The instant invention pertains to a concentrated aqueous polymer dispersion with a particle size of less than 1000 nm containing photoinitiators and/or photolatent catalysts, prepared by heterophase radical polymerization of ethylenically unsaturated monomers in the presence of photoinitiators or photolatent catalysts. Another aspect of the invention is a process for the preparation of such aqueous dispersions and their use.
Non-polar photoinitiators (PI) like organic alpha-hydroxyketones, alpha-aminoketones and BAPO are state of the art additives to cure UV reactive coatings and ink formulations under the irradiation of UV light of a defined wave length.
In water based systems many of the well-established non-polar photoinitiators are difficult to incorporate due to insolubility and/or incompatibility with the aqueous formulations. Depending on the type of paint formulation and the type of photoinitiator, it can be impossible to generate a stable uniform mixture. In other cases it can be that the initial homogeneous formulations show instability upon storage with separation of photoinitiator and/or other components, and/or phenomena of floating, sedimentation, serum formation, gelation, etc prior to complete curing. Such phenomena caused by incompatibility of the photoinitiator are detrimental for the coatings performance, due to insufficient and inhomogeneous cure of the film.
U.S. Pat. No. 4,965,294 discloses an aqueous photoinitiator dispersion useful for incorporation into aqueous dispersions of radiation curable binder system, comprising 10-50 wt % of a photoinitiator and 5-50 wt % of a non-ionic surfactant.
The International Publication WO97/004361 describes heterogeneous photoinitiators in micro particle form, which consist of a finely divided substrate material to which identical or different photoinitiators are covalently bonded. Thus, dissolving of the photoinitiators can be avoided.
There is still a need to provide solutions to incorporate photoinitiators in aqueous formulations.
It has now been found that concentrated aqueous polymer dispersions with a particle size of less than 1000 nm can be prepared by heterophase radical polymerization of ethylenically unsaturated monomers in the presence of photoinitiators and/or photolatent catalysts, wherein the weight ratio between the photoinitiator (and/or photolatent catalyst) and the resulting polymer carrier is greater than 20 parts of photoinitiator to 100 parts of the polymer carrier.
The term “photoinitiator” includes photolatent catalysts.
One aspect of the invention is a concentrated aqueous polymer dispersion with an average particle size of less than 1000 nm comprising
wherein the weight ratio of the non-polar photoinitiator and/or photolatent catalyst to the polymer carrier is greater than 20 parts of photoinitiator and/or photolatent catalyst per 100 parts of polymer carrier.
Preferably more than one ethylenically unsaturated monomer is used. When the polymerization is carried out with two or more monomers, at least one may carry two unsaturated functionalities in order to provide a certain degree of crosslinking. For example the amount of the difunctional monomer may vary from 0.5 to 20% by weight based on the total weight of the monomer mixture.
Preferred is a concentrated aqueous polymer dispersion wherein the weight ratio of the non-polar photoinitiator and/or photolatent catalyst to the polymer carrier is equal or greater than 35 parts per 100 parts, more preferred greater 50 parts per 100 parts.
Preferably the average particle size is less than 500 nm, more preferably less than 250 nm.
Droplet (oil/water emulsion) as well as particle (polymer dispersion) size can be measured by using dynamic light scattering (DLS) technique (also known as photon correlation spectroscopy (PSC) or quasi-elastic light scattering (QELS)). For this kind of measurement a NICOMP particle sizer (NICOMP Model 380, Particle Sizing System, Santa Barbara, Calif., USA) with a fixed scattering angle of 90° can be used for example. The measurement leads to the mean diameter DINT (intensity weighted).
The total solids content of the concentrated aqueous polymer dispersion is for example more than 20%, for instance more than 30% and preferably more than 40% by weight based on the total weight of the aqueous dispersion.
The non polar photoinitiator or photolatent catalyst is preferably soluble in the monomer or monomer mixture and insoluble or poorly soluble in water
The non polar photoinitiator or photolatent catalyst is not limited. Preferred are photoinitiators selected from
The term “non-polar” is to be understood by a low solubility in water. Many of the described photoinitiators or photolatent catalysts are virtually insoluble in water or show limited solubility of e.g. <10% by wt, preferably <5% by wt, most preferred <2% by wt %.
Suitable photoinitiators are:
wherein
Examples of alpha-hydroxyketones (AHK) are:
1-Hydroxy-cyclohexyl-phenyl-ketone (IRGACURE®184) and similar compounds as disclosed in the European patent application EP-003002
or blends containing IRGACURE®184 such as:
a blend of IRGACURE®184 with benzophenone or
a blend of IRGACURE®184 with benzophenone and Lucirin TPO
(BASF)
or a blend of IRGACURE®184 with (DAROCUR® 1173)
or a blend of IRGACURE®184 with bis(2,6-dimethoxybenzoyl)-2,4,4-trimethylpentyl-phosphinoxid
1-[4-(2-Hydroxyethoxy)-phenyl]-2-hydroxy-2-methyl-1-propane-1-one; (IRGACURE®2959) and similar compounds as disclosed in the European patent application EP-216884.
4[(2-acryloxyethoxy)-benzoyl]-1-hydroxy-1-methyl ethane (IRGACURE®3331) and similar compounds as disclosed in the European patent application EP 217205.
poly-[4-(2-acryloyloxyethoxy)-phenyl]-2-hydroxy-2-propylketone and similar compounds as disclosed in the European patent application EP0258719.
2-Hydroxy-2-methyl-1-phenyl-propan-1-one (DAROCUR® 1173)
and similar compounds as disclosed in U.S. Pat. No. 4,347,111.
2-Hydroxy-2-methyl-1-(4-dodecyl-phenyl)-propanone (DAROCUR® 953)
2-Hydroxy-2-methyl-1-(4-isopropyl-phenyl)-propanone (DAROCUR® 1116)
or blends containing DAROCUR® 1173 such as
DAROCUR® 1664: blend with 2-isopropylthioxanthone
(DAROCUR® ITX)
DAROCUR® 3724: blend with benzophenone
DAROCUR® 4043: blend with ITX and
DAROCUR® 4265: blend with diphenyl(2,4,6-trimethylbenzoyl)-phosphine oxide (Lucirin TPO)
DAROCUR® 4265: blend with benzophenone and
Esacure TZT
or blends of DAROCUR® 1173 with bis(2,6-dimethoxybenzoyl)-2,4,4-trimethylpentyl-phosphinoxide
or blends of DAROCUR®1173 with bis(2,4,6-trimethylbenzoyl)-phenylphosphine oxide (IRGACURE® 819)
or blends of (DAROCUR® 1173) with IRGACURE® 819 and 2,4,6-trimethylbenzoyl-phenyl phosphinic acid ethyl ester
Another example of an alpha hydroxy ketone is 2-hydroxy-1-{1-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-1,3,3-trimethyl-indan-5-yl}-2-methyl-propan-1-one (ESACURE KIP 150) (Lamberti) and similar compounds as disclosed in U.S. Pat. No. 4,987,159.
or blends with DAROCUR®1173 sold as Esacure KIP 100F.
2-Hydroxy-1-{4-[4-(2-hydroxy-2-methyl-propionyl)-benzyl]-phenyl}-2-methyl-propan-1-one and similar compounds as disclosed in WO03/040076.
2-Hydroxy-1-{4-[4-(2-hydroxy-2-methyl-propionyl)-phenoxy]-phenyl}-2-methyl-propan-1-one, and similar compounds as disclosed in WO04/009651.
Trifunctional alpha-hydroxyketones as disclosed in WO04/099262 which are compounds of the formula
wherein
Examples are:
2-hydroxy-1-(4-{hydroxy-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl}-phenyl)-2-methyl-propan-1-one
bis[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methoxymethane
2-hydroxy-1-(4-{[(2-hydroxy-ethyl)-methyl-amino]-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl}-phenyl)-2-methyl-propane-1-one
2-Hydroxy-1-(4-{{2-[2-(2-hydroxy-ethoxy)-ethoxy]-ethoxy}-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl}-phenyl)-2-methyl-propan-1-one
(6-{bis[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methoxycarbonylamino}-hexyl)-carbamic acid bis[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl ester
(8-{Bis-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methoxycarbonylamino}-octyl)-carbamic acid bis-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl ester
(12-{Bis-[4-(2-hydroxy-2-methyl-propionyl)-pheny]-methoxycarbonylamino}-dodecyl)-carbamic acid bis-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl ester
1-(4-{[2-(2-{bis[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methoxy}-ethoxy)-ethoxy]-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl}-phenyl)-2-hydroxy-2-methyl-propan-1-one, diethylene glycol diether
{1-[3-(1-{Bis-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methoxycarbonylamino}-1-methyl-ethyl}phenyl]-1-methyl-ethyl)-carbamic acid bis-[4-(2-hydroxy-2-methyl-propionyl)-phenyl]-methyl ester
An example of an alpha-alkoxyketone is:
2,2-Dimethoxy-1,2-diphenylethan-1-one (IRGACURE®651) and similar compounds as disclosed in the German patent application DE2232365
Also known as benzildimethylketals DBK
or a blend of DBK with IRGACURE®379
Alpha-aminoketones may be compounds as disclosed in the European patent application EP-0284561 for example compounds of the formula
wherein
Examples of alpha-aminoketones (AAK) are:
2-Methyl-1-[4-(methylthio)phenyl]-2-morpholinopropan-1-one as disclosed in the European patent application EP-0284561
2-Benzyl-2-dimethylamino-1-(4-morpholinophenyl)-butanone-1 and similar compounds as disclosed in the European patent application EP-0284561
2-(4-Methylbenzyl)-2-(dimethylamino)-1-[4-(4-morpholinyl)phenyl]-1-butanone and similar compounds as disclosed in the European patent application EP-0284561
2-Benzyl-1-(3,4-dimethoxy-phenyl)-2-dimethylamino-butan-1-one as disclosed in the European patent application EP-0284561
2-Benzyl-1-[4-(2-hydroxyethylamino)phenyl]-2-dimethylamino-1-butanone and similar compounds as disclosed in WO05/076074
2-ethyl-1-[4-(2-hydroxyethyamino)phenyl]-2-dimethylamino-1-pent-4-en-1-one
Irgacure- and Darocur-products are available from Ciba Specialty Chemicals Inc.
Benzophenones may be of the formula
wherein
Examples are:
Darocure BP
ESACURE TZT® available from Lamberti, an eutectic mixture of 2,4,6-trimethylbenzophenone and 4-methylbenzophnone.
Michlers ketone
Speedcure MBB Lambson
4-phenylbenzophenones and similar compounds as disclosed in WO04/074328, for example
wherein
Examples are:
bis(2,4,6-trimethylbenzoyl)-phenylphosphine oxide IRGACURE®819 and similar compounds as disclosed in EP0184095
bis(2,6-dimethoxybenzoyl)-2,4,4-trimethyl pentylphosphine oxide
2,4,6-trimethylbenzoyl-diphenyl-phosphinoxide; Darocur® TPO
Lucirin LR 8893x BASF
Bisacylphosphine oxides as disclosed in WO06/056541 for example compounds of the formula
wherein
R2 is unsubstituted cyclohexyl, cyclopentyl, phenyl, naphthyl or biphenylyl or cyclohexyl, cydopentyl, phenyl, naphthyl or biphenylyl substituted by halogen, C1-C4-alkyl and/or C1-C4-alkoxy; or R2 is a 5- or 6-membered heterocyclic ring having an S atom or N atom;
R1 is phenyl, linear or branched C1-C8alkyl or C2-C18alkenyl or is linear or branched C1-C8alkyl or C2-C18alkenyl substituted by CN, trifluormethyl, oxiranyl, isoindole-1,3-dione, —O—C1-C18alkyl, —O-benzyl, —CO-phenyl, —CO—C1-C18alkyl, —OCO—C1-C18alkyl; —OCO—C1-C18alkenyl; —COO—C1-C18alkyl; —COO—C1-C18alkylene-phenyl, —COO—C1-C18alkylene-cycloalkyl, —COO—C1-C18alkylene-tetrahydrofuranyl, —COO—C1-C18alkylene-furanyl, —COO-cycloalkyl, —COO—C1-C18alkenyl; —COO—C1-C18alkenylene-phenyl; —COO—(CH2)2-3—Cl, —COO—[(CH2)2-3—O]1-10—C1-C6alkyl; —COO—[(CH2)2-3—O]1-10—C1-C6—OH, —CO—CH2—CO—C1-C18alkyl; —CO—CH2—COO—C1-C18alkyl, —O-tetrahydropyranyl, bicyclo[2.2.1]hept-2-en-5-yl)-methyl, PO(OC1-C6alkyl)2 and
Examples are:
[Methyl-(2,4,6-trimethyl-benzoyl)-phosphanyl]-(2,4,6-trimethyl-phenyl)-methanone
Acetic acid 3-[bis-(2,6-dimethoxy-benzoyl)-phosphinoyl]-propyl ester,
[bis-(2,4,6-trimethyl-benzoyl)-phosphanyl]-acetic acid ethyl ester
The residue R1 may further, for example, be.
Phenylglyoxalates may be compounds of the formula
Examples are oxo-phenyl-acetic acid 2-[2-(2-oxo-2-phenyl-acetoxy)-ethoxy]-ethyl ester and similar compounds as disclosed in WO03091287
Vicure (Stauffer), Nuvopol 3000, Genocure MBF
or oxo-phenyl-acetic acid 1-methyl-2-[2-(2-oxo-2-phenyl-acetoxy)-propoxy]-ethyl ester
Examples are:
Lucirin LR 8771 (BASF)=Quantacure ITX
Kayacure DETX
Quantacure CPTX
O-acyloximes as disclosed in U.S. Pat. No. 6,596,445 which are for example compounds of the formulae I, II,
R1 is phenyl, C1-C12alkyl;
R2 is C2-C4alkanoyl, or benzoyl which is unsubstituted or substituted by one or more C1-C4alkyl or halogen;
R4 and R5 independently of one another are hydrogen or a group OR8, SR9, or NR10R11;
R8 and R9 are C1-C4alkyl, phenyl or a group
R10 and R11 are methyl or ethyl, or R10 and R11 together are C2-C6alkylene which is interrupted by —O—.
Examples are:
1,2-octanedione, 1-[4-(phenylthio)phenyl]-2-(O-benzoyloxime)
Oxime esters as disclosed in WO02/100903 for example compounds of the formula I
Ar1 is
For Example
ethanone, 1-[9-ethyl-6-(2-methylbenzoyl)-9H-carbazol-3-yl]-1-(O-acetyloxime)
Oxime esters as disclosed in WO06/018405, for example
1-[9-Ethyl-6-(4-morpholin-4-yl-benzoyl)-9H-carbazol-3-yl]-ethanone oxime 0-acetate
Examples of Aminobenzoates are:
Ethyl-4-dimethylamino benzoate (Darocure EDB)
2-Ethylhexyl-4-dimethylamino benzoate (DarocureEHA)
Especially suitable are alpha-hydroxyketones, bisacylphosphine oxides and phenylglyoxalates.
Other Photoinitiators
Other photoinitiators that can be used for this approach have been described in K. Dietliker, Photoinitiators for Free Radical, Cationic and Anionic Photopolymerization, Vol III in the series Chemistry and Technology of UV and EB Formulation for Coating, Inks and Paints, 2nd ed.; John Wiley and Sons/SITA Technology Limited, New York/London 1998.”
In general, latent acids suitable as curing agents for coatings under thermal conditions and actinic radiation are sulfonic acid ester derivatives. EP 84515 and EP 89922 show α-sulfonyloxycarbonyl and β-sulfonyloxycarbonyl compounds as examples.
EP84515 and EP89922 disclose β-sulfonyloxycarbonyl compounds such as, for example, 2-[(p-tolylsulfonyl)-oxy]-1-phenyl-1-propanone,
2-[(p-tolylsulfonyl)-oxy]-1-p-tolyl-1-propanone, 2-[(p-tolylsuffonyl)-oxy]-1-p-methylthiophenyl-1-propanone, 2-[(p-tolylsulfonyl)-oxy]-1,3-bis-phenyl-1 propanone, 2-[(p-tolylsulfonyl)-oxy]-3-phenyl-1-p-tolyl-1-propanone, 2-[(p-tolylsulfonyl)-oxy]-3-methyl-1-phenyl-1-butanone, 2-[(p-tolylsulfonyl)-oxy]-3-methyl-1-p-tolyl-1-butanone, 2-[(p-tolylsulfonyl)-oxy]-1-phenyl-1-dodecanone, 2[(p-tolylsulfonyl)-oxy]-1-p-tolyl-1-dodecanone, 2[(p-laurylphenylsulfonyl)-oxy]-3-methyl-1-p-methylthiophenyl-1-butanone and 2[(p-tolylsulfonyl)-oxy]tetral-1-one.
Oxime sulfonates with reactive groups for curing under high amount of short-wave light (U.S. Pat. No. 4,736,055) and for long-wave radiation (U.S. Pat. No. 6,017,675) have been reported, as well as alkyl-sulfonyl oximes for i-line resists (WO 98/10335), cyclic oxime sulfonates (WO 99/1429) and other cyclic acid derivatives (WO 00/26219).
Examples are alpha-(octylsulfonyloxyimino)-4-methoxybenzylcyanide as disclosed in WO98/10335
Compounds as disclosed in WO99/01429 of the formula
wherein R is methyl or C2-C8alkyl, camphoryl or 4-methylphenyl or a group of the formula
Further materials include styrene based unsaturated oxime derivatives as described in WO 00/10972 and CF3-oxime sulfonates (GB 2348644, WO 02/25376).
A special class of materials is described as oxime acids with a carbonyl group in o-position of the phenyl ring (WO 02/98870) as for example
and oxime acids with CH2CH2—X or CH═CH2 moieties in the sulfonyl group (WO 03/067332), for example
Haloalkyl oxime sulfonates with haloalkyl groups in the acid part as disclosed in WO 04/074242 such as, for example, ethanone, 1,1′-[1,3-propanediylbis(oxy-4,1-phenylene)]bis-[2,2,2-trifluoro-bis[O-(trifluoromethylsulfonyl)oxime]
2-[2,2,3,3,4,4,5,5,6,6,7,7-dodecafluoro-1-(nonafluorobutylsulfonyloxyimino)-heptyl]-fluorene
or compounds such as
as disclosed in WO 04/074242.
Examples of photolatent amines as photoinitiators are amidines (WO 98/32756), amidines from α-aminoalkenes (WO 98/41524), and their corresponding benzylic derivates (WO 03/33500).
Examples are compounds of the formula
as disclosed in WO98/41524 or compounds of the formula
as disclosed in WO03/33500.
Iodonium salts and ammonium salts of the above latent bases are employed in water based systems, however are less preferred for encapsulation due to their high water solubility.
The Ethylenically Unsaturated Monomer
For example the ethylenically unsaturated monomer is selected from the group consisting of styrene, substituted styrene, conjugated dienes, acrolein, vinyl acetate, vinylpyrrolidone, vinylimidazole, maleic anhydride, (alkyl)acrylic acid anhydrides, (alkyl)acrylic acid salts, (alkyl)acrylic esters, (alkyl)acrylonitriles, (alkyl)acrylamides, vinyl halides or vinylidene halides.
For instance the ethylenically unsaturated monomer is a compound of formula CH2═C(Ra)—(C═Z)—Rb, wherein Z is O or S; Ra is hydrogen or C1-C4alkyl, Rb is NH2, O−(Me+), glycidyl, unsubstituted C1-C18alkoxy, C2-C18alkoxy interrupted by at least one N and/or O atom, or hydroxy-substituted C1-C18alkoxy, unsubstituted di(C1-C18alkyl)amino, hydroxy-substituted C1-C18alkylamino or hydroxy-substituted di(C1-C18alkyl)amino, —O—CH2—CH2—N(CH3)2 or —O—CH2—CH2—N+H(CH3)2An−;
An− is a anion of a monovalent organic or inorganic acid;
Me is a monovalent metal atom or the ammonium ion.
Preferably Ra is hydrogen or methyl, Rb is NH2, gycidyl, unsubstituted or with hydroxy substituted C1-C4alkoxy, unsubstituted C1-C4alkylamino, di(C1-C4alkyl)amino, hydroxy-substituted C1-C4alkylamino or hydroxy-substituted di(C1-C4alkyl)amino; and Z is oxygen.
Examples of acids from which the anion An− is derived are C1-C12carboxylic acids, organic sulfonic acids such as CF3SO3H or CH3SO3H, mineralic acids such as HCl, HBr or HI, oxo acids such as HClO4 or complex acids such as HPF6 or HBF4.
Examples for Rb as C2-C100alkoxy interrupted by at least one O atom are of formula
wherein Rc is C1-C25alkyl, phenyl or phenyl substituted by C1-C18alkyl, Rd is hydrogen or methyl and v is a number from 1 to 50. These monomers are for example derived from non ionic surfactants by acrylation of the corresponding alkoxylated alcohols or phenols. The repeating units may be derived from ethylene oxide, propylene oxide or mixtures of both.
Examples for specific ethylenically unsaturated monomers are styrene, iso-butyl methacrylate, cyclohexylmethacrylate, hydroxyethylmethacrylate, methylmethacrylate, benzylmethacrylate, vinyl toluene, n-butylacrylate, tert-butylacrylate, methylacrylate, ethylacrylate, propylacrylate, hexylacrylate or hydroxyethylacrylate or mixtures thereof.
A particular suitable monomer mixture is a mixture of hydroxyethylmethacrylate, methylmethacrylate, cyclohexylmethacrylate, vinyl toluene, methylmethacrylate, isobutylmethacrylate.
Further examples of suitable acrylate or methacrylate monomers are given below.
wherein An− and Ra have the meaning as defined above and Re is methyl or benzyl. An− is preferably Cl−, Br− or −O3S—CH3.
Further acrylate monomers are:
Examples for suitable monomers other than acrylates are:
Acrylic acid esters and methacrylic acid esters are typically C1-C18alkyl esters.
Preferred is a concentrated aqueous polymer dispersion wherein the ethylenically unsaturated monomer is selected from the group consisting of C1-C18acrylates, C1-C18methacrylates, acrylic acid, (meth)acrylic acid, styrene, vinyltoluene, hydroxy-functional acrylates or (meth)acrylates, acrylates or (meth)acrylates derived from alkoxylated alcohols and multifunctional acrylates or (meth)acrylates or mixtures thereof.
Most preferred: C1-C18-(meth)acrylates like methyl(meth)acrylate, ethyl(meth)acrylate butyl(meth)acrylate, iso-butyl(meth)acrylate, 2-ethyl hexyl(meth)acrylate, stearyl(meth)-acrylate, cyclohexyl(meth)acrylate, benzylmethacrylate, (meth)acrylic acid, styrene, vinyltoluene, hydroxy-functional (meth)acrylates like 2-hydroxyethyl(meth)acrylate, (meth)acrylates derived from alkoxylated alcohols, multifunctional (meth)acrylates like butandiol-di(meth)acrylate or ethyleneglycol-di(meth)acrylate.
In a specific embodiment the concentrated aqueous polymer dispersion is prepared from a mixture of at least two of the above monomers and at least one monomer which is bifunctional, so that a crosslinked polymer is obtained. The amount of bifunctional monomer is for example from 0.5 to 20 weight-%, based on the weight of the sum of monomers.
Typical examples for bifunctional monomers are divinyl-benzene, ethylenglycol diacrylate, butylenglycol diacrylate or diethyleneglycol diacrylate.
The monomers or monomer mixtures have preferably a low water solubility, which is below 5%, more preferred below 0.5% and most preferred below 0.1% by weight.
A further aspect of the invention is a process for the preparation of a concentrated aqueous polymer dispersion with an average particle size of less than 1000 nm comprising the step
polymerizing at least one ethylenically unsaturated monomer in the presence of a non-polar photoinitiator and/or a photolatent catalyst by heterophase radical polymerization; wherein the weight ratio of the non-polar photoinitiator and/or a photolatent catalyst to the polymer carrier formed from the ethylenically unsaturated monomer is greater than 20 parts of photoinitiator and/or a photolatent catalyst per 100 parts of polymer carrier.
In a specific embodiment of the invention the process for the preparation of a concentrated aqueous polymer dispersion comprises the steps
wherein the weight ratio of the non-polar photoinitiator and/or photolatent catalyst to the polymer carrier can vary from 20 parts of non-polar photoinitiator and/or photolatent catalyst per 100 parts of polymer to 50 parts of non-polar photoinitiator and/or photolatent catalyst per 100 parts of polymer.
In step b) preferably a non-ionic, cationic or anionic surfactant is additionally present.
In general anionic and non-ionic surfactants are preferred.
In another specific embodiment of this process, organic solvents may be added to the mixture of photoinitiator and/or photolatent catalyst, monomer and water in order to support the formation of a stable preemulsion or predispersion. Such solvents may preferably dissolve in the monomers and or help to dissolve the photoinitiator. Such solvents may be selected from common organic solvents like aliphatic or aromatic hydrocarbons, ethers, esters, alcohols, glycols, glycolethers, glycolether-esters like methoxypropylacetate, alkoxylates like butyldiglycol or poly or oligoethyleneoxides or poly or oligopropyleneoxides, amide solvent like NMP or DMF. The solvent is preferably selected from solvents which have common use in the coatings industry. The solvent may typically be used on a level of up to 200% wt relative to the photoinitiator, preferably up to 100%, most preferably of up to 50% wt relative to the photoinitiator
Optionally other water miscible solvents may be present usually less than 10% by weight based on the water content. Exemplary cosolvents useful in the present invention may be selected from the group consisting of aliphatic alcohols, glycols, ethers, glycol ethers, glycol esters, pyrrolidines, N-alkyl pyrrolidinones, N-alkyl pyrrolidones, polyethylene glycols, polypropylene glycols, amides, carboxylic acids and salts thereof, esters, organosulfides, sulfoxides, sulfones, alcohol derivatives, hydroxyether derivatives such as butyl carbitol or cellosolve, amino alcohols, ketones, and the like, as well as derivatives thereof and mixtures thereof. Specific examples include methanol, ethanol, propanol, dioxane, ethylene glycol, propylene glycol, diethylene glycol, glycerol, dipropylene glycol, tetrahydrofuran, and other water-soluble or water-miscible materials, and mixtures thereof.
Preferred are water, water-alcohol mixtures, water ethylene glycol or propylene glycol mixtures, water acetone, water tetrahydrofurane, or water dimethylformamide mixtures.
Depending on the targeted application, the solvent may stay in the end product or may be removed form the aqueous polymer dispersion, e.g by distillation.
Suitable surfactants or surface active compounds, which may be added are known in the art. The amounts typically used range from 0.01% by weight to 10% by weight, based on the monomer or monomers.
Typical surfactants useful in the present invention are of nonionic, cationic or anionic type.
Examples for anionic surfactants are alkali and ammonium salts of C12-C18alkylsulfonic acid, dialkyl esters of succinic acid or sulfuric acid halfesters of ethoxylated alkanoles. These compounds are known for example from U.S. Pat. No. 4,269,749 and largely items of commerce, such as under the trade name Dowfax® 2A1 (Dow Chemical Company).
Nonionic surfactants are for example aliphatic or araliphatic compounds such as ethoxylated phenols (mon, di, tri) with an ethoxylation degree of 3 to 50 and alkyl groups in the range from C4-C9, ethoxylated long chain alcohols or polyethyleneoxide/polypropyleneoxide block copolymers.
Disponil FES 32 is a fatty alcohol polyglycolether sulfate Na salt.
Furthermore protective colloids such as polyvinylalcohols, starch, cellulose derivatives or copolymers containing vinylpyrrolidone may be added to form a conventional oil in water emulsion according to step b). Further examples are given in “Houben-Weyl, Methoden der Organischen Chemie, Band XIV/1, Makromolekulare Stoffe, G. Thieme Verlag Stuttgart 1961, 411-420”.
The homogenization step c) is usually carried out by applying mechanical agitation (rotor/stator disperser) followed by using high force dispersion devices like for example a ultrasonic sound equipment (J. Dispersion Sci. Technology 2002, 23(1-3), 333-349) or a high pressure homogenizer (APV Gaulin homogenizer; Microfluidizer) The emulsification/homogenization can be carried out continuously or batchwise. Apparatus for this purpose are known in the art. This is for example described in U.S. Pat. No. 5,108,654.
The polymerization step d) is carried out by adding a free radical polymerization initiator.
Preferably the free radical initiator is present in an amount of from 0.01 weight-% to 20 weight-%, more preferably from 0.1 weight-% to 10 weight-% and most preferably from 0.2 weight-% to 5 weight-%, based on the monomer or monomer mixture.
The polymerization initiator may be added batchwise or continuously to the reaction mixture.
Preferably the free radical initiator of component d) is a bis-azo compound, a peroxide or a hydroperoxide.
Specific preferred radical sources are 2,2′-azobisisobutyronitrile, 2,2′-azobis(2-methyl-butyronitrile), 2,2′-azobis(2,4-dimethylvaleronitrile), 2,2′-azobis(4-methoxy-2,4-dimethylvaleronitrile), 1,1′-azobis(1-cyclohexanecarbonitrile), 2,2′-azobis(isobutyramide)dihydrate, 2-phenylazo-2,4-dimethyl-4-methoxyvaleronitrile, dimethyl-2,2′-azobisisobutyrate, 2-(carbamoylazo)isobutyronitrile, 2,2′-azobis(2,4,4-trimethylpentane), 2,2′-azobis(2-methylpropane), 2,2′-azobis(N,N′-dimethyleneisobutyramidine), free base or hydrochloride, 2,2′-azobis(2-amidinopropane), free base or hydrochloride, 2,2′-azobis{2-methyl-N-[1,1-bis(hydroxy-methyl)ethyl]propionamide} or 2,2′-azobis{2-methyl-N-[1,1-bis(hydroxymethyl)-2-hydroxy-ethyl]propionamide; acetyl cyclohexane sulphonyl peroxide, diisopropyl peroxy dicarbonate, t-amyl perneodecanoate, t-butyl pemeodecanoate, t-butyl perpivalate, t-amylperpivalate, bis(2,4-dichlorobenzoyl)peroxide, diisononanoyl peroxide, didecanoyl peroxide, dioctanoyl peroxide, dilauroyl peroxide, bis(2-methylbenzoyl)peroxide, disuccinic acid peroxide, di-acetyl peroxide, dibenzoyl peroxide, t-butyl per 2-ethylhexanoate, bis-(4-chlorobenzoyl)-peroxide, t-butyl perisobutyrate, t-butyl permaleinate, 1,1-bis(t-butylperoxy)3,5,5-trimethyl-cyclohexane, 1,1-bis(t-butylperoxy)cydohexane, t-butyl peroxy isopropyl carbonate, t-butyl perisononaoate, 2,5-dimethylhexane 2,5-dibenzoate, t-butyl peracetate, t-amyl perbenzoate, t-butyl perbenzoate, 2,2-bis(t-butylperoxy) butane, 2,2 bis(t-butylperoxy) propane, dicumyl peroxide, 2,5-dimethylhexane-2,5-di-t-butyl peroxide, 3-t-butylperoxy 3-phenylphthalide, di-t-amyl peroxide, a, a′-bis(t-butylperoxy isopropyl)benzene, 3,5-bis(t-butylperoxy)3,5-dimethyl 1,2-dioxolane, di-t-butyl peroxide, 2,5-dimethylhexyne-2,5-di-t-butylperoxide, 3,3,6,6,9,9-hexamethyl 1,2,4,5-tetraoxa cydononane, p-menthane hydroperoxide, pinane hydroperoxide, diisopropylbenzene mono-α-hydroperoxide, cumene hydroperoxide or t-butyl hydroperoxide.
It is also possible to use combinations of Fe-compounds or Co-compounds with peroxo salts or salts of bisulfites or hydrosulfites or combinations of inorganic or organic peroxo compounds with reducing agents or amino compounds. These combinations are known as redox systems.
The polymerization temperature depends on the initiator used. Usually the polymerization temperature is in the range of 5° C. to 95° C. and preferably from 30° C. to 90°, more preferable at room temperature.
If pressure is applied the temperature can raise up to 120° C., however, polymerization under normal pressure is the usual process.
In another embodiment it is also possible to add a preformed polymer to the monomer/photoinitiator solution of step a) and/or steps b)
This polymer may preferentially be soluble in the monomer and may support the process steps a), and/or b) i.e. may support the formation of a nanodisperse emulsion of PI and monomer in water.
Surprisingly it has been found that after polymerization has been completed, the volatile components, water mainly, can be removed without agglomeration of the particles. The polymer particles can therefore readily be re-dispersed, if desired.
Vaporization of the volatile components can be carried out using standard methods, such as for example spray drying.
Consequently another aspect of the invention is a process for preparing a polymer powder by preparing a concentrated aqueous polymer dispersion as described above followed by vaporizing the volatile components of the concentrated aqueous polymer dispersion and a a polymer powder obtainable by said process.
The aqueous polymer dispersion containing high concentration of photoinitiators and/or photolatent catalysts as well as corresponding polymer powders containing highly concentrated photoinitiators and/or photolatent catalysts may be used, for example, in aqueous or nonaqueous formulations, coatings, inks, adhesives.
As such, the polymer powder can also be incorporated into solvent based coatings and ink systems, when water is detrimental to the performance of the film (e.g. polyurethanes)
The aqueous polymer dispersion containing high concentration of photoinitiators and/or photolatent catalysts as well as corresponding polymer powders containing highly concentrated photoinitiators and/or photolatent catalysts may also be used in formulations for electronoic materials, e.g. for microlithography in resist manufacture or for color filter resists for flat panel displays.
The colour-binding coatings can contain further additives, for example antioxidants, light stabilizers, viscosity improvers, brighteners, dispersants, defoamers, levelling agents, biocides and/or antistats.
The coating is usually prepared as follows:
The water-soluble components, for example the binder, are dissolved in water and mixed. The solid components, for example fillers and other additives as already described, are dispersed in this aqueous medium. Dispersion is advantageously brought about with the aid of equipment such as ultrasonic devices, turbine agitators, homogenizers, colloid mills, bead mills, sand mills, high-speed stirrers and the like. The polymer dispersions of this invention are stirred in/post added under low or medium shear force into the coatings. A particular advantage of the instant polymer dispersions is their ease of incorporation into the coating and their storage stability.
Water-borne product forms of the following hydrophobic photoinitiators were synthesized:
Irgacure 184
Irgacure 2100 (9% IRGACURE 819+91% TPO-L:
For the preparation of a stable oil/water emulsion 19.2 g of Irgacure 184 was dissolved in 17.7 g of methyl methacrylate (MMA), 1.5 g of stearyl methacrylate (SMA) and 0.035 g of AIBN. The oil phase was added dropwise to a stirred solution of 1.6 g sodium dodecylsulphate in 54 g of deionised water. After stirring for 30 min and ultrasound treatment a kinetic stable emulsion of an average droplet size below 250 nm was obtained.
0.035 g of potassium persulfate in 2.5 g of water was added to the emulsion. The emulsion was heated to 80° C. The reaction mixture was continuously stirred by a mechanical stirrer and was maintained at 80° C. for four hours, then cooled to RT and filtered via a 20 μm filter. The resulting particles have a particle size DINT of 120 nm. The final active content of the dispersion is 19 wt %, the solid content is 40 wt %.
Dynamic light scattering (DLS, 90° scattering angle, Nicomp Model 380, Particle Sizing System, Santa Barbara, Calif., USA) was used to determine the mean intensity diameter (DINT).
For the preparation of a stable oil/water emulsion 20 g Irgacure 184 was dissolved in 4.95 g of methyl methacrylate (MMA), 1.5 g stearyl methacrylate (SMA), 5.3 g of isobutylmethacrylate (iBMA), 2.7 g of vinyltoluene, 2.7 g of cyclohexylmethacrylate (CHMA), 1.9 g of hydroxyethylmethacrlyte, 0.057 g of butandioldiacrylate (BDDA) and 0.27 g of tert-butylperoxybenzoate. The oil phase was added dropwise to a stirred solution of 5.0 g Disponil FES 32 (31 wt % active, Cognis Deutschland GmbH&Co.KG) in 55.56 g deionised water. After stirring for 30 min and min and ultrasound treatment a kinetic stable emulsion of an average droplet size below 250 nm was obtained.
The emulsion was heated up to 85° was continuously stirred by a mechanical stirrer and was maintained at 85-90° C. for six hours, then cooled to RT and filtered via a 20 μm filter. The resulting particles have a particle size DINT of 90 nm. The final active content of the dispersion is 20 wt % and the solid content is 40 wt %.
For the preparation of a stable oil/water emulsion 19.2 g of Irgacure 2100 was dissolved in 17.7 g of methyl methacrylate (MMA) and 1.5 g of stearyl methacrylate (SMA). The oil phase was added dropwise to a stirred solution of 5.2 g Disponil FES 32 (31 wt % active, Cognis Deutschland GmbH&Co.KG) in 54 g deionised water. After stirring for 30 min and ultrasound treatment a kinetic stable emulsion of an average droplet size below 250 nm was obtained.
The emulsion was heated up to 55° C. and the initiator H2O2 (0.83 ml, 35%) was added.
The emulsion was continuously stirred by a mechanical stirrer and heated to 40° C., followed by addition of 0.19 g of Rongalit, dissolved in 2.5 g of water over a period of 1 hour.
The reaction mixture was subsequently stirred at 60° C. for one hour, then cooled to RT and filtered via a 20 μm filter. The resulting particles have a particle size DINT of 98 nm. The final active content of the dispersion is 19 wt %, the solid content is 40 wt %.
For the preparation of a stable oil/water emulsion 76.8 g of Irgacure 2100 was dissolved in 70.7 g of methyl methacrylate (MMA) and 6.1 g of stearyl methacrylate (SMA). Then AIBN (0.15 g) was dissolved in the oil phase. The oil phase was added dropwise to a stirred solution of 20.6 g Disponil FES 32 (31 wt % active, Cognis Deutschland GmbH&Co.KG) in 215.5 g of deionised water. After stirring for 30 min and ultrasound treatment for 3 minutes, a kinetic stable emulsion of an average droplet size below 200 nm was obtained.
The emulsion was heated up to 80° C. and potassium persulfate (0.15 g), dissolved in 10 ml of water, was added at 80° C.
The emulsion was continuously stirred by a mechanical stirrer and maintained at 80-85° C. over a period of 4 hours, then cooled to RT and filtered via a 20 μm filter. The resulting particles have a particle size DINT of 114 nm. The final active content of the dispersion is 19.2 wt %, the solid content is 39.6 wt %.
For the preparation of a stable oil/water emulsion 30.0 g of Irgacure 754 was dissolved in 78.3 g of methyl methacrylate (MMA), 6.96 g of stearyl methacrylate (SMA), 1.74 g of methacrylic acid (MAA) and 0.26 g of butandiol diacrylate. The oil phase was added dropwise to a stirred solution of 15.10 g sodium dodecylsulphate in 145.9 g of deionised water. After stirring for 30 min and ultrasound treatment a kinetic stable emulsion of an average droplet size below 250 nm was obtained.
0.035 g of t-butyl hydroperoxide in 10 g of water was added to the emulsion. The emulsion was heated to 40° C. To this mixture was added 0.87 g of Rongalit in 10 g of water at 40° C. for 1 hour. The reaction mixture was continuously stirred by a mechanical stirrer and was maintained at 60° C. for 1 hour, then cooled to RT and filtered via a 20 μm filter. The resulting particles have a particle size DINT of 71 nm. The final active content of the dispersion is 19 wt %, the solid content is 40 wt %.
For the preparation of a stable oil/water emulsion 60.0 g of IRGACURE® 3331 was dissolved in 51.3 g of methyl methacrylate (MMA), 4.56 g of stearyl methacrylate (SMA), 1.41 g of methacrylic acid (MAA) and 0.17 g of butandiol diacrylate. The oil phase was added dropwise to a stirred solution of 15.10 g sodium dodecylsulphate in 146.49 g of deionised water. After stirring for 30 min and ultrasound treatment a kinetic stable emulsion of an average droplet size below 222 nm was obtained.
0.41 g of t-butyl hydroperoxide in 10 g of water was added to the emulsion. The emulsion was heated to 40° C. To this mixture was added 0.57 g of Rongalit in 10 g of water at 40° C. for 1 hour. The reaction mixture was continuously stirred by a mechanical stirrer and was maintained at 60° C. for 1 hour, then cooled to RT and filtered via a 20 m filter. The resulting particles have a particle size DINT of 95.4 nm. The final active content of the dispersion is 20 wt %, the solid content is 39 wt %.
Application Results
A clear UV curable water-borne coating was formulated by mixing the ingredients upon stirring (see table below).
The prepared formulation was added to a dispersion according to Example 1 (1% active on total formulation) and stirred at low shear rate for 60 minutes at room temperature.
The coating was applied with a 100 μm slit coater to white chip boards, dried 10 minutes at 60° C. and cured with two medium pressure mercury vapor lamps (2×80 W/cm) at 5 m/min for determining pendulum hardness and yellowing (measurement of L*a*b* according to DIN 6174) and performing KMnO4-test. For that 1% aqueous solution of potassium permanganate is put on the coating surface. After one minute the solution is poured off and cleaned with water. After drying, the color difference before and after exposure is determined. Low DE* value indicates that double bond conversion in the coating surface is nearly completed.
A white pigmented UV curable water-borne coating was formulated. The white paste was prepared by dispersing with glass beads. The ingredients and the white paste were mixed upon stirring (see table below).
White Paste:
White Pigmented Coating:
To the prepared formulation a dispersion according to Ex. 4 (1% active on total formulation) was added and stirred at low shear rate for 30 minutes at room temperature.
The coating was applied with a 100 μm slit coater to white chip boards, dried 10 minutes at 60° C. and cured with two medium pressure mercury vapor lamps (2×80 W/cm) at 5 m/min for determining pendulum hardness.
A white pigmented UV curable water-borne coating was formulated. The white paste was prepared by dispersing with glass beads. The ingredients and the white paste were mixed upon stirring (see table below).
White Pigmented Coating:
To the prepared formulation a dispersion according to Ex. 4 (1% active on total formulation) was added and stirred at low shear rate for 30 minutes at room temperature.
The coating was applied with a 100 μm slit coater to white chip boards, dried 10 minutes at 60° C. and cured with two medium pressure mercury vapor lamps (2×80 W/cm) at 5 m/min for determining pendulum hardness.
Number | Date | Country | Kind |
---|---|---|---|
06116586.6 | Jul 2006 | EP | regional |
Number | Date | Country | |
---|---|---|---|
Parent | 12308520 | Dec 2008 | US |
Child | 15006329 | US |