Inkjet inks, inkjet printing methods and ink sets for forming images on a substrate, and aqueous pigment dispersions for forming inkjet inks

A combination of two block copolymer dispersants with differing hydrophobicity in their anchoring segments stabilizes pigment dispersions, addressing instability issues in inkjet inks, enhancing image quality and jetting stability without additional solvents.

JP7801317B2Active Publication Date: 2026-01-16ZEIKON MFG NAMROSE FENNOT SHAP
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Patent Information

Application Number
JP2023519664
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-05
Filing Date
2021-10-04
Publication Date
2026-01-16
Estimated Expiration
2041-10-04

AI Technical Summary

Technical Problem

Existing inkjet inks face challenges in achieving stable pigment dispersions due to the instability of pigments, which can lead to issues such as increased viscosity, mist formation, and nozzle clogging, particularly under high temperatures and varying solvent conditions, affecting image quality and jetting stability.

Method used

The use of a combination of two different block copolymer dispersants with specific anchoring and matrix stabilizing segments, where one segment is less hydrophobic than the other, to enhance pigment stability and prevent re-agglomeration, allowing for easy milling and versatile ink formulations without the need for additional cosolvents.

Benefits of technology

This approach results in highly stable pigment dispersions that maintain consistency under varying conditions, improving image quality and jetting stability, while reducing the complexity and cost associated with solvent use.

✦ Generated by Eureka AI based on patent content.

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Abstract

1. An inkjet ink for forming an image on a substrate, comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; wherein the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each of the block copolymer dispersants D1 and D2 comprises an anchoring segment A1, A2 for anchoring the pigment P, and each of the block copolymer dispersants D1 and D2 further comprises a matrix stabilizing segment M for stabilizing the aqueous phase of the pigment P, wherein the anchoring segment A1 of the first block copolymer dispersant D1 comprises a repeating unit R1, and the anchoring segment A2 of the second block copolymer dispersant D2 comprises a repeating unit R2, and the repeating unit R1 is less hydrophobic than the repeating unit R2.
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Description

Detailed Description of the Invention

[0001] [Field of the Invention] The field of the invention relates to inkjet inks, inkjet printing methods, and ink sets of inkjet inks for forming an image on a substrate, as well as aqueous pigment dispersions for forming the inkjet inks. The inkjet printing methods for forming an image on a substrate use inkjet inks according to the present invention. The ink sets of inkjet inks for forming an image on a substrate include inkjet inks according to the present invention. The field of the invention further relates to aqueous pigment dispersions for forming the inkjet inks according to the present invention.

[0002] [background] Inkjet printing methods for forming images on a substrate by applying multiple inkjet inks to the substrate are generally known. Inkjet inks for industrial printing applications primarily use pigments as colorants, with the exception of the textile industry, which often still uses reactive dye-based inkjet inks. Pigments are solid materials that remain solid even in the inkjet ink carrier, as opposed to dyes, which are actually dissolved in the carrier medium. Pigment particles are finely dispersed in the ink and are nanometer-scale in size. A typical inkjet printing method uses three or four inkjet inks to create multicolor images. Typical colors are cyan (C), magenta (M), yellow (Y), and black (K). CMY color inkjet inks are typically made of organic pigments, some of which contain metal atoms in complexes, while K inks typically use organic pigments made of carbon black. Pigment powders are not commercially available as nanometer particles, but as agglomerates and aggregates of pigment particles formed during the synthesis process. Pigment agglomerates and aggregates need to be made smaller, typically to nanometer-scale sizes by grinding, milling, or other techniques that break up the agglomerates and aggregates. Particle size reduction of pigment powder particles is often carried out in the carrier medium used in the ink at a later stage. Such process steps to make the pigment particles smaller are often carried out at higher pigment concentrations than will be in the final ink, resulting in what is called a pigment dispersion.

[0003] As discussed above, pigments are mechanically crushed to a size of 30-300 nm, which must be stabilized by adding a dispersant (or surfactant) to physically and / or electrostatically prevent the pigment from reagglomerating. Typically, this is a physicochemical phenomenon, as there is no chemical bond between the pigment surface and the dispersant, which can be a polymeric dispersant (e.g., random copolymer, block copolymer, graft copolymer) or a surfactant.

[0004] In some cases, covalent bonding chemicals can also be used to stabilize pigment particles in aqueous inks, but this often requires expensive manufacturing methods.

[0005] Known techniques for preparing pigment dispersions are based on randomly polymerized dispersants: dispersants are used, for example, in analog inks for flexographic printing, but also in inkjet inks. Typically, random polymers are made of two monomers, one more pigment-compatible and the other more compatible with the carrier liquid, or, so to speak, matrix-compatible. These monomers are randomly distributed throughout the polymer, so the polymer structure (i.e., monomer sequence) and the number of monomeric repeating units are not predefined. Therefore, while some polymers may have favorable structures capable of stabilizing pigment particles in liquid, there may also be inactive groups with "bad" structures for stabilization (e.g., insufficient pigment anchors, insufficient proximity to each other, too few matrix-compatible groups). These moieties often do not adsorb or easily desorb, resulting in unstable dispersions. Other undesirable side effects can occur when preparing dispersions for inkjet inks. Two of the main problems are the presence of unabsorbed high-molecular-weight dispersant molecules in the matrix, thus causing higher dispersion viscosity. Furthermore, the viscoelastic properties of the final ink may be adversely affected. Both effects of increased viscosity and affected viscoelasticity of the final ink can disrupt the droplet formation process, such as by increasing mist formation.

[0006] Another known approach is block copolymer dispersants. Block copolymer dispersants containing hydrophobic and hydrophilic block segments have been disclosed in many inkjet ink patents. U.S. Patent No. 5,859,113 (DU PONT) discloses AB block copolymer dispersants having a polymeric A segment and a polymeric B segment.

[0007] Although a wide variety of polymeric dispersants, such as block copolymer dispersants, have been proposed, the dispersion stability of pigments, particularly in inkjet printers, still needs further improvement. For consistent image quality, inkjet inks require dispersion stability that can withstand, for example, high temperatures (above 60°C) during transportation or storage of the ink to the customer, and changes in the inkjet ink's dispersion medium during use, such as evaporation of water and increased concentration of water-soluble organic solvents, or the addition of functional polymers to improve the adhesion, drying, water resistance, or scratch resistance of the ink on the substrate.

[0008] In industrial inkjet processes, there are also increasing demands on the stability of pigment dispersions that can be used for inkjet printing, especially with higher jetting frequencies, smaller drop formation, higher jetting temperatures, and / or more difficult single-pass printing applications.

[0009] All ink additives (surfactants, latexes, polymers, oligomers, (water-soluble) organic solvents, etc.) can compete with the dispersant to interact with the pigment surface, thus adversely affecting the pigment dispersion stability. These additives are typically organic in nature (even incompatible with the ink matrix to some extent), and the additives will compete for the same organic surface of the pigment, particularly in aqueous inks. If this occurs inside the printhead, it can lead to the removal of the dispersant from the surface, reducing or destroying its stability, irreversibly clogging the nozzles and resulting in, for example, blank lines and severely degrading image quality, or ink containing oversized particles that adversely affect ink flow to the head.

[0010] Due to increasing demands, further optimization of ink additives, such as optimization according to the type of color pigment, is necessary to obtain consistent image quality and reliable inkjet process.

[0011] Additionally, it has been found that with some colored pigments it is more difficult to obtain fine pigment dispersions in a simple manner, for example using a milling process, while still providing the high pigment stability required for inkjet inks.

[0012] There remains a need to formulate block copolymer dispersants that provide a high degree of millability (i.e., the ability to be very easily milled to a desired particle size) for different pigments, without the need for additional co-solvents, while maintaining a high level of stability of the pigment dispersion, so that the resulting pigment dispersion provides wide versatility for formulating final inkjet inks.

[0013] Therefore, there is a need to be able to produce such stable pigment inkjet inks, where the dispersion stability of the pigment in the inkjet ink can be easily increased for a wider variety of inkjet inks.

[0014] [Summary of the Invention] According to a first aspect of the present invention, there is provided an inkjet ink for forming an image on a substrate, the inkjet ink comprising a pigment P, a first block copolymer dispersant D1 for dispersing the pigment P, and a second block copolymer dispersant D2 for dispersing the pigment P, and an aqueous carrier; the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each of the block copolymer dispersants D1 and D2 comprises an anchoring segment A1, A2 for anchoring the pigment P, and each of the block copolymer dispersants D1 and D2 further comprises a matrix stabilizing segment M for stabilizing the aqueous phase of the pigment P, wherein the anchoring segment A1 of the first block copolymer dispersant D1 comprises a repeating unit R1, and the anchoring segment A2 of the second block copolymer dispersant D2 comprises a repeating unit R2, and the repeating unit R1 is less hydrophobic than the repeating unit R2.

[0015] According to another aspect of the present invention, there is provided an inkjet printing method for forming an image on a substrate by applying a plurality of inkjet inks onto the substrate, wherein the plurality of inkjet inks comprises an ink according to the present invention.

[0016] According to another aspect of the present invention, there is provided an inkjet ink set comprising a plurality of colored inks, at least one of the inks being an ink according to the present invention.

[0017] According to another aspect of the present invention there is provided an inkjet printer responsive to digital data signals, the inkjet printer comprising an inkjet ink according to the present invention or an inkjet ink set according to the present invention.

[0018]

[0013] According to another aspect of the present invention, there is provided an aqueous pigment dispersion for forming an ink-jet ink, the aqueous pigment dispersion comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each of the block copolymer dispersants D1 and D2 comprises an anchoring segment A1, A2 for anchoring the pigment P, and each of the block copolymer dispersants D1 and D2 further comprises a matrix stabilizing segment M for stabilizing the aqueous phase of the pigment P, wherein the anchoring segment A1 of the first block copolymer dispersant D1 comprises a repeating unit R1, and the anchoring segment A2 of the second block copolymer dispersant D2 comprises a repeating unit R2, and the repeating unit R1 is less hydrophobic than the repeating unit R2; and the aqueous carrier comprises water.

[0019] [Advantageous Effects of the Present Invention] The present inventors have discovered that the easy preparation of stable pigment inkjet inks is possible using a combination of a first block copolymer dispersant D1 and a second block copolymer dispersant D2. The repeating unit R1 of the first block copolymer dispersant D1 is less hydrophobic than the repeating unit R2 of the second block copolymer dispersant D2. The first block copolymer dispersant D1 has been found to improve the pigment stability required for inkjet inks while simultaneously enhancing the ease of preparation of fine pigment dispersions having fine pigment particles using simple methods, such as a milling process. The second block copolymer dispersant D2 further enhances the pigment stability required for inkjet inks. The combination of the first block copolymer dispersant D1 and the second block copolymer dispersant D2 in a pigment dispersion or inkjet ink surprisingly combines these advantages without any adverse effects. Furthermore, no or minimal water-soluble organic cosolvents are required to obtain the beneficial fine pigment particles. Thus, the pigment dispersions according to the present invention can be used versatilely to provide inkjet inks with a variety of compositions, such as those containing no water-soluble organic co-solvent or those containing various amounts of water-soluble organic co-solvent.

[0020] Although the use of two block copolymer dispersants may appear to increase the complexity of the pigment dispersion, the increased milling performance and flexibility in the mixing ratio of the different block copolymer dispersants results in the production of versatile and stable pigment dispersions.

[0021] Pigments may have surfaces that exist with different degrees of hydrophobicity, meaning that parts of the pigment surface may be less hydrophobic than other parts of the pigment surface. It has been found that a very specific design / selection of block copolymer dispersants is necessary to cover the entire pigment surface and thereby obtain a very stable pigment dispersion.

[0022] Furthermore, the selected block copolymer dispersants D1, D2 for dispersing pigment P in the ink may prevent re-agglomeration of pigment P in the resulting inkjet ink, even when various ink additives, such as water-soluble organic solvents, that may compete with the dispersant are added to the inkjet ink.

[0023] Furthermore, the use of block copolymer dispersants D1, D2 to disperse pigment P can aid and increase jetting stability in industrial inkjet printing where there is an increasing demand for ink durability and consistent image quality.

[0024] (Pigment dispersion stability) Pigment dispersion stability as defined herein can include pigment particle grinding properties of the pigment dispersion, and can include pigment dispersion stability properties when exposed to severe conditions such as elevated temperature conditions (relative to room temperature or the normal operating temperature of the ink) and critical aqueous carrier conditions such as by adding and / or increasing the amount of competitive water-soluble organic solvents to the carrier and / or other ink additives.

[0025] The pigment particle grinding properties of the pigment dispersions demonstrate the ability to easily reduce the size of pigment agglomerates and aggregates to nanometer sizes, such as 30-300 nm, which are stabilized by the addition of block copolymer dispersants to physically and / or electrostatically prevent the pigment from reagglomerating.

[0026] [Embodiments of the Invention] The following exemplary embodiments are described, but the present invention is not limited to these embodiments:

[0027] (Block copolymer pigment dispersant) The combination of block copolymer dispersants D1 and D2 was found to improve overall pigment stability in the ink. Selecting block copolymer dispersants D1 and D2 with different properties was found to allow for specialized chemical fine-tuning of the dispersant to optimize the physical interaction of the polymeric dispersant with the pigment surface. The balancing act in copolymer dispersant design is the pigment affinity / matrix affinity balance. In aqueous inks, the relative hydrophilic / hydrophobic nature of the polymer appears to be important. In this way, the pigment particles P can be compatibilized with the carrier. Altering the pigment affinity / matrix affinity balance in the block copolymer can be achieved in a number of ways.

[0028] The inventors have found that simply changing the number of repeat units in a segment may not be sufficient, particularly when faced with particles having chemically different regions on the pigment particle surface. To provide a solution to this problem, the inventors have found that it can be very beneficial to also use a second block copolymer dispersant having a second chemically different type of repeat unit, possibly with a different number of repeat units.

[0029] Block copolymer dispersants differ from random copolymers in that they have a controlled molecular structure in their chemical composition (built into the polymer in blocks), a narrow molecular weight distribution, and / or defined block chain lengths of the different building blocks or monomers. Block copolymer dispersants can be made from two or more different monomers arranged in blocks in the polymer.

[0030] The blocks of the block copolymer of the present invention have a narrow molecular weight distribution and / or a defined block chain length. A block copolymer is defined as a polymer composed of different blocks, each of which is substantially equal in size and composition, meaning that all polymer molecules have substantially the same composition and length. The same composition means that, when a block contains one type of repeating unit, the repeating units are the same, or, when a block contains two or more different types of repeating units, the ratio of the numbers of the respective repeating units is the same.

[0031] The fact that the individual blocks and the completed polymer are also equal in size means that the M of each individual block or completed polymer w / M n The polydispersity D can be expressed by the polydispersity D, which is defined as: D = ∑ ...

[0032] In an exemplary embodiment, the block copolymer dispersants D1, D2 have a polydispersity of less than 1.6, more preferably less than 1.5. Sex D In certain embodiments, each of the blocks of the block copolymer dispersant D has a polydispersity D of less than 1.6, more preferably less than 1.5.

[0033] Compared to the random copolymers typically used as pigment dispersants, the pigment-affinity monomers in block copolymer dispersants can be engineered as blocks of appropriate size and chemistry next to one or more matrix-affinity monomer blocks of appropriate size and chemistry. This creates the option to fine-tune and maximize the interaction between a specific pigment and the block copolymer dispersant. This maximized interaction will create a strong physicochemical bond of the dispersant with the pigment surface. Because the dispersant is positioned on the pigment surface to prevent re-agglomeration of the pigment, this strong immobilization of the dispersant to the pigment surface, which prevents the polymer from desorbing from the pigment surface, can enable the creation of highly stable pigment dispersions, especially when used in final inks, further providing the benefits of low levels of dispersant dissolved in the matrix.

[0034] Strong dispersant-pigment linkages tend to be (at least partially) hydrophobic in nature in aqueous inks and therefore will withstand competing interactions of other ink additives that also want access to the organic pigment surface.

[0035] In exemplary embodiments, the block copolymer dispersant D is selected from diblock copolymers and triblock copolymers. The matrix stabilizing segment may include one block formed from one monomer and may further include another block formed from another monomer. The anchoring segment may include one block formed from one monomer and may further include another block formed from another monomer. Thus, the block copolymer dispersant may be a diblock copolymer having two blocks, a triblock copolymer having three blocks, or any other suitable number of blocks greater than or equal to four.

[0036] The matrix stabilizing segments and anchoring segments of the block copolymer dispersant may be arranged in any order along the block copolymer dispersant.

[0037] In exemplary embodiments, the block copolymer dispersants D1 and D2 are water-soluble block copolymer dispersants. A block copolymer is defined as "water-soluble" if, with at least 15% by weight of the dry polymer in water, the block copolymer remains dissolved in water at 25°C for at least one week, preferably if it remains dissolved in water at 25°C for at least one month or more, more preferably if the weight percentage of dissolved dry polymer in water at 25°C is at least 20% by weight, and most preferably if the weight percentage of dissolved dry polymer in water at 25°C is at least 25% by weight or more.

[0038] The blocks of the block copolymer dispersant according to the present invention may further contain initiator moieties, termination moieties, end groups, and / or linking moieties.

[0039] The repeat units of the blocks may contain substituent groups that may optionally be converted to another substituent group after polymerizing the block or after polymerizing the block copolymer, thereby modifying the repeat units.

[0040] In an exemplary embodiment, the block copolymer dispersants D1, D2 are composed of linear polymer chains. In another exemplary embodiment, the block copolymer dispersants D1, D2 are at least partially crosslinked, in which case the block copolymer dispersants are attached to or at least partially encapsulate the pigment.

[0041] Block dispersants D1 and D2 each have a Mw of 2,000 to 20,000 g / mol, more preferably 3,000 to 12,000 g / mol. The ratio of the total number of repeating units of the anchoring segment A to the total number of repeating units of the matrix stabilizing segment M of D1 and D2 is in the range of 0.5 to 10, more preferably 1 to 5. If the molecular weight of the dispersant is lower than 2,000 g / mol, dispersion stability is not maintained. If the molecular weight is higher than 20,000 g / mol, the viscosity of the dispersion often becomes too high, or dispersion stability may be affected by dispersant polymer chains anchored to two or more pigment particles. Polymeric dispersants with a molecular weight greater than 2,000 g / mol also offer the advantage of improved adhesion to the substrate during the ink drying process, even without the addition of a binder. Furthermore, the use of analog or digital overprint varnishes can help further enhance the properties of the printed image, such as mechanical and chemical resistance, hot scuff resistance, and coefficient of friction.

[0042] The acid value of the mixture of block copolymer dispersants D1 and D2 ranges from 50 to 200 mg KOH / g polymer, more preferably from 60 to 150 mg KOH / g polymer, to ensure good solubility in water. The acid value of the mixture is determined by measuring / calculating the acid values ​​(AV) of the individual block copolymer dispersants D1 and D2 and then calculating the AV of the mixture according to the weight ratio of D1 to D2 in the pigment dispersion. Therefore, the acid value is a measure of the weight ratio between the matrix stabilizing segment and the immobilizing segment. At a too high AV, meaning that the contribution of the matrix stabilizing segment is too high, the polymer dispersant may temporarily desorb from the pigment surface, affecting, for example, pigment dispersion stability. Another problem with a too high AV is that the water resistance of the ink image on the substrate may be insufficient.

[0043] On the other hand, at too low an AV when the contribution of the anchoring segment is too high, the solubility of the polymeric dispersant may be insufficient to provide an efficient milling process, especially when milling with little or no cosolvent. Note that the benefits of a substantially cosolvent-free dispersion are highly desirable, as it allows for greater freedom in choosing ink components during ink formulation.

[0044] Another aspect of acid number is its importance in terms of interaction with primers typically used to improve image quality on paper (i.e., uncoated kraft and recycled, as well as offset-coated media) and film substrates. Analog and digitally applied primers are used to achieve lower intercolor bleeding, higher optical density, and the like. However, primers typically contain cationic (polymeric or polyvalent metal cations) or acidic components intended to reduce the stability or "crash" the dispersed pigment. Such primers work best when the acid number of the pigment dispersion is below 200 mg KOH / g. To create an optimal bond between the crashed pigment and the printed substrate, such primers often also contain a polymeric binder.

[0045] The combination of the appropriate range of molecular weight and acid number of the blocked dispersants D1, D2 can support the preparation of pigment dispersions in an easy and cost-effective manner, for example, without the use of solvents that must then be removed. The combination can also support good interaction with primers that may be typically used in ink compositions for printing on uncoated corrugated board, for example, to increase color strength on uncoated corrugated board.

[0046] In an exemplary embodiment, the immobilization segment A1 is formed using at least one monomer Mn1, and the immobilization segment A2 is formed using at least one monomer Mn2, where the monomers M1, M2 are selected from the group consisting of methacrylate, acrylate, and vinyl monomers.

[0047] The anchoring segment is an anchoring moiety for anchoring to a pigment, and the anchoring segment A1 of block copolymer dispersant D1 is different from the anchoring segment A2 of block copolymer dispersant D2.

[0048] (Immobilization segment A1) The first block copolymer dispersant D1 comprises an anchoring segment A1 comprising repeating unit R1, which repeating unit R1 of the first block copolymer dispersant D1 is less hydrophobic than repeating unit R2 of the second block copolymer dispersant D2.

[0049] (Non-ionic, low hydrophobic repeating unit R1) The repeat unit R1 of the anchoring segment A1 is formed using a non-ionic, less hydrophobic monomer Mn1, which may be selected from the group consisting of methacrylate, acrylate, and vinyl monomers.

[0050] In particular, the repeat unit R1 is a non-ionic repeat unit, meaning that the repeat unit R1 does not contain an ionic moiety. The non-ionic repeat unit R1 is selected to increase the immobilization interaction with the pigment P.

[0051] Preferably, R1 is less hydrophobic than R2 in terms of the Hansen solubility parameter value δ(polar + hydrogen) of R2. R2 The higher the R1, the higher the Hansen solubility parameter value δ (polar + hydrogen) R1 The Hansen solubility parameters according to the present invention are calculated according to the Y-MB method using HSPiP software version 5.2.03.

[0052] The Hansen solubility parameter value δ(polar + hydrogen) is the sum of the polar bond value of the repeating unit and the hydrogen bond value of the repeating unit. According to the Hansen solubility parameter theory, this sum is defined as the square root of the sum of the square of the polar bond value of the repeating unit and the square of the hydrogen bond value: δ(polar + hydrogen) = √[δ(polar) 2 +δ(hydrogen) 2 ].

[0053] Preferably, the repeat unit R1 has a Hansen solubility parameter value δ(polar + hydrogen), which is the sum of the polar bond value of R1 and the hydrogen bond value of R1. R1 and δ (polar + hydrogen) R1 is 7.2 cal 1 / 2 cm -3 / 2 Exceeds.

[0054] The sum of the polar bond value of R1 and the hydrogen bond value of R1 is defined as the square root of the sum of the square of the polar bond value of R1 and the square of the hydrogen bond value of R1: δ(polar + hydrogen) = √[δ(polar) 2 +δ(hydrogen) 2 ].

[0055] In an exemplary embodiment, the polarity bond value of R1: δ(polarity) R1 is 4.4 cal 1 / 2 cm -3 / 2 It's super.

[0056] Preferably, the less hydrophobic immobilization monomers Mn1 of the immobilization segment A1 have heteroatoms in their structure in their substituents, such as dimethylaminoethyl (meth)acrylate (DMAE(M)A), N,N-dimethylacrylamide, acryloylmorpholine (ACMO), N-vinylpyrrolidone (NVP), and vinylmethyloxazolidinone (VMOX), and 2-(2-ethoxyethoxy)ethyl acrylate (EOEOEA).

[0057] In a specific example, the monomer Mn1 of the anchoring segment A1 is selected from the group consisting of tri(ethylene glycol) methyl ether acrylate, hydroxyethyl acrylate, hydroxypropyl acrylate, dimethylaminoethyl acrylate (DMAA), N,N-dimethylacrylamide, acryloylmorpholine (ACMO), N-vinylpyrrolidone (NVP), vinylmethyloxazolidinone (VMOX), and 2-(2-ethoxyethoxy)ethyl acrylate (EOEOEA), phenoxyethyl methacrylate, methacrylonitrile, ethylene glycol methyl ether methacrylate, 2-ethoxyethoxyethyl acrylate (EOEOEA). and at least one of diethyl methacrylate, di(ethylene glycol) methyl ether methacrylate, tri(ethylene glycol) methyl ether methacrylate, hydroxyethyl methacrylate, hydroxypropyl methacrylate, di(propylene glycol) methyl ether methacrylate, phenoxyethyl acrylate, ethylene glycol methyl ether acrylate, 2-ethoxyethyl acrylate, di(ethylene glycol) methyl ether acrylate, 2-[[(butylamino)carbonyl]oxy]ethyl acrylate, and any mixtures thereof.

[0058] In a preferred example, the monomer Mn1 of the anchoring segment A1 is an acrylate or methacrylate and contains a monoethylene glycol group or a polyethylene glycol group.

[0059] In a particular example, the anchoring segment A1 contains at least two different repeat units that can be formed by using at least two different anchoring monomers Mn1.

[0060] In an exemplary embodiment, the anchoring segment A1 of the first block copolymer dispersant D1 has another repeat unit R1' that is different from R1. Preferably, the other repeat unit R1' has a molecular weight of 7.2 cal 1 / 2 cm -3 / 2 Hansen solubility parameter value δ (polar + hydrogen) exceeding R1 In said embodiment, R1' provides an additional beneficial contribution to the grinding performance of the block copolymer dispersant D1.

[0061] (Immobilization segment A2) The second block copolymer dispersant D2 comprises an anchoring segment A2 comprising repeat unit R2. The repeat unit R1 of the first block copolymer dispersant D1 is less hydrophobic than the repeat unit R2 of the second block copolymer dispersant D2.

[0062] (Hydrophobic repeating unit R2) The repeat unit R2 of the anchoring segment A2 is formed using a hydrophobic monomer Mn2, which may be selected from the group consisting of methacrylate, acrylate, and vinyl monomers.

[0063] In an exemplary embodiment, repeat unit R2 has a Hansen Solubility Parameter value δ(polar + hydrogen), which is the sum of the polar bond value of R2 and the hydrogen bond value of R2. R2 and δ (polar + hydrogen) R2 is 7.2 cal 1 / 2 cm -3 / 2 Repeat unit R2 is more hydrophobic than repeat unit R1, which corresponds to a lower sum of the polar bond value and the hydrogen bond value of R2.

[0064] In an exemplary embodiment, the polarity bond value of R2: δ(polarity) R2 is 4.4 cal 1 / 2 cm -3 / 2Repeat unit R2 is more hydrophobic than repeat unit R1, which corresponds to a lower polar bond value for R2.

[0065] In an exemplary embodiment, the monomer Mn2 of the anchoring segment A2 comprises an alkyl, alkenyl, or aryl group.

[0066] In specific examples, the monomer Mn2 of the anchoring segment A2 is at least one of benzyl methacrylate, butyl methacrylate, methyl methacrylate, ethyl methacrylate, propyl methacrylate, hexyl methacrylate, 2-ethylhexyl methacrylate, octyl methacrylate, lauryl methacrylate, stearyl methacrylate, p-tolyl methacrylate, sorbyl methacrylate, cyclohexyl methacrylate, benzyl acrylate, butyl acrylate, methyl acrylate, ethyl acrylate, propyl acrylate, hexyl acrylate, 2-ethylhexyl acrylate, octyl acrylate, lauryl acrylate, stearyl acrylate, p-tolyl acrylate, sorbyl acrylate, cyclohexyl acrylate, and any mixture thereof.

[0067] In a particular example, the anchoring segment A2 contains at least two different repeat units that can be formed using at least two different anchoring monomers Mn2.

[0068] In an exemplary embodiment, the anchoring segment A2 of the second block copolymer dispersant D2 has another repeat unit R2' that is different from R2. Preferably, the other repeat unit R2' has a molecular weight of 7.2 cal 1 / 2 cm -3 / 2 Hansen solubility parameter value δ (polar + hydrogen) less than R2 In said embodiment, R2' provides an additional beneficial contribution to the pigment dispersion stabilizing effect of block copolymer dispersant D2.

[0069] (Relationship between repeating units R1 and R2 in immobilization segments A1 and A2) In an exemplary embodiment, the repeat units R1, R2 of the immobilization segments A1, A2 do not have ionic groups, and therefore the immobilization segments A1, A2 are substantially insoluble in the aqueous carrier phase.

[0070] In an exemplary embodiment, the immobilization segment A1 has a number of repeating units n 1 The repeating units R1 account for at least 50% by number of the total number n1 of repeating units, and preferably at least 80% by number of the total number n1 of repeating units.

[0071] In an exemplary embodiment, the immobilization segment A2 has a number n2 of repeat units, and the repeat units R2 are at least 50% by number of the total number n2 of repeat units, preferably at least 80% by number of the total number n2 of repeat units.

[0072] (Matrix stabilizing segment M) Each of the block copolymer dispersants D1, D2 further comprises a matrix stabilizing segment M for aqueous phase stabilization of the pigment P.

[0073] In an exemplary embodiment, the matrix stabilizing segment M is formed using at least one monomer Mn3. Preferably, the at least one monomer Mn3 is a monomer for providing an ionic hydrophilic repeating unit for stabilizing the aqueous phase of the pigment. The ionic hydrophilic repeating unit provides solubility of the matrix stabilizing segment M in the aqueous carrier phase. The ionic hydrophilic repeating unit optionally contains a neutralized acid group, a neutralized basic group such as a protonated amino group, or another ionic functional group such as a quaternary ammonium group.

[0074] When two different monomers Mn3 are used to form the matrix stabilizing segment M, the matrix stabilizing segment M has first and second repeating units formed by each of the different monomers Mn3, respectively. In that case, the number of first repeating units and the number of second repeating units of segment M sum to the total number n of repeating units of segment M, i.e., the matrix stabilizing part of the first block.

[0075] In particular, at least one ionic hydrophilic repeat unit R3 of the matrix stabilizing segment M comprises an ionic moiety.

[0076] Furthermore, the matrix stabilizing segment M may contain other non-ionic repeating units in addition to the ionic hydrophilic repeating units. In an exemplary embodiment, the matrix stabilizing segment M may contain ionic hydrophilic repeating units, and the non-ionic matrix stabilizing repeating units contain (poly)glycol functional groups. The ionic hydrophilic repeating units and the non-ionic repeating units of the matrix stabilizing segment M jointly contribute to the water solubility of the polymer.

[0077] (ionic repeating unit R3) In a specific example, the matrix stabilizing segment M is formed using at least one monomer Mn3 to provide an ionic hydrophilic repeating unit R3, which preferably contains a neutralized acid group, a neutralized base group, or other ionic functional group such as a quaternary ammonium group.

[0078] The ionic hydrophilic repeating unit R3 provides solubility of the matrix stabilizing segment M in the aqueous carrier phase.

[0079] In specific examples, the matrix stabilizing segment M is formed using at least one monomer Mn3 selected from the group consisting of methacrylic acid, acrylic acid, maleic acid, maleic acid monoester, itaconic acid, itaconic acid monoester, crotonic acid, crotonic acid monoester, N,N-dimethylaminoethyl methacrylate, N,N-diethylaminoethyl methacrylate, N,N-dimethylaminoethyl acrylate, N,N-diethylaminoethyl acrylate, t-butylaminoethyl methacrylate, t-butylaminoethyl acrylate, and mixtures thereof.

[0080] When the matrix stabilizing segment contains hydrophilic repeating units with acid functional groups, a significant portion of the acid groups must be neutralized with a neutralizing agent to provide solubility and dispersion stability, preferably by setting the pH level at 7.5 so that all the acids are neutralized, and most preferably the pH is set at 8.5 or higher. When the matrix stabilizing segment contains hydrophilic repeating units with basic functional groups, a significant portion of the basic groups, such as protonated amino groups, must be neutralized to provide solubility and dispersion stability, preferably by setting the pH level at 6.5 so that all the basic groups are neutralized, and most preferably the pH is set at 5.5 or lower.

[0081] The choice of neutralizing agent and therefore the corresponding used salt counterion of repeating unit R3 determines that the modified repeating unit R3 must be considered as a different chemical structure.

[0082] Possible neutralizing agents for the acid groups are tertiary amines such as trimethylamine and triethylamine, triethanolamine, ammonia, 2-dimethylaminoethanol, 2-amino-2-methyl-1-propanol, 2(2-amino-ethylamino)ethanol, 2-amino-2-methyl-1-propanol, sodium hydroxide, potassium hydroxide, etc.

[0083] Possible neutralizing agents for basic groups such as amino groups include inorganic acids such as hydrochloric acid and sulfuric acid, and organic acids such as acetic acid, citric acid, maleic acid, propionic acid, lactic acid, succinic acid, and glycolic acid, but the present invention is not limited to these examples.

[0084] The selection of the neutralizing agent and corresponding salt counterion of repeat unit R3 can have an effect on the pigment dispersion stability, including an effect on the pigment particle grinding characteristics and the rate of pigment dispersion, and / or an effect on the pigment dispersion stability properties when exposed to harsh conditions. The selection of the neutralizing agent, pH value, and corresponding salt counterion can also affect the behavior of the final ink, such as drying speed, open time, first drop reliability, and jetting stability.

[0085] (pigment) In aqueous inks, the pigment surface is generally more hydrophobic than the bulk liquid. Therefore, hydrophobic immobilization monomers such as alkyl acrylates and aryl acrylates, such as benzyl acrylate, can be used. However, some pigments have been found to have additional pigment surfaces that are less hydrophobic, and these pigments have been found to be more difficult to achieve good milling performance and dispersion stability with only one block dispersant.

[0086] Differences in pigment surfaces can be demonstrated by chemical analysis, by pigment synthesis procedures, or experimentally by the HSPIP / Hansen solubility method. In this method, the solubility of a substance can be evaluated in different solvents, and the resulting solubility / compatibility can be expressed as hydrogen force, dipole force, and van der Waals / dispersion force. Pigments that may have significantly different pigment surfaces are aoPR122, PBk7, PB15.3, PY74, and PY155.

[0087] Therefore, anchoring segment A1 of block copolymer dispersant D1 and anchoring segment A2 of block copolymer dispersant D2 contain different repeat units that can be selected for different anchoring sites on the pigment surface. For example, in the case of a pigment's crystalline structure, there may be surfaces with different chemical properties that require different anchoring chemistries to achieve higher pigment dispersion stability.

[0088] In an exemplary embodiment, pigment P is a color pigment selected to adjust the color of the ink.

[0089] In an exemplary embodiment, pigment P is an organic pigment that includes a metal atom optionally complexed with an organic component of the organic pigment.

[0090] In an exemplary embodiment, the pigment P is an inorganic pigment that optionally comprises a metal oxide.

[0091] In certain exemplary embodiments, the magenta pigment is a quinacridone pigment selected from Pigment Red 122, Pigment Violet 19, and Pigment Red 202, or the magenta pigment is Pigment Red 57:1, and / or the cyan pigment is Pigment Blue 15:3, Pigment Blue 15.4, Pigment Blue 15.6, and / or the yellow pigment is selected from Pigment Yellow 155, Pigment Yellow 74, and Pigment Yellow 180, and / or the black pigment is carbon black, preferably Pigment Black 7.

[0092] (Water-based pigment dispersion) Preferably, the amount of water in the aqueous carrier is at least 50% by weight, preferably at least 80% by weight, more preferably at least 95% by weight of the total weight of the aqueous carrier.

[0093] In an embodiment, the aqueous carrier contains a total amount of water-soluble organic solvents that is less than 20% by weight, preferably less than 10% by weight, and particularly preferably less than 5% by weight of the total weight of the aqueous carrier. Preferably, the aqueous carrier is substantially free of water-soluble organic solvents.

[0094] The relatively large amount of water and / or the relatively small amount or absence of water-soluble organic solvents in the aqueous carrier increases the versatility and ease of use of preparing inkjet inks derived from the aqueous pigment dispersions.

[0095] In an exemplary embodiment, the amount of pigment P in the pigment dispersion ranges from 10 to 60 wt % based on the weight of the pigment dispersion. The pigment dispersion may be a concentrated dispersion of pigment P compared to the inkjet ink derived from the pigment dispersion. Generally, the amount of colored pigment P in the inkjet ink may range from 0.5 to 10 wt % based on the weight of the inkjet ink. In the case of an inorganic pigment, preferably a white pigment, the amount of pigment P in the pigment dispersion ranges from 40 to 80 wt % based on the weight of the pigment dispersion, and 10 to 50 wt % in the final inkjet ink.

[0096] In an exemplary embodiment, the weight ratio of block copolymer dispersant D1 to block copolymer dispersant D2 is 0.1-10, preferably 0.2-5.

[0097] In an exemplary embodiment, the weight ratio of pigment P to the sum of block copolymer dispersant D1 and block copolymer dispersant D2 is 0.2 to 10.0, preferably 0.4 to 5.0.

[0098] In an exemplary embodiment, the weight ratio of pigment P to block copolymer dispersant D1 is 0. 0 It is 5 to 10.0, preferably 0.1 to 5.0.

[0099] In an exemplary embodiment, the weight ratio of pigment P to block copolymer dispersant D2 is from 0.05 to 10.0, preferably from 0.1 to 5.0.

[0100] (Method for preparing aqueous pigment dispersion) Preferably, the aqueous pigment dispersion is prepared without the use of water-soluble or other organic solvents.

[0101] The pigment dispersion is prepared by mixing the raw materials in an appropriate ratio. The pigment concentration is typically 10 to 60% by weight, and the pigment / block dispersant weight ratio is typically 0.1 to 10. As the block dispersant, a combination of block copolymer dispersant D1 and block copolymer dispersant D2 according to the present invention is used.

[0102] The weight ratio of the block copolymer dispersant D1 to the block copolymer dispersant D2 is 0.1-10, preferably 0.2-5.

[0103] Other ingredients beside the pigment, dispersant, and water can be added to improve the pigment dispersion process, such as wetting agents (typically Mw<1000 g / mol).

[0104] Preferably, no water-soluble co-solvents (such as alkyl ethers or glycols) are used, or only limited amounts of water-soluble co-solvents are used in the preparation of the aqueous pigment dispersion.

[0105] It is advantageous to carry out a very good mixing of the ingredients by methods known in the art, such as cowls mixers, dissolvers, etc., to obtain a very good premix before starting the final dispersion step.

[0106] No particular limitation is imposed on the dispersion method. Examples of dispersion methods are paint shakers, horizontal and vertical bead mills, and high-pressure homogenizers. To ensure very good immobilization of the dispersant on the pigment surface and / or very good electrosteric stabilization, it may be beneficial to mill at high temperatures (40-80°C) or to carry out a heat treatment at 40-80°C after the milling step for a certain time. This heat treatment can be carried out either statically or dynamically (i.e., some kind of vigorous stirring / agitation of the dispersion during the heat treatment).

[0107] Once milling is complete, the milling media is separated from the milled particles using conventional separation techniques such as filtration, sieving through a mesh screen, etc. Often, the screen is built into the mill, for example, for bead mills.

[0108] Preferably, the block copolymer dispersant is dissolved in an aqueous medium to prepare a pre-dispersion. The dissolved polymer is obtained by mixing the dried block copolymer with water and, if necessary, additional neutralizing agent for at least 2 hours at room temperature. Agitation and / or increasing the temperature up to 60°C can be used to accelerate the dissolution process.

[0109] (Water-based pigment inkjet ink) Any amount of additional water and water-soluble organic co-solvent may be added to the pigment dispersion to form an inkjet ink according to the present invention. Any other suitable additives, such as surfactants, binders, dispersing aids, thickeners, pH adjusters, etc., may be added to the pigment dispersion to form an inkjet ink according to the present invention.

[0110] In an exemplary embodiment, the ink is an aqueous ink having an aqueous carrier that is liquid at room temperature and includes water and, optionally, a water-soluble organic cosolvent or cosolvents for carrying or suspending the pigment P including the block copolymer dispersants D1, D2.

[0111] In an exemplary embodiment, the amount of pigment in the ink is at least 0.5 wt %, preferably at least 1.0 wt %, based on the total weight of the ink, and preferably the ink has a viscosity of at most 20 mPa.s at 25°C.

[0112] In an exemplary embodiment, the viscosity of the inkjet ink is between 4 and 30 mPa.s at 25°C, preferably between 4 and 20 mPa.s at 25°C.

[0113] In an exemplary embodiment, the static surface tension of the inkjet ink is between 17 and 35 mN / m.

[0114] In particular, the ink may contain at least one binder resin to improve at least one of adhesion to the substrate, drying, water resistance or scratch resistance of the ink on the substrate. The binder resin may be a water-soluble resin or may be provided as resin particles. The resin particles are dispersed in the inkjet ink as an emulsion or lattices.

[0115] The inkjet ink containing binder can be used to increase the adhesion of the pigment to the substrate while maintaining high pigment stability. It has been found that the pigment dispersion of the inkjet ink according to the present invention maintains high stability when used in combination with the at least one binder resin.

[0116] (Water-soluble organic solvent) In exemplary embodiments, the water-soluble organic solvent comprises at least one of a polyol compound, a glycol ether compound, such as a (poly)ethylene glycol ether or a (poly)propylene glycol ether compound. A polyol compound in the context of this application is the same as a polyhydric alcohol, i.e., having at least two alcohol groups, such as glycerol or propylene glycol. In certain exemplary embodiments, the water-soluble glycol ether compound is glycol monobutyl ether.

[0117] A water-soluble organic solvent can be selected as a penetrant to improve the ink's penetration (wetting) into the substrate. The penetrant helps to control the dot diameter on the substrate and / or improves the adhesion of the pigment to the substrate. Particularly suitable penetrants have surface tension activity, thereby reducing the surface tension of the ink.

[0118] Exemplary penetrants include alkanediols and glycol ethers. It has been found by the present inventors that water-soluble organic solvents with penetrating properties tend to compete with the dispersant, which stabilizes the pigment.

[0119] An exemplary penetrant is a glycol monobutyl ether, such as diethylene glycol monobutyl ether or ethylene glycol monobutyl ether. It should be noted that some penetrants, such as diethylene glycol monobutyl ether, ethylene glycol monobutyl ether, dipropylene glycol monomethyl ether, ethylene glycol isopropyl ether, and 1,2-hexanediol, have surface tension activity, thereby lowering the surface tension of the ink.

[0120] In an exemplary embodiment, the weight concentration of the at least one water-soluble organic solvent in the ink is in the range of 5% to 40% by weight, preferably in the range of 5% to 30% by weight, based on the total weight of the ink.

[0121] In certain embodiments, the weight concentration of the at least one penetrant in the ink is in the range of 1% to 15% by weight, preferably in the range of 2% to 10% by weight, based on the total weight of the ink.

[0122] (Water-based pigment inkjet ink set) In a specific example, the inkjet inks of the ink set include a cyan ink containing a cyan pigment, a magenta ink containing a magenta pigment, a yellow ink containing a yellow pigment, and a black ink containing a black pigment. The ink set may also include any other colored pigment inks and / or non-colored pigment inks. The ink set may further include one or more non-pigment inks.

[0123] (Inkjet printing method) In an exemplary embodiment, an inkjet printing method includes ejecting droplets of each inkjet ink onto a substrate to form a color image on the substrate.

[0124] In certain exemplary embodiments, the droplets are jetted using an inkjet printhead.

[0125] In an exemplary embodiment, the inkjet process involves forming an image on finished corrugated board, corrugated liner, label substrates such as paper and film labels, or flexible packaging substrates in a single pass at a speed of at least 30 m / min, preferably at least 50 m / min.

[0126] [Detailed explanation] As used herein, the term "dispersion" means a two-phase system in which one phase consists of finely divided particles (often in the colloidal size range) distributed throughout a bulk material, the particles being the dispersed or internal phase, and the bulk material being the continuous or external phase.

[0127] As used herein, the term "dispersant" means a surfactant added to a suspending medium to promote uniform and maximum separation of very fine solid particles. For pigments, the dispersant may be a polymeric dispersant, and dispersions containing the dispersant and pigment are typically prepared using dispersing equipment.

[0128] As used herein, the term "aqueous" refers to water or a mixture of water and at least one water-soluble or partially water-soluble organic solvent (co-solvent). As used herein, the term "water-based ink" has the same meaning as the term "aqueous ink."

[0129] As used herein, the term "substantially" means to a significant degree, almost entirely.

[0130] As used herein, the term "ink set" means a combination of inkjet inks used as a kit of parts for printing an image on a substrate by applying the inkjet inks to the substrate in accordance with the present invention. In particular, an ink set is a combination of inkjet inks that can be used together in the same printing process to form a color image on a substrate.

[0131] The materials, methods, and examples herein are illustrative and not limiting.

[0132] As used herein, the term "urethane" refers to [ka] It should be understood that the term also includes urethane isomers such as:

[0133] (water-based ink) The use of colorants in inks is the most essential form of aqueous inks. However, to prevent the ink from drying out at the nozzles, aqueous inks used in inkjet printing processes typically also contain water-soluble organic solvents with high boiling points and favorable solubility in water. This type of solvent can also be considered a humectant in aqueous inks.

[0134] Aqueous inks used in inkjet printing methods typically also contain a water-soluble organic solvent, which is a penetrant that improves the ink's ability to penetrate (wet) into the substrate. The penetrant helps control the dot diameter on the substrate and / or improves the adhesion of the pigment to the substrate. Particularly suitable penetrants have surface tension activity, thereby reducing the surface tension of the ink. Furthermore, to enable minimal wetting and spreading of the aqueous ink in the print head, on the substrate, etc., aqueous inks used in inkjet printing methods typically also contain one or more surfactants.

[0135] Finally, the aqueous ink composition may also optionally contain various types of additives, such as antifoaming agents, thickeners, binders, and preservatives, etc. The addition of these types of additives to the aqueous ink composition allows the composition to be more conveniently used as an inkjet ink.

[0136] (pigment) The pigment is preferably used from the viewpoint of imparting excellent water resistance, light resistance, weather resistance, gas resistance, etc. Examples of pigments that can be used in the present invention include conventional organic pigments and inorganic pigments.

[0137] The pigments may be selected from those disclosed by HERBST, W. et al., Industrial Organic Pigments, Production, Properties, Applications. 2nd edition. vch, 1997.

[0138] The pigment particles in pigment inkjet inks must be small enough to allow free flow of the ink through the inkjet printing device, particularly at the ejection nozzles. It is desirable to use small particles for maximum color strength and also to slow settling.

[0139] The average particle size of the pigment in the pigment inkjet ink should be 5 nm to 1 μm, particularly preferably 5 nm to 500 nm, and most preferably 30 nm to 300 nm. Larger pigment particle sizes can be used as long as the objectives of the present invention are achieved.

[0140] The pigment is used in the pigment inkjet ink in an amount of 0.1 to 30% by weight, preferably 1 to 10% by weight, based on the total weight of the pigment inkjet ink.

[0141] Examples of cyan pigments that can be used in the present invention include CI Pigment Blue 1, 2, 3, 15:3, 15:4, 15:6, 16, and 22, and CI Vat Blue 4 and 6. These cyan pigments can be used individually or combinations of two or more pigments can be used.

[0142] Examples of magenta pigments that can be used in the present invention include C.I. Pigment Red 5, 7, 12, 22, 23, 31, 48(Ca), 48(Mn), 49, 52, 53, 57(Ca), 57:1, 112, and 122; Quinacridone Solid Solution 146, 147, 150, 185, 238, 242, 254, 255, 266, and 269; and C.I. Pigment Violet 19, 23, 29, 30, 37, 40, 43, and 50. Quinacridone mixed crystal pigments can also be used.

[0143] Examples of yellow pigments that can be used in the present invention include CI Pigment Yellow 10, 11, 12, 13, 14, 17, 20, 24, 74, 83, 86, 93, 94, 95, 109, 110, 117, 120, 125, 128, 137, 138, 139, 147, 148, 150, 151, 154, 166, 168, 180, 185, and 213.

[0144] Other organic pigments such as CI Pigment Green 36 and 7, Pigment Violet 23, Pigment Orange 34 and 64 can be used to increase the color gamut.

[0145] Examples of black pigments that can be used in the present invention include organic pigments such as aniline black, lumogen black, and azomethine black, as well as inorganic pigments such as carbon black and iron oxide. Furthermore, multiple colored pigments, such as the above-mentioned yellow pigments, magenta pigments, and cyan pigments, can be mixed together and used as a black pigment.

[0146] There is no particular limitation on the inorganic pigments that can be used in the present invention. Examples of inorganic pigments can also include different metal oxides.

[0147] Additionally, inorganic pigments may include white pigments such as titanium dioxide (anatase, brookite, and rutile), as commercially available from, for example, KRONOS (e.g., grades 2044, 2047) or titanium dioxide coated with metal oxides (e.g., R700 EI DuPont de Nemours), or other inorganic pigments such as zinc oxide and iron oxide.

[0148] Examples of carbon black pigments that may be used in the present invention include carbon blacks produced using the furnace process or the channel process.

[0149] Examples of commercially available products are listed below, any of which may be used to advantage.

[0150] Specific examples of carbon black include Nos. 33, 40, 45, 52, 900, 2200B, 2300, MA7, MA8, and MCF88 (all manufactured by Mitsubishi Chemical Corporation), RAVEN 1255 (manufactured by Columbian Chemicals Co., Inc.), REGAL 330R, 400R, and 660R, and MOGUL L (all manufactured by Cabot Corporation), and Nipex 1601Q, Nipex 1701Q, Nipex 75, Printex 85, Printex 95, Printex 90, Printex 35, and Printex U (all manufactured by Orion Engineered Carbons LLC).

[0151] In this embodiment of the present invention, the pigment is not limited to the pigments described above, and other special colors such as orange pigments and green pigments can also be used. Furthermore, multiple pigments can be combined. Furthermore, in another example, the aqueous ink composition of this embodiment of the present invention can be used as an ink set in combination with a clear ink that does not contain a pigment.

[0152] Any other pigments and / or dyes that are useful for modifying the color of the ink can be used.

[0153] (surfactant) The inkjet ink according to the present invention may comprise at least one surfactant. The surfactant(s) may be anionic, cationic, nonionic, or zwitterionic and are typically added in a total amount of less than 6 wt. % based on the total weight of the pigmented inkjet ink, and especially in a total amount of less than 4 wt. % based on the total weight of the pigmented inkjet ink.

[0154] Suitable surfactants for ink-jet inks according to the present invention include silicon-based, acrylic-based, and fluorine-based surfactants, fatty acid salts, ester salts of higher alcohols, alkylbenzene sulfonates, sulfosuccinate ester salts, and phosphate ester salts of higher alcohols, ethylene oxide adducts of higher alcohols, ethylene oxide adducts of alkylphenols, ethylene oxide adducts of polyhydric alcohol fatty acid esters, and acetylene glycol and its ethylene oxide adducts. Commercially available examples include Byk-348, Byk-347, Byk-3450, Dynwet 800 (Byk Chemie GmbH); Surfynol 104, Surfynol 465, Metolat 364, Dynol 800, Dynol 960 (Evonik Industries), KF-640, KF-642 (Shin-Etsu Chemical Co., Ltd.); ID-40, ID-70 (Sanyo Chemical Industries, Ltd.), Olfine E1004, Olfine E1010, Olfine EXP4300, Surface SAG503, etc., all from Nissin Chemical Industry Co., Ltd., and combinations thereof.

[0155] (Water-soluble organic solvent) The type of water-soluble organic solvent is not particularly limited as long as the effects of the present invention can be obtained. It is preferable that the organic solvent is water-soluble in order to increase its compatibility with water. Examples of water-soluble organic solvents include alcohols, polyhydric alcohols, amines, amides, glycol ethers, and 1,2-alkanediols. Only one type of organic solvent may be used, or two or more types may be used.

[0156] Examples of the polyhydric alcohols include ethylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, polyethylene glycols having five or more ethylene oxide groups, propylene glycol, dipropylene glycol, tripropylene glycol, polypropylene glycols having four or more propylene oxide groups, butylene glycol, hexanediol, pentanediol, glycerin, hexanetriol, and thiodiglycol.

[0157] Examples of the above-mentioned amines include ethanolamine, diethanolamine, triethanolamine, N-methyldiethanolamine, N-ethyldiethanolamine, morpholine, N-ethylmorpholine, ethylenediamine, diethylenediamine, triethylenetetramine, tetraethylenepentamine, polyethyleneimine, pentamethyldiethylenetriamine, tetramethylpropylenediamine, and the like.

[0158] Examples of the above-mentioned amides include formamide, N,N-dimethylformamide, N,N-dimethylacetamide, pyrrolidone, urea, and the like.

[0159] Examples of the glycol ethers include ethylene glycol monoethyl ether, ethylene glycol monobutyl ether, diethylene glycol monoethyl ether, diethylene glycol monobutyl ether, triethylene glycol monobutyl ether, propylene glycol monopropyl ether, dipropylene glycol monomethyl ether, and tripropylene glycol monomethyl ether.

[0160] Examples of 1,2-alkanediols include 1,2-propanediol, 1,2-butanediol, 1,2-pentanediol, 1,2-hexanediol, and 1,2-heptanediol.

[0161] Among these, when the water-soluble organic solvent is a polyhydric alcohol, blurring during high-speed printing can be preferably suppressed. Preferred examples of the polyhydric alcohol include ethylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, propylene glycol, dipropylene glycol, and tripropylene glycol.

[0162] A water-soluble organic solvent may be selected as a penetrant to improve the ink's penetration (wetting) into the substrate. The penetrant helps to control the dot diameter on the substrate and / or improves the adhesion of the pigment to the substrate. Particularly suitable penetrants include alkanediols and glycol ethers.

[0163] Exemplary penetrants are glycol monobutyl ethers such as diethylene glycol monobutyl ether and ethylene glycol monobutyl ether. It should be noted that some penetrants, such as diethylene glycol monobutyl ether, ethylene glycol monobutyl ether, ethylene glycol isopropyl ether, and 1,2-hexanediol, are also surface tension active, thereby lowering the surface tension of the ink.

[0164] (binder resin) In one embodiment, the aqueous ink composition of the present invention preferably also contains a binder resin (functional polymer). Known binder resins for aqueous ink compositions include water-soluble resins and resin particles (emulsion / latex). Examples of types of resins that can be used as the resin particles include acrylic, styrene / acrylic, urethane, styrene / butadiene, vinyl chloride, vinyl acetate (optionally partially or completely hydrolyzed), polyester, and polyolefin resins.

[0165] These additional binder resins may aid in achieving a stable jetting process, adhesion of the ink to the substrate, chemical and / or mechanical resistance of the final ink layer, or improve image quality.

[0166] (Biocide) Suitable biocides for the pigmented inkjet ink of the present invention include sodium dehydroacetate, 2-phenoxyethanol, sodium benzoate, sodium pyridinethione-1-oxide, ethyl p-hydroxybenzoate, 2-methyl-1,2-thiazol-3-one, and 1,2-benzisothiazolin-3-one, and salts thereof.

[0167] The biocides are preferably added in an amount of 0.001 to 3 wt %, more preferably 0.01 to 1.00 wt %, each based on the total weight of the pigment inkjet ink.

[0168] (Other ingredients) In the inkjet printing ink, various known additives, such as polysaccharides, viscosity modifiers, coating formers, pH adjusters, etc., may be suitably selected and used, if necessary, in addition to the above-mentioned components in order to improve all performances.

[0169] (Preparation of Pigment Inkjet Inks) The pigment inkjet ink according to the present invention can be prepared by first preparing a pigment dispersion, then diluting the pigment dispersion to the desired pigment concentration and adding all other ink ingredients, including adding any required water-soluble organic solvents.

[0170] It is generally desirable to prepare color inks in the form of concentrated aqueous pigment dispersions according to the present invention, which are then diluted to the appropriate concentration for use in inkjet printing systems. This technique allows larger amounts of pigment ink to be prepared from the equipment. By diluting, the ink is adjusted to the desired viscosity, color, hue, saturation density, and print area coverage for a particular application.

[0171] Inkjet inks are prepared by mixing the components with a dispersion using conventional mixing equipment. The stirring and mixing method is not particularly limited and can be appropriately selected as needed. Examples include homogenizers, paint shakers, ultrasonic dispersers, stirrers using conventional stirring blades, magnetic stirrers, and high-speed dispersers. The ink is finally filtered before use. A filtration step in the range of 1 to 5 μm is often performed for printhead nozzles with droplet sizes less than 20 pL and nozzles smaller than 30 microns. It is extremely important to ensure that particulate matter does not reach the nozzles, as a single failure can result in the replacement of the entire printhead at considerable cost.

[0172] For pigmented inks, multi-stage filtration is typically used after making the dispersion and again after adding and diluting additives, where the main purpose is to remove oversized or agglomerated pigment from the dispersion, as well as oversized particles and other process contaminants.

[0173] Available filter technologies have different applications, advantages, and disadvantages. Examples of filters are membrane, depth, and hybrid filter types. Common suppliers of filters for inkjet inks are Pall, Porvair, and Membrane Solutions.

[0174] In a preferred embodiment, no crosslinking or encapsulation is required after milling. The stable pigment dispersion according to the present invention can be obtained without the need for crosslinking and other additional steps, for example, no filtration step is used to remove unreacted materials. This results in a simpler synthesis process and is more economically attractive since less energy and resources need to be spent to obtain a stable pigment dispersion.

[0175] Optionally, adding a crosslinking and / or encapsulation step results in an even more stable dispersion, but this process is more complex and more sensitive to unreacted crosslinker and / or crosslinked free dispersant, which can potentially lead to poorer performing pigment dispersions and corresponding inks if extra removal steps such as ultrafiltration are not used.

[0176] (experiment) (Manufacturing method) (Block copolymer synthesis) Block copolymers can be prepared using a number of different so-called living polymerization methods. The basis of the method remains unchanged depending on the synthetic method used: Instantaneous initiation, ensuring simultaneous growth of all polymer chains at a specific propagation rate Living polymerization is ensured by adding very low concentrations of live (growing) chains to the solution at any given time to avoid termination or radical recombination. Continued growth is tightly controlled, which results in low polymer polydispersity and therefore well-defined polymer composition.

[0177] Further polymerization can be achieved in several ways, with anionic polymerization and group transfer polymerization (e.g., atom transfer radical polymerization [ATRP], NMP, ...) being the two most common synthetic methods. These methods have specific requirements (absence of oxygen, absence of water, ...) that make them impractical and expensive for producing large (industrial-scale) volumes of polymer. Two examples are the use of alkyllithium components or naphthanelide at cryogenic temperatures to initiate the polymerization.

[0178] In an exemplary embodiment, the block copolymers are prepared by ATRP as described by Wang and Matyjaszewski in Controlled Living Radical Polymerization (Macromolecules 1995, 28 7901-7910).

[0179] (Synthesis example) The following procedure describes a potential synthetic method for making a block dispersant, which has 30 monomers of AA for its block length in the matrix stabilizing segment and 10 monomers of BnA for its block length in the immobilizing segment. 30 -BnA 10 It is characterized as a block copolymer dispersant composed of two blocks: the matrix stabilizing segment is formed by reacting the monomer acrylic acid (AA) and has a length of about 30 repeating units, and the anchoring segment is formed by reacting the monomer benzyl acrylate (BnA) and has a length of about 10 repeating units. Other block dispersant structures can be prepared by one skilled in the art in the same manner by adjusting the amount and type of starting materials and reaction time, and the order of preparation of the block dispersants can be interchanged, i.e., preparing the BnA block first, followed by the AA block. "Parts" herein are by weight unless otherwise specified.

[0180] A 250-milliliter three-neck flask equipped with a thermometer, reflux condenser, and nitrogen balloon was charged with 0.43 parts Cu(I)Br, 38.5 parts tert-butyl acrylate, 41.2 parts anisole, internal standard, and 0.69 parts tris[2-(dimethylamino)ethyl]amine (Me6TREN). The mixture was degassed under vacuum and backfilled with nitrogen three times and heated to 60°C. Then, 1.67 parts methyl 2-bromopropionate (MBP) was added to initiate the polymerization reaction, which was carried out for 0.5 hours.

[0181] In a separate flask, 16.2 parts of benzyl acrylate and 0.87 parts of N,N,N',N",N"-pentamethyldiethylenetriamine (PMDETA) were mixed and evacuated under vacuum and backfilled with nitrogen three times. This solution was added to the tert-butyl acrylate polymer solution along with 0.72 parts of CuBr and 0.19 parts of Cu(0). The polymerization was terminated after 6 hours by exposing the catalyst to air (Mn=5406 and Mw / Mn=1.37, conversion=96.4%). The copper catalyst was removed by column chromatography, followed by evaporation of excess solvent.

[0182] The tert-butyl acrylate groups of the block copolymer were then hydrolyzed. The purified block copolymer was dissolved in 2 volumes of refluxing dioxane, and then 0.5 equivalents of sulfuric acid relative to the amount of tert-butyl acrylate repeat units in the polymer were added to the solution. After 2 hours, an equimolar amount of base was added to quench the reaction. The reaction solution was filtered through Celite® to remove the formed salt. Dioxane was removed by rotary evaporation to yield the acrylic acid / benzyl acrylate block copolymer.

[0183] AA with 15 monomers for the block length of the matrix stabilization segment and AA with 30 monomers of 2-(2-ethoxyethoxy)ethyl acrylate (EOEOEA) for the block length of the immobilization segment 15 -EOEOEA 30Another synthetic example to produce a blocked dispersant characterized as:

[0184] A 250-milliliter three-neck flask equipped with a thermometer, reflux condenser, and nitrogen balloon was charged with 1.43 parts Cu(I)Br, 38.5 parts tert-butyl acrylate, 41.2 parts anisole, internal standard, and 1.73 parts N,N,N',N",N"-pentamethyldiethylenetriamine (PMDETA). The mixture was degassed under vacuum and backfilled with nitrogen three times and heated to 80°C. 3.34 parts methyl 2-bromopropionate (MBP) was then added to initiate the polymerization reaction, which was carried out for 1 hour.

[0185] In a separate flask, 112.9 parts of 2-(2-ethoxyethoxy)ethyl acrylate, 48.3 parts of anisole, and 1.73 parts of PMDETA were mixed and evacuated under vacuum and backfilled with nitrogen three times. This solution was added to the tert-butyl acrylate polymer solution along with 0.64 parts of Cu(0). The polymerization was terminated after 4 hours by exposing the catalyst to air (Mn = 7165 and Mw / Mn = 1.32). The copper catalyst was removed by column chromatography, followed by evaporation of the excess solvent.

[0186] The tert-butyl acrylate groups of the block copolymer were then hydrolyzed. The purified block copolymer was dissolved in 2 volumes of refluxing dioxane, and then 0.5 equivalents of sulfuric acid relative to the amount of tert-butyl acrylate repeat units in the polymer were added to the solution. After 2 hours, an equimolar amount of base was added to quench the reaction. The reaction solution was filtered through Celite® to remove the formed salt. Dioxane was removed by rotary evaporation to yield an acrylic acid / 2-(2-ethoxyethoxy)ethyl acrylate block copolymer.

[0187] The current synthesis method describes a "conventional" reactor-based synthesis. Alternatively, the mentioned block dispersants can be synthesized using a flow chemistry process. The inventors refer to "Flow Chemistry: Integrated Approaches for Practical Applications," Santiago V. Luis and Eduardo Garcia-Verdugo (eds.), 2019, (ISBN: 978-1-78801-498-4 / 978-1-78801-609-4). The block dispersants were synthesized using a flow reactor with the same starting materials as the "conventional reactor," except that EBiB was used as the initiator, 365 nm UV LED light was used as the photon source, the reaction was initiated by the reduction of Cu(II)Br2 to Cu(0), and the solvent used was acetonitrile:ethanol (1:1). The flow reactor was assembled using PFA tubing (1 / 16 inch OD, 0.75 mm ID). The flows were connected through in-line check valves, T-pieces, and static mixers before entering the photoreactor to ensure homogeneity. Sixteen LEDs (365 nm) were attached to an octagonal reactor (fabricated in-house with PLA filament using a 3D printer). The second polymer block can be added to the first block in a subsequent reactor module. Finally, the hydrolysis and filtration steps can be performed similarly to the batch process described above or integrated into the flow reactor configuration.

[0188] To make the dispersant compatible with the carrier, the hydrophilic monomer must be neutralized, thereby ionizing the salt-forming groups of the block copolymer. Depending on the type of salt-forming group, an acid or base can be used as the neutralizing agent, e.g., basic (e.g., DMAEMA) or acidic (e.g., (meth)acrylic acid). Neutralizing agents for basic monomers include inorganic acids such as hydrochloric acid and sulfuric acid, and organic acids such as acetic acid, propionic acid, lactic acid, succinic acid, and glycolic acid. Furthermore, neutralizing agents for acidic monomers include tertiary amines such as trimethylamine, triethylamine, triethanolamine, ammonia, 2-dimethylaminoethanol, 2-ammino-2-methyl-1-propanol, 2(2-amino-ethylamino)ethanol, 2-amino-2-methyl-1-propanol, sodium hydroxide, potassium hydroxide, etc. The present invention is not limited to these examples.

[0189] Please note that the total dispersant weights referred to in the examples below include the mass of the neutralizing agent.

[0190] (Water-soluble block copolymer dispersant) Examples of solubilization are listed in Table 1. Water solubility testing is performed according to the test procedures further described below.

[0191] [Table 1]

[0192] Dissolution was carried out in a round flask using mechanical stirring. * ) Stability is confirmed by decanting the aqueous polymer solution and checking for settling of solids.

[0193] Polymer Dispersant BnA 40 -AA 25 Note that although α-glucan has a very low relative hydrophilic / hydrophobic balance, it is still soluble in water at high concentrations for longer periods in the absence of organic co-solvents.

[0194] (encapsulation) Optionally, crosslinking is carried out immediately after the milling process by chemically bonding the dispersants together on the surface. A very common way to achieve this is to add an epoxy compound (mostly di- or tri-epoxide) to the dispersion to bond a specific portion of the (meth)acrylic acid monomers present in the dispersant backbone (preferably to the surface of the pigment particles). If not all the dispersant adheres to the pigment surface, these free polymers will, for example, be incorporated between the polymer particles, thereby interfering with the crosslinking process by flocculating part of the dispersion, and therefore must be subsequently removed. These resulting encapsulated pigment particles will have high stability due to the formation of a "net" or "capsule" of dispersant over the surface of the particle, which cannot be disturbed by the addition of cosolvents and surfactants.

[0195] (Pigment dispersion manufacturing) A pigment dispersion having the composition according to Table 2 is prepared by milling 30 g of raw materials in a ball jar at a pigment concentration of 15%.

[0196] Ball jar milling is carried out in a 125 mL PP bottle with a diameter of 45 mm. The bottle is filled with 200 g of 0.3 mm YTZ ceramic beads from Tosoh Corporation. Milling is carried out for 7 days at a rotation speed of 36 m / min.

[0197] [Table 2]

[0198] (Analysis method) (particle size analysis) The particle size of the pigment is measured using a Nicomp 3.80 particle size analyzer (Particle sizing systems, Santa Barbara, California, USA). To achieve optimal measurement performance, the dispersion is diluted to 10-100 ppm (i.e., the dispersion is diluted to 10 x 10 6 times ~ 100 x 10 6The diluted sample is measured at 23°C with a HeNe laser, and the dv50 is obtained from Gaussian analysis of the scattered light intensity profile.

[0199] (surface tension) Surface tension was measured at 23-26 °C using the bubble pressure method using a surface tensiometer SITA Pro Line T15 (SITA Messtechnik Co, Dresden, GE.). The bubble lifetime used was 10 s, which is the time between the creation of a new air-liquid interface (at the tip of the capillary immersed in the ink liquid) until the maximum bubble pressure was reached. The measured maximum pressure was automatically recalculated into the liquid's surface tension value (expressed in mN / m) after calibration of the instrument in distilled water.

[0200] (viscosity) Viscosity (of dispersions and supernatant liquids) was measured at 25°C on a Haake Rheostress RS6000 operating with a shear rate sweep from 0.1 to 3000 1 / s and is expressed in mPa.s. The instrument was equipped with a cone / plate geometry type C60 / 1°, with a gap set at 0.052 mm. The reported viscosity is measured at a frequency of 3000 1 / s.

[0201] (Water-soluble block copolymer dispersant) A block copolymer is defined as "water soluble" if the block copolymer remains dissolved in water at 25°C for at least one week, preferably at least one month or more, with at least 15% by weight of dry polymer in water, more preferably at least 20% by weight of dissolved dry polymer in water at 25°C for at least one week, and most preferably at least 25% by weight of dissolved dry polymer in water at 25°C for at least one week. A polymer dispersant solution is obtained by mixing the dried block copolymer with 100 g of distilled water for at least two hours at a temperature of at least 25°C. Agitation and / or increasing the temperature up to 60°C can be used to accelerate the dissolution process. The mixing time can be selected from 2 to 12 hours.

[0202] If the dry block copolymer contains acidic repeat units in the matrix stabilizing segment, the "water soluble" test condition is performed by neutralizing all acidic functional groups by adding monoethanolamine (MEA) base to water so that the pH of the polymer solution is 8.5 or higher. If the dry block copolymer contains basic functional groups in the repeat units of the matrix stabilizing segment, the "water soluble" test condition is performed by neutralizing all basic functional groups by adding HCl to water so that the pH of the polymer solution is 5.5 or lower.

[0203] (Evaluation method) (Dispersion stability) The dispersion stability of the pigment dispersion was tested under very harsh conditions: after adding diethylene glycol monobutyl ether (DEGMBE) as an organic solvent to disturb the pigment dispersion stability, the dispersion was stored at a high temperature of 80°C for 7 days.

[0204] A closed glass vial containing 5 g of dispersion, 1.5 g of DEGMBE, and 8.5 g of water was used. The pigment dispersion had 15 wt. % pigment based on the total weight of the pigment dispersion. The amount of pigment in the test was 15 wt. % x 5 [g] / 15 [g] = 5 wt. % based on the total weight of the composition. The amount of DEGMBE was 1.5 / 15 = 10 wt. % based on the total weight of the composition. The particle size was measured before and after heat treatment. Stability was considered good if the dv50 after heat treatment was less than 1.10 times the dv50 before heat treatment.

[0205] (Crushing performance of dispersant) The milling performance of the dispersant is determined by the particle size that can be obtained after milling. A good milling performance reaches dv50<175nm. If the milling performance is not within the specifications, the stability test was not carried out.

[0206] (Hansen solubility parameter) The Hansen solubility parameters according to the present invention are calculated by the Y-MB method using HSPiP software version 5.2.03, and the cal 1 / 2 cm -3 / 2 It is expressed as:

[0207] Examples of Hansen solubility parameters for repeating units R1 and R2 are shown in Tables 3.1 and 3.2.

[0208] [Table 3] TIFF0007801317000005.tif37149

[0209] Table 3.1 shows the polar bond value δ (polar) of R1, the hydrogen bond value δ (hydrogen) of R1, and the Hansen solubility parameter value δ (polar + hydrogen), which is the sum of the polar bond value of R1 and the hydrogen bond value of R1. R1 The value is [cal 1 / 2 cm -3 / 2 ] is expressed as

[0210] [Table 4]

[0211] Table 3.2 shows the polar bond value δ (polar) of R2, the hydrogen bond value δ (hydrogen) of R2, and the Hansen solubility parameter value δ (polar + hydrogen), which is the sum of the polar bond value of R2 and the hydrogen bond value of R2. R2 The value is [cal 1 / 2 cm -3 / 2 ] is expressed as

[0212] The sum of the repeat unit polar bond value and the repeat unit hydrogen bond value is defined as the square root of the sum of the square of the repeat unit polar bond value and the square of the repeat unit hydrogen bond value: δ(polar + hydrogen) = √[δ(polar) 2 +δ(hydrogen) 2 ].

[0213] (result) Several block copolymer dispersants were prepared according to Table 4: [Table 5]

[0214] Different pigment dispersions were prepared (Table 5) using the block copolymer dispersants mentioned in Table 4 according to the compositions mentioned in Table 2. The pigment dispersions contained 15 wt % dispersant and the pigment / total dispersant weight ratio was 1, resulting in 30 wt % pigment plus dispersant in the pigment dispersion. The pigment dispersions contained water as the aqueous carrier and no water-soluble organic solvents during the milling experiments.

[0215] [Table 6]

[0216] The grinding performance was considered to be good (V) if the dv50 was less than 175 nm. The heat treatment stability was considered to be good if the dv50 after heat treatment was less than 1.10 times the dv50 before heat treatment.

[0217] From the examples in Table 3, it can be concluded that for pigment dispersions 1 to 5 having A-type block copolymer dispersants and B-type block copolymer dispersants, very stable pigment dispersions can be obtained.

[0218] Equally good grinding and stability results are obtained as shown in Table (5) for Examples 1-5 using any one or more of the dispersants DA1-DA4, but which are neutralized with triethanolamine or monoethanolamine instead of using the sodium salt, thereby demonstrating that the advantageous properties of these dispersants are independent of the type of counterion.

[0219] Inkjet inks were prepared according to Table 6 using the pigment dispersions of Examples 1-5.

[0220] [Table 7]

[0221] All inks have a viscosity of 4-7 mPa.s and a surface tension of 20-27 mN / m measured with a Sita bubble tensiometer after 10 seconds.

[0222] With these inks 1-6, excellent jetting and image quality was observed on coated and uncoated paper substrates using a Kyocera KJ4B AQ printhead at a print speed of 1 m / s.

[0223] Example 6 shows that the inkjet ink remains stable when using a binder resin (Joncryl J8050E), which improves the adhesion of the pigment to a variety of paper and film substrates. [Item 1] 1. An inkjet ink for forming an image on a substrate, comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; wherein the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each of the block copolymer dispersants D1 and D2 comprises an anchoring segment A1, A2 for anchoring the pigment P, and each of the block copolymer dispersants D1 and D2 further comprises a matrix stabilizing segment M for stabilizing the aqueous phase of the pigment P, wherein the anchoring segment A1 of the first block copolymer dispersant D1 comprises a repeating unit R1, and the anchoring segment A2 of the second block copolymer dispersant D2 comprises a repeating unit R2, and the repeating unit R1 is less hydrophobic than the repeating unit R2. [Item 2] The repeating unit R1 has a Hansen solubility parameter value δ (polar + hydrogen) R1 and δ (polar + hydrogen) R1 is 7.2 cal 1 / 2 cm -3 / 2 The Hansen solubility parameter value δ(polarity + hydrogen) exceeds √[δ(polarity) 2 +δ(hydrogen) 2 2. The inkjet ink according to item 1, wherein the inkjet ink is defined as [Item 3] 3. The inkjet ink according to item 1 or 2, wherein the repeat unit R1 is a non-ionic repeat unit. [Item 4] The repeating unit R2 has a Hansen solubility parameter value δ (polar + hydrogen) R2 and δ (polar + hydrogen) R2 is 7.2 cal 1 / 2 cm -3 / 2 The Hansen solubility parameter value δ(polar + hydrogen) is less than √[δ(polar) 2 +δ(hydrogen) 2 4. The ink-jet ink according to any one of items 1 to 3, wherein [Item 5] The polar bond value of R1: δ (polarity) R1 is 4.4 cal 1 / 2 cm -3 / 2 5. The inkjet ink according to any one of items 2 to 4, wherein the ink-jet ink has a viscosity of more than 1000 MPa. [Item 6] The polar bond value δ of R2 (polarity) R2 is 4.4 cal 1 / 2 cm -3 / 2 6. The inkjet ink according to item 4 or 5, wherein [Item 7] The anchoring segment A1 of the first block copolymer dispersant D1 has another repeat unit R1' different from R1, and the other repeat unit R1' preferably has a repeat unit of 7.2 cal 1 / 2 cm -3 / 2 Hansen solubility parameter value δ (polar + hydrogen) exceeding R1 and / or The anchoring segment A2 of the second block copolymer dispersant D2 has another repeat unit R2' different from R2, and the other repeat unit R2' preferably has a repeat unit of 7.2 cal 1 / 2 cm -3 / 2 Hansen solubility parameter value δ (polar + hydrogen) less than R2 7. The ink-jet ink according to any one of items 1 to 6, comprising: [Item 8] The immobilization segment A1 is composed of at least one monomer Mn 1 and the anchoring segment A2 is formed using at least one monomer Mn 2 and the monomer M 1 、M 2 is selected from the group consisting of methacrylates, acrylates, and vinyl monomers. [Item 9] The monomer Mn of the immobilization segment A2 2 comprises an alkyl, alkenyl, or aryl group. [Item 10] The monomer Mn of the immobilization segment A2 2 is at least one of benzyl methacrylate, butyl methacrylate, methyl methacrylate, ethyl methacrylate, propyl methacrylate, hexyl methacrylate, 2-ethylhexyl methacrylate, octyl methacrylate, lauryl methacrylate, stearyl methacrylate, p-tolyl methacrylate, sorbyl methacrylate, cyclohexyl methacrylate, benzyl acrylate, butyl acrylate, methyl acrylate, ethyl acrylate, propyl acrylate, hexyl acrylate, 2-ethylhexyl acrylate, octyl acrylate, lauryl acrylate, stearyl acrylate, p-tolyl acrylate, sorbyl acrylate, cyclohexyl acrylate, and any mixture thereof. [Item 11] The monomer Mn of the immobilization segment A1 1 However, tri(ethylene glycol) methyl ether acrylate, hydroxyethyl acrylate, hydroxypropyl acrylate, dimethylaminoethyl acrylate (DMAA), N,N-dimethylacrylamide, acryloylmorpholine (ACMO), N-vinylpyrrolidone (NVP), vinylmethyloxazolidinone (VMOX), and 2-(2-ethoxyethoxy)ethyl acrylate (EOEOEA), phenoxyethyl methacrylate, methacrylonitrile, ethylene glycol methyl ether methacrylate, 2-ethoxyethyl methacrylate, di(ethylene glycol) methyl 11. The ink-jet ink according to any one of items 8 to 10, wherein the hydroxyl group is at least one of ether methacrylate, tri(ethylene glycol) methyl ether methacrylate, hydroxyethyl methacrylate, hydroxypropyl methacrylate, di(propylene glycol) methyl ether methacrylate, phenoxyethyl acrylate, ethylene glycol methyl ether acrylate, 2-ethoxyethyl acrylate, di(ethylene glycol) methyl ether acrylate, 2-[[(butylamino)carbonyl]oxy]ethyl acrylate, and any mixture thereof. [Item 12] The monomer Mn of the immobilization segment A1 1 Item 12. The inkjet ink according to item 11, wherein is an acrylate or methacrylate and comprises a monoethylene glycol group or a polyethylene glycol group. [Item 13] The matrix stabilizing segment M is selected from at least one monomer Mn to provide an ionic hydrophilic repeating unit for stabilizing the aqueous phase of the pigment. 3 13. The ink-jet ink of any one of items 1 to 12, wherein the ionic hydrophilic repeat units optionally contain other ionic functional groups such as neutralized acid groups, neutralized base groups, or quaternary ammonium groups. [Item 14] The matrix stabilizing segment M is at least one monomer Mn selected from the group consisting of methacrylic acid, acrylic acid, maleic acid, maleic acid monoester, itaconic acid, itaconic acid monoester, crotonic acid, crotonic acid monoester, N,N-dimethylaminoethyl methacrylate, N,N-diethylaminoethyl methacrylate, N,N-dimethylaminoethyl acrylate, N,N-diethylaminoethyl acrylate, t-butylaminoethyl methacrylate, t-butylaminoethyl acrylate, and mixtures thereof. 3 14. The ink-jet ink of any one of items 1 to 13, formed using [Item 15] 15. The inkjet ink of any one of items 1 to 14, wherein the matrix stabilizing segment M comprises at least one repeat unit R3 that comprises an ionic moiety. [Item 16] 16. The inkjet ink according to any one of items 1 to 15, wherein the repeating units R1 and R2 of the immobilizing segments A1 and A2 do not have an ionic group. [Item 17] the immobilization segment A1 has a number n of repeating units, and the repeating units R1 make up at least 50% by number of the total number n1 of repeating units, preferably at least 80% by number of the total number n1 of repeating units; and / or 17. The inkjet ink according to any one of items 1 to 16, wherein the immobilizing segment A2 has a number n of repeating units, and the repeating units R2 account for at least 50% by number of the total number n2 of repeating units, preferably at least 80% by number of the total number n2 of repeating units. [Item 18] 18. The inkjet ink according to any one of items 1 to 17, wherein the weight ratio of the block copolymer dispersant D1 to the block copolymer dispersant D2 is 0.1 to 10, preferably 0.2 to 5. [Item 19] 19. The inkjet ink according to any one of items 1 to 18, wherein the weight ratio of the pigment P to the sum of the block copolymer dispersant D1 and the block copolymer dispersant D2 is 0.2 to 10.0, preferably 0.4 to 5.0. [Item 20] 20. The ink-jet ink according to any one of items 1 to 19, wherein the weight ratio of the pigment P to the block copolymer dispersant D1 is from 0.05 to 10.0, preferably from 0.1 to 5.0. [Item 21] 21. The inkjet ink according to any one of items 1 to 20, wherein the weight ratio of the pigment P to the block copolymer dispersant D2 is from 0.05 to 10.0, preferably from 0.1 to 5.0. [Item 22] 22. The inkjet ink of any one of items 1 to 21, wherein the block copolymer dispersant D1 and / or the block copolymer dispersant D2 is a diblock copolymer. [Item 23] A pigment dispersion for forming an inkjet ink, comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; wherein the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each of the block copolymer dispersants D1 and D2 comprises an anchoring segment A1, A2 for anchoring the pigment P, and each of the block copolymer dispersants D1 and D2 further comprises a matrix stabilizing segment M for stabilizing the aqueous phase of the pigment P, wherein the anchoring segment A1 of the first block copolymer dispersant D1 comprises a repeating unit R1, and the anchoring segment A2 of the second block copolymer dispersant D2 comprises a repeating unit R2, and the repeating unit R1 is less hydrophobic than the repeating unit R2; A pigment dispersion wherein the aqueous carrier contains water and, optionally, a total amount of water-soluble organic solvents that is less than 20% by weight, preferably less than 2% by weight, of the total weight of the aqueous carrier. [Item 24] The repeating unit R1 has a Hansen solubility parameter value δ (polarity + hydrogen) R1 (=√[δ(polarity) 2 +δ(hydrogen)2 ]) and δ (polar + hydrogen) R1 is 7.2 cal 1 / 2 cm -3 / 2 24. The pigment dispersion according to item 23, wherein the pigment dispersion has a viscosity of more than 1000 MPa. [Item 25] Item 25. The pigment dispersion according to item 23 or 24, wherein the amount of pigment P in the pigment dispersion is in the range of 10 to 80% by weight based on the weight of the pigment dispersion. [Item 26] 23. An inkjet printing method for forming an image on a substrate by applying a plurality of inkjet inks to the substrate, wherein the plurality of inkjet inks comprises the ink according to any one of items 1 to 22. [Item 27] 27. The inkjet printing method of claim 26, comprising the step of jetting droplets of each inkjet ink onto the substrate to form a color image on the substrate. [Item 28] 23. An inkjet ink set comprising a plurality of inks, at least one of which is the ink according to any one of items 1 to 22. [Item 29] 29. An inkjet printer responsive to digital data signals, comprising the inkjet ink according to any one of items 1 to 22 or the inkjet ink set according to item 28.

Claims

1. An ink-jet ink for forming an image on a substrate, comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; wherein the first block copolymer dispersant D1 and the second block copolymer dispersant D2 are water-soluble block copolymer dispersants, the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each block copolymer dispersant D1, D2 comprises an immobilization segment A1, A2 for immobilizing the pigment P; the anchoring segment A1 is formed using at least one monomer Mn 1 , the anchoring segment A2 is formed using at least one monomer Mn 2 , the monomers Mn 1 and Mn 2 being selected from the group consisting of methacrylate, acrylate, and vinyl monomers; each of the block copolymer dispersants D1, D2 further comprises a matrix stabilizing segment M for aqueous phase stabilization of the pigment P, the anchoring segment A1 of the first block copolymer dispersant D1 comprises repeating unit R1, the anchoring segment A2 of the second block copolymer dispersant D2 comprises repeating unit R2, the repeating unit R1 being less hydrophobic than the repeating unit R2; The repeating unit R1 has a Hansen solubility parameter value δ(polar + hydrogen) R1 , where δ(polar + hydrogen) R1 is greater than 7.2 cal 1 / 2 cm -3 / 2 , and the Hansen solubility parameter value δ(polar + hydrogen) is defined as √[δ(polar) 2 + δ(hydrogen) 2 ]; An ink-jet ink, wherein each of the block copolymer dispersants D1, D2 has an Mw / Mn of less than 1.6 and is composed of linear polymer chains.

2. The inkjet ink described in claim 1, wherein the first block copolymer dispersant D1 and the second block copolymer dispersant D2 each have a Mw of 2000 to 20000 g / mol.

3. 3. The ink-jet ink according to claim 1, wherein the repeating unit R1 is a non-ionic repeating unit.

4. The repeating unit R2 has a Hansen solubility parameter value δ (polarity + hydrogen) R2 and δ (polar + hydrogen) R2 is 7.2 cal 1/2 cm -3/2 The Hansen solubility parameter value δ(polarity + hydrogen) is less than √[δ(polarity) 2 + δ (hydrogen) 2 The ink-jet ink according to any one of claims 1 to 3, wherein

5. The polar bond value of R1: δ (polarity) R1 is 4.4 cal 1/2 cm -3/2 The ink-jet ink according to any one of claims 1 to 4, wherein the ink-jet ink has a molecular weight of more than 10 ...

6. The polar bond value δ (polarity) of R2 R2 is 4.4 cal 1/2 cm -3/2 The ink-jet ink of claim 4 or 5, wherein the

7. The anchoring segment A1 of the first block copolymer dispersant D1 has another repeating unit R1' different from R1, and the other repeating unit R1' has a repeating unit of 7.2 cal 1/2 cm -3/2 Hansen solubility parameter value δ (polar + hydrogen) exceeding R1 and The anchoring segment A2 of the second block copolymer dispersant D2 has another repeat unit R2' different from R2, and the other repeat unit R2' has a repeat unit of 7.2 cal 1/2 cm -3/2 Hansen solubility parameter value δ (polar + hydrogen) less than R2 The ink-jet ink of any one of claims 1 to 6, comprising:

8. An inkjet ink according to any one of claims 1 to 7, wherein the first block copolymer dispersant D1 and the second block copolymer dispersant D2 are water-soluble block copolymer dispersants that remain soluble in water at 25°C for at least one week at a concentration of at least 15% by weight of dry polymer in water.

9. The monomer Mn of the immobilization segment A2 2 The ink-jet ink of any one of claims 1 to 8, wherein comprises an alkyl, alkenyl, or aryl group.

10. The monomer Mn of the immobilization segment A2 2 10. The ink-jet ink of claim 1, wherein is at least one of benzyl methacrylate, butyl methacrylate, methyl methacrylate, ethyl methacrylate, propyl methacrylate, hexyl methacrylate, 2-ethylhexyl methacrylate, octyl methacrylate, lauryl methacrylate, stearyl methacrylate, p-tolyl methacrylate, sorbyl methacrylate, cyclohexyl methacrylate, benzyl acrylate, butyl acrylate, methyl acrylate, ethyl acrylate, propyl acrylate, hexyl acrylate, 2-ethylhexyl acrylate, octyl acrylate, lauryl acrylate, stearyl acrylate, p-tolyl acrylate, sorbyl acrylate, cyclohexyl acrylate, and any mixtures thereof.

11. The monomer Mn of the immobilization segment A1 1 However, tri(ethylene glycol) methyl ether acrylate, hydroxyethyl acrylate, hydroxypropyl acrylate, dimethylaminoethyl acrylate (DMAA), N,N-dimethylacrylamide, acryloylmorpholine (ACMO), N-vinylpyrrolidone (NVP), vinylmethyloxazolidinone (VMOX), 2-(2-ethoxyethoxy)ethyl acrylate (EOEOEA), phenoxyethyl methacrylate, methacrylonitrile, ethylene glycol methyl ether methacrylate, 2-ethoxyethyl methacrylate, di(ethylene glycol) methyl 11. The ink-jet ink of claim 1, wherein the hydroxyl group is at least one of ether methacrylate, tri(ethylene glycol) methyl ether methacrylate, hydroxyethyl methacrylate, hydroxypropyl methacrylate, di(propylene glycol) methyl ether methacrylate, phenoxyethyl acrylate, ethylene glycol methyl ether acrylate, 2-ethoxyethyl acrylate, di(ethylene glycol) methyl ether acrylate, 2-[[(butylamino)carbonyl]oxy]ethyl acrylate, and any mixtures thereof.

12. The monomer Mn of the immobilization segment A1 1 The ink-jet ink of claim 11 , wherein is an acrylate or methacrylate and comprises a monoethylene glycol group or a polyethylene glycol group.

13. The matrix stabilizing segment M is selected from at least one monomer Mn to provide an ionic hydrophilic repeating unit for stabilizing the aqueous phase of the pigment. 3 13. The ink-jet ink of claim 1, formed using a compound represented by the formula (I) wherein the ionic hydrophilic repeat units optionally contain other ionic functional groups such as neutralized acid groups, neutralized base groups, or quaternary ammonium groups.

14. The matrix stabilizing segment M is at least one monomer Mn selected from the group consisting of methacrylic acid, acrylic acid, maleic acid, maleic acid monoester, itaconic acid, itaconic acid monoester, crotonic acid, crotonic acid monoester, N,N-dimethylaminoethyl methacrylate, N,N-diethylaminoethyl methacrylate, N,N-dimethylaminoethyl acrylate, N,N-diethylaminoethyl acrylate, t-butylaminoethyl methacrylate, t-butylaminoethyl acrylate, and mixtures thereof. 3 The ink-jet ink of any one of claims 1 to 13, formed using

15. An ink-jet ink according to any preceding claim, wherein the matrix stabilising segment M comprises at least one repeat unit R3 which comprises an ionic moiety.

16. The ink-jet ink according to any one of claims 1 to 15, wherein the repeating units R1 and R2 of the fixing segments A1 and A2 do not have an ionic group.

17. the immobilization segment A1 has a number n1 of repeating units, and the repeating unit R1 accounts for at least 80% of the total number n1 of repeating units; The ink-jet ink according to any one of claims 1 to 16, wherein the anchoring segment A2 has a number n2 of repeating units, and the repeating units R2 account for at least 80% by number of the total number n2 of repeating units.

18. The ink-jet ink of any one of claims 1 to 17, wherein the weight ratio of the block copolymer dispersant D1 to the block copolymer dispersant D2 is 0.1 to 10.

19. The ink-jet ink according to any one of claims 1 to 18, wherein the weight ratio of the pigment P to the sum of the block copolymer dispersant D1 and the block copolymer dispersant D2 is 0.2 to 10.

0.

20. The ink-jet ink of any one of claims 1 to 19, wherein the weight ratio of the pigment P to the block copolymer dispersant D1 is from 0.05 to 10.

0.

21. An ink-jet ink according to any one of the preceding claims, wherein the weight ratio of the pigment P to the block copolymer dispersant D2 is from 0.05 to 10.

0.

22. The inkjet ink of any one of claims 1 to 21, wherein the block copolymer dispersant D1 and the block copolymer dispersant D2 are diblock copolymers.

23. A pigment dispersion for forming an inkjet ink, comprising: a pigment P; a first block copolymer dispersant D1 for dispersing the pigment P; and a second block copolymer dispersant D2 for dispersing the pigment P; and an aqueous carrier; wherein the first block copolymer dispersant D1 and the second block copolymer dispersant D2 are water-soluble block copolymer dispersants, the first block copolymer dispersant D1 is different from the second block copolymer dispersant D2, and each block copolymer dispersant D1, D2 comprises an immobilization segment A1, A2 for immobilizing the pigment P; the anchoring segment A1 is formed using at least one monomer Mn 1 , the anchoring segment A2 is formed using at least one monomer Mn 2 , the monomers Mn 1 and Mn 2 being selected from the group consisting of methacrylate, acrylate, and vinyl monomers; each of the block copolymer dispersants D1, D2 further comprises a matrix stabilizing segment M for aqueous phase stabilization of the pigment P, the anchoring segment A1 of the first block copolymer dispersant D1 comprises repeating unit R1, the anchoring segment A2 of the second block copolymer dispersant D2 comprises repeating unit R2, the repeating unit R1 being less hydrophobic than the repeating unit R2; The repeating unit R1 has a Hansen solubility parameter value δ(polar + hydrogen) R1 , where δ(polar + hydrogen) R1 is greater than 7.2 cal 1 / 2 cm -3 / 2 , and the Hansen solubility parameter value δ(polar + hydrogen) is defined as √[δ(polar) 2 + δ(hydrogen) 2 ]; each of the block copolymer dispersants D1 and D2 has an Mw / Mn of less than 1.6 and is composed of linear polymer chains; A pigment dispersion wherein the aqueous carrier contains water and, optionally, a total amount of water-soluble organic solvents that is less than 20% by weight of the total weight of the aqueous carrier.

24. The pigment dispersion of claim 23, wherein the amount of water in the aqueous carrier is at least 95% by weight of the total weight of the aqueous carrier.

25. 25. The pigment dispersion according to claim 23, wherein the amount of pigment P in the pigment dispersion is in the range of 10 to 80% by weight based on the weight of the pigment dispersion.

26. 23. An inkjet printing method for forming an image on a substrate by applying a plurality of inkjet inks to the substrate, wherein the plurality of inkjet inks comprises the ink of any one of claims 1 to 22.

27. 27. A method of inkjet printing according to claim 26, comprising ejecting droplets of each inkjet ink onto the substrate to form a color image on the substrate.

28. An inkjet ink set comprising a plurality of inks, at least one of which is the ink according to any one of claims 1 to 22.

29. An inkjet printer responsive to digital data signals, comprising an inkjet ink according to any one of claims 1 to 22 or an inkjet ink set according to claim 28.

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