hitachi High-Tech Science Corporation, the temperature was raised from -100°C to 200°C at a rate of 10°C / min under a nitrogen atmosphere to obtain a DSC chart. The glass transition temperature was determined from the baseline shift present on the lower temperature side of the peak indicating the melting point in this chart. Specifically, the intersection of the tangent point of the baseline on the lower temperature side and the inflection point was taken as the glass transition temperature.

[0123] (Method for measuring acid value) 0.4 g of resin was weighed out, 25 mL of benzyl alcohol was added, and the mixture was heated to 195°C and stirred to dissolve. Once the resin was dissolved, the container containing the resin solution was cooled in an ice bath, and 2 mL of ethanol was added to the container. Titration was performed using a 0.01 N sodium hydroxide solution in benzyl alcohol using a Mitsubishi Chemical Analytech automatic titrator "GT100" (titration volume: A (ml)). Next, the same measurement was carried out using only benzyl alcohol, and this was used as the blank value (B (ml)). The acid value was calculated using the following formula: Terminal acid value (μeq / g)=(AB)×F×10 / W A (ml): Measured titer amount B (ml): Blank titration volume F: Factor of 0.01N NaOH benzyl alcohol solution W(g): Sample weight

[0124] (Method for measuring reduced viscosity) Each resin was dissolved in a 1:1 (mass ratio) mixed solvent of phenol and tetrachloroethane to a concentration of 0.5 g / dL to prepare a resin solution. Using an Ubbelohde viscometer, the transit time t0 of the mixed solvent alone and the transit time t of the resin solution at 30 °C were measured, and the relative viscosity η was calculated based on the following equation (i). rel The relative viscosity η rel From the above, the specific viscosity η is calculated based on the following formula (ii): sp asked for. η rel =t / t0 (i) η sp =η rel -1 (ii) The obtained specific viscosity η sp Dividing by the concentration 0.5g / dL gives the reduced viscosity η sp I asked for / c.

[0125] (Method for measuring particle size) The average particle size of the protein was measured using an optical microscope. Specifically, protein particles were placed on a glass slide so that they did not overlap each other, and observed using an Olympus optical microscope (DSX510). The image analysis software was used to determine the equivalent circle diameter of 60 or more particles.

[0126] (Method of measuring composition) The types and ratios of structural units in polyester resins are as follows: 1 Measurement was performed by 1 H-NMR (nuclear magnetic resonance spectroscopy).

[0127] [Biodegradable polyester resin] As the biodegradable polyester resin, the following polyester resin was used.

[0128] (a) (Polybutylene succinate adipate (PBSA)) PTTMCCBiochem Polybutylene succinate adipate (PBSA) "BioPBS™ FD92PB" Melting point: 89°C The enthalpy of fusion was 36.1 J / g, the tensile modulus was 150 MPa, the glass transition temperature was -40°C, the acid number was 29 eq / t, and the reduced viscosity was 2.3 dL / g, all of which were measured according to the methods described above.

[0129] (b) (Polybutylene succinate sebacate (PBSSe)) Polybutylene succinate sebacate (PBSSe) was obtained as follows. 1,4-butanediol (100.1 g), succinic acid (75.0 g), sebacic acid (32.1 g), trimethylolpropane (0.34 g), and titanium tetrabutoxide (0.50 g) were heated under nitrogen at 200°C for 2 hours with stirring. The temperature was then raised to 250°C under reduced pressure, and the reaction continued for 5 hours and 15 minutes. The resulting polymer was extracted into water in the form of a strand and cut to obtain pellets of PBSSe (succinic acid unit / sebacic acid unit molar ratio: 80 / 20). The enthalpy of fusion of PBSSe, measured according to the above-mentioned method, was 92.9 J / g, the tensile modulus was 280 MPa, the glass transition temperature was −30° C., the acid number was 28 μeq / g, and the reduced viscosity was 1.8 dL / g.

[0130] (c) (Polybutylene sebacate terephthalate (PBSeT)) Polybutylene sebacate terephthalate (PBSeT) was obtained as follows. 1,4-butanediol (85.10 g), sebacic acid (63.70 g), terephthalic acid (52.30 g), trimethylolpropane (0.27 g), and titanium tetrabutoxide (0.53 g) were heated under nitrogen at 220°C for 2 hours with stirring. The temperature was then raised to 240°C under reduced pressure, and the reaction was continued for 3 hours and 15 minutes. The resulting polymer was extracted into water in the form of a strand and cut to obtain pellets of PBSeT (sebacic acid unit / terephthalic acid unit molar ratio: 50 / 50). The enthalpy of fusion of PBSeT measured according to the above-mentioned method was 13.1 J / g, the glass transition temperature was −40° C., the acid number was 24 μeq / g, and the reduced viscosity was 1.3 dL / g.

[0131] (d) (Polybutylene glutarate azelate (PBGAz)) Polybutylene glutarate azelate (PBGAz) was obtained as follows. 1,4-butanediol (63.90 g), glutaric acid (53.53 g), azelaic acid (19.07 g), trimethylolpropane (0.22 g), and titanium tetrabutoxide (0.50 g) were heated under nitrogen at 200°C for 2 hours with stirring. The temperature was then increased to 250°C under reduced pressure, and the reaction was continued for 5 hours and 30 minutes. The resulting polymer was extracted into water in the form of a strand and cut to obtain pellet-shaped PBGAz (glutaric acid unit / azelaic acid unit molar ratio: 80 / 20). The enthalpy of fusion of PBGAz measured according to the above-mentioned method was 39.3 J / g, the glass transition temperature was −70° C., the acid number was 9.3 μeq / g, and the reduced viscosity was 1.55 dL / g.

[0132] (e) (Polybutylene glutarate brassylate (PBGBr)) Polybutylene glutarate brassylate (PBGBr) was obtained as follows. 1,4-butanediol (61.8 g), glutaric acid (54.4 g), brassylic acid (19.1 g), trimethylolpropane (0.21 g), and titanium tetrabutoxide (0.50 g) were heated under nitrogen at 200°C for 2 hours with stirring. The temperature was then increased to 250°C under reduced pressure, and the reaction was continued for 5 hours. The resulting polymer was extracted into water in the form of a strand and cut to obtain pellets of PBGAz (glutaric acid unit / brassylic acid unit molar ratio: 84 / 16). The enthalpy of fusion of PBGBr was 44.9 J / g, the glass transition temperature was −70° C., the acid number was 10.5 μeq / g, and the reduced viscosity was 2.32 dL / g, all of which were measured according to the above-mentioned methods.

[0133] (f) (Polybutylene terephthalate / adipate (PBAT)) Polybutylene adipate terephthalate (PBAT) "Ecoflex C1200" manufactured by BASF was used. The enthalpy of fusion was 20.0 J / g, the tensile modulus was 80 MPa, the glass transition temperature was −40° C., and the acid value was 12.6 eq / t, all of which were measured according to the methods described above.

[0134] [protein] The proteins used were prepared by grinding the following in a porcelain mortar and passing the powder through a 150 μm mesh sieve (average particle size 150 μm or less). Since proteins are usually mixtures of multiple components, the molecular weight indicates the molecular weight of the main component. (i) Zein: "Zein" manufactured by Tokyo Chemical Industry Co., Ltd., molecular weight: 24,000 to 27,000, average particle size: 70 μm (ii) Casein: "Casein" manufactured by Nacalai Tesque, Inc., molecular weight: 20,000 to 25,000, average particle size: 43 μm (ii') Casein (2): Wako Pure Chemical Industries, Ltd. "Casein", molecular weight: 20,000 to 25,000, average particle size: 67 μm (iii) Albumin: "Albumin" manufactured by Fujifilm Wako Pure Chemical Industries, Ltd., molecular weight: 43,000, average particle size: 13 μm (iv) Gelatin: "Gelatin" manufactured by Nacalai Tesque, Inc., molecular weight: 100,000, average particle size: 143 μm (v) Gluten: "Gluten" manufactured by Tokyo Chemical Industry Co., Ltd., molecular weight: 36,000, average particle size: 14 μm

[0135] [Other organic ingredients] As organic components other than proteins, the following were used after passing them through a sieve with 150 μm openings. Starch: "Starch (soluble)" manufactured by Fujifilm Wako Pure Chemical Industries, Ltd. Cellulose: Nippon Paper Industries Co., Ltd. "KC Flock W-400Y"

[0136] [Examples 1 to 5, Comparative Examples 1 to 3] 100 parts by mass of aliphatic polyester resin (A-1) was blended with 3.1 parts by mass of a protein or other organic component shown in Table 1 (except for the aliphatic polyester resin (A) only in Comparative Example 1), and the blend was melt-kneaded for 4 minutes at 170°C under a nitrogen atmosphere using a small twin-screw kneader (DSM's "Xplore Micro 15cc Twin Screw Compounder"). The resulting resin composition was molded into a 115 μm thick sheet using a heat press molding machine at 170°C, and then cut into 3 cm squares to produce a sheet of biodegradable resin composition. The resulting sheet was evaluated as follows, and the results are shown in Table 1.

[0137] <Marine biodegradability test> Seawater was collected from a sandy beach in Yokkaichi Port, Yokkaichi City, Mie Prefecture (near 34.94°N, 136.64°E) at approximately 10:00 AM on January 7, 2020 (low tide). The seawater was filtered through an 11 μm nylon mesh. Sea sand was collected from below the sea surface at the same time as the seawater. Particles that passed through a 2 mm mesh sieve but did not pass through a 0.3 mm mesh sieve were collected and washed with filtered seawater to remove suspended matter. A glass aquarium (60 cm wide, 30 cm deep, 23 cm high) equipped with a seawater circulation system, temperature control system, and air stone (air blowing device) was filled with a layer of sea sand approximately 1 cm thick and 30 L of seawater (17 cm deep). The sheets were laid out on sand, and the sheets were left standing for 68 days while air was blown in from an air stone and seawater was circulated, maintaining the water temperature at 28°C. The mass of the test piece was measured before and after this test, and the mass loss was calculated by dividing the mass loss by the surface area of ​​the test piece (3cm x 3cm = 9cm on one side). 2 , 3cm x 3cm x 2 = 18cm on both sides 2 ) to obtain the mass loss per unit area (mg / cm 2 ) was calculated. The calculation formula is as follows: Mass loss per unit area (mg / cm 2 )=10 3 × Mass loss (g) / (3×3×2) Furthermore, the ratio to the mass reduction per unit area in the case of only the biodegradable resin (Comparative Example 1) was calculated and used as the marine biodegradability improvement rate.

[0138] [Table 1]

[0139] Table 1 confirms that the biodegradable resin composition of the present invention has improved marine biodegradability due to the inclusion of protein.

[0140] Comparative Example 4 Aliphatic polyester resin (A-1) was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0141] Comparative Example 5 PBSSe was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0142] Comparative Example 6 PBSeT was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0143] Comparative Example 7 PBGAz was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0144] [Comparative Example 8] PBGBr was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0145] [Examples 6 to 10] The crushed resin and protein were mixed in the proportions shown in Table 2 to a total of 30 mg.

[0146] <Method for measuring biodegradability> The biodegradability of the resin compositions of Examples 6 to 10 or the pulverized resins of Comparative Examples 4 to 8 was measured in accordance with ISO 14851 as follows. To a 510 mL brown bottle containing 30 mg of sample, 100 mL of a mixture of standard test culture medium prepared according to a method compliant with ISO 14851 and seawater was added. Seawater collected from Sagami Bay and Tokyo Bay was mixed and used. A pressure sensor (WTW, OxiTop®-C type) was attached to the brown bottle, and the test solution was stirred with a stirrer for 28 days in a constant temperature environment of 25°C. The biodegradability (%) was calculated based on the BOD measurement, and the ratio of the biodegradability (%) of each composition to that of the biodegradable resin alone (Comparative Examples 4 to 8) was calculated to represent the marine biodegradability improvement rate. The results are shown in Table 2.

[0147] [Table 2]

[0148] Comparisons between Example 6 and Comparative Example 4, Example 7 and Comparative Example 5, Example 8 and Comparative Example 6, and Example 9 and Comparative Example 8 confirmed that the biodegradable resin composition of the present invention has improved marine biodegradability due to the inclusion of protein.

[0149] Comparative Example 9 PBAT was pulverized to a particle size (sieving method) of 250 μm or less to obtain a pulverized resin.

[0150] [Comparative Example 10] 27 mg of the ground resin of Comparative Example 9 was mixed with 3 mg of casein (2). The biodegradability of the resin composition of Comparative Example 10 or the ground resin of Comparative Example 9 was measured as described above in accordance with ISO 14851, but only the mixed casein was decomposed, and the marine biodegradability of PBAT was not improved. [Industrial Applicability]

[0151] According to the biodegradable resin composition of the present invention, it is possible to increase the biodegradation rate and decomposition rate of polyester-based resins in the ocean, and it is also possible to provide a biodegradable resin composition having good moldability and a molded article thereof.

Claims

1. A biodegradable resin composition containing a resin and a protein, wherein the resin is contained in the resin composition in an amount of 40 to 99.9% by mass, the resin containing a polyester-based resin, the polyester-based resin having three or more types of structural units, at least one of the structural units being selected from a succinic acid unit, an azelaic acid unit, a sebacic acid unit, and a brassylic acid unit, the protein being at least one selected from casein and albumin, and the amount of protein contained in the biodegradable resin composition is 1 to 30 parts by mass per 100 parts by mass of the polyester-based resin (however, this does not include a biodegradable resin composition containing a degradation accelerator for biodegradable resins, which contains cellulose, hemicellulose, and lignin, and wherein the mass ratio of nitrogen to carbon in the degradation accelerator for biodegradable resins is 0.04 or more and the mass ratio of the hemicellulose content to the total content of cellulose and lignin is 0.2 or more).

2. 2. The biodegradable resin composition according to claim 1, wherein the polyester resin has a melting enthalpy, as defined below, of 10 to 300 J / g. (enthalpy of fusion) Using a differential scanning calorimeter "DSC7020" manufactured by Hitachi High-Tech Science Corporation, the sample was heated from 25°C to 200°C at 10°C / min, then cooled from 200°C to -50°C at 10°C / min, and heated a second time from -50°C to 200°C at 10°C / min. The area of ​​the endothermic peak corresponding to the melting of the sample during this second heating process was taken as the enthalpy of fusion (ΔHm).

3. The biodegradable resin composition according to claim 1 or 2, wherein the polyester resin is at least one selected from the group consisting of polybutylene succinate adipate (PBSA), polybutylene glutarate azelate (PBGAz), polybutylene succinate sebacate (PBSSe), polybutylene sebacate terephthalate (PBSeT), and polybutylene glutarate brassinate (PBGBr).

4. 4. The biodegradable resin composition according to claim 1, wherein the protein has a molecular weight of 10,000 or more.

5. 5. The biodegradable resin composition according to claim 1, wherein the average particle size of the protein is 1 to 150 μm.

6. The biodegradable resin composition according to any one of claims 1 to 5, wherein the concentration of nitrogen atoms derived from the protein contained in the resin composition is 50 ppm by mass or more.

7. A biodegradable resin molded article obtained by molding the biodegradable resin composition according to any one of claims 1 to 6.

8. The biodegradable resin shaped article according to claim 7, which is in the form of a film or a sheet.

9. A method for biodegrading a polyester-based resin, comprising biodegrading the polyester-based resin in seawater in the presence of at least one protein selected from casein and albumin in an amount of 1 to 30 parts by mass per 100 parts by mass of the polyester-based resin.

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