Method for accelerating the cure of a silicone composition

A silicone composition with acrylate monomers and O-vinyl compounds accelerates cure at lower temperatures, addressing the inefficiency and cost of platinum catalysts in adhesive applications by ensuring complete and rapid curing without delamination.

JP7790974B2Active Publication Date: 2025-12-23MORGAN ADHESIVES COMPANY
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2021577879
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-07-02
Filing Date
2020-07-02
Publication Date
2025-12-23
Estimated Expiration
2040-07-02

AI Technical Summary

Technical Problem

The high cost and inefficiency of using platinum catalysts in silicone compositions for adhesive applications, leading to incomplete or slow curing and potential delamination issues, necessitate a method to accelerate cure without increasing catalyst amounts.

Method used

A silicone composition incorporating acrylate monomers and O-vinyl compounds, which synergistically lower the peak cure temperature and reduce platinum catalyst usage, allowing for rapid curing at lower temperatures.

Benefits of technology

The composition achieves rapid curing at reduced platinum catalyst levels, maintaining cure completeness and preventing delamination, while reducing operational costs and energy consumption.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007790974000028
    Figure 0007790974000028
  • Figure 0007790974000029
    Figure 0007790974000029
  • Figure 0007790974000030
    Figure 0007790974000030
Patent Text Reader

Abstract

A mixture is disclosed that includes between about 0.05% and about 5% by weight of at least one acrylate monomer, based on the total weight of the mixture. The acrylate monomer lowers the peak cure temperature, thereby accelerating the cure rate, without sacrificing the completeness of the cure or the release performance of the cured product. The addition of the acrylate monomer also allows for a reduction in the amount of expensive platinum catalyst required to effectively cure the mixture. In addition to the acrylate monomer, the mixture also includes a silicone-based polymer, a crosslinking agent, and a platinum catalyst. The cured composition formed from the mixture exhibits properties that are useful for incorporation into release liners, adhesive articles, medical products, and gaskets.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a method for accelerating a composition comprising a silicone-based polymer and an acrylate cure accelerator, which may be present in an amount of about 5 wt.% or less, based on the total weight of the composition. The acrylate cure accelerator (e.g., an acrylate monomer) beneficially lowers the peak cure temperature of the composition, thereby accelerating the rate and time of cure and further reducing the amount of catalyst required to initiate effective cure, e.g., 90% or more. The present disclosure also relates to the addition of one or more O-vinyl compounds to a silicone-containing composition useful for adhesive liners and release products, where the acrylate cure accelerator and the O-vinyl compound act synergistically to accelerate and improve completion of cure and reduce the peak cure temperature and the amount of catalyst required to initiate effective cure. The composition can be used as a material with desirable release properties, such as a release liner coating, a silicone elastomer for medical devices, a silicone elastomer for gaskets, and a silicone elastomer for other molded articles. [Background technology]

[0002] Silicone resins are desirable for use in the adhesives industry because they provide elasticity and low surface energy. In particular, silicone-based compositions, such as coatings, can hold substrates (e.g., labels) in place for storage and transportation, and they also allow the substrate to be easily and quickly peeled from a release liner. Traditional components of compositions used as coatings include silicones, crosslinking agents, and catalysts, including, for example, platinum catalysts. However, the high cost associated with the use of platinum catalysts has prompted the adhesives industry to search for affordable alternatives. Little success has been achieved in reducing the amount of platinum catalyst required to successfully cure silicone-containing compositions, at least because reducing the amount of platinum catalyst can lead to insufficient curing and / or slower curing speeds. Summary of the Invention [Problem to be solved by the invention]

[0003] In view of the above, there is a need for a method for accelerating the cure of silicone compositions, as well as a release coating composition that cures quickly without the large amounts of expensive platinum catalyst currently required to initiate and drive the cure of silicone compositions to completion. This specification describes a method for accelerating the cure, and a composition that can withstand the rigors of high-temperature / high-speed processing while rapidly completing the cure with a reduced amount of catalyst (e.g., platinum). This specification describes a silicone-containing composition that contains a conventional amount of catalyst but cures more quickly at a significantly lower temperature than currently known in the art. This specification also describes a composition that can be provided as a coating on a liner. The composition can cure quickly to form a liner coating that holds a substrate (e.g., a label) in place for storage and transportation, while also allowing the substrate to be easily and quickly peeled from the release liner. Furthermore, this specification also describes a composition that can be provided on a liner and can be incorporated into an adhesive article such as a label sheet. These methods and compositions solve the problem of reducing the costs associated with using expensive catalysts and operating high temperature ovens while also accelerating the cure of the composition without sacrificing the completeness of the cure, which can lead to poor bond quality or potential delamination between the composition and the adhesive on the substrate of the adhesive article.

[0004] In a first aspect, a method of accelerating cure in a silicone-containing composition is disclosed, comprising the steps of: a) mixing a cure accelerator comprising an acrylate monomer, a silicone-based polymer, and a catalyst to form a mixture; and b) heating the mixture to form a cured composition, wherein the acrylate monomer is present in the mixture in an amount between about 0.05 wt. % and about 5 wt. %, based on the total weight of the mixture.

[0005] In one example of embodiment 1, the silicone-based polymer is a vinyl-functional silicone-based polymer.

[0006] In another example of embodiment 1, the silicone-based polymer is present between about 50% and about 95% by weight of the total weight of the mixture.

[0007] In another example of embodiment 1, the mixture is uncured before heating the mixture.

[0008] In another example of embodiment 1, the mixture further comprises an O-vinyl ether compound, such as 1,4-cyclohexanedimethanol divinyl ether, butanediol divinyl ether (BDVE), and dodecyl vinyl ether (DDVE).

[0009] In another example of embodiment 1, the O-vinyl ether compound is present at between about 0.01% and about 10% by weight of the total weight of the mixture.

[0010] In another example of embodiment 1, the acrylate monomer is selected from the group of monofunctional, difunctional, trifunctional, or multifunctional acrylate monomers.

[0011] In another example of embodiment 1, the acrylate monomer is the sole cure accelerator present in the mixture.

[0012] In another example of embodiment 1, the acrylate monomer is selected from the group of hexanediol diacrylate, tricyclodecanediol diacrylate, isobornyl acrylate, octyl / decyl acrylate, silicone diacrylate, silicone hexaacrylate, Tego RC722, 3-acryloxypropyltrimethoxysilane, and trimethylolpropane triacrylate.

[0013] In another example of embodiment 1, the acrylate monomer is present in an amount between about 0.05% and about 2% by weight of the total weight of the mixture, or between about 0.05% and about 1% by weight of the total weight of the mixture. In another example of embodiment 1, the acrylate monomer is present in an amount between about 0.1% and about 2% by weight of the total weight of the mixture, or between about 0.1% and about 1% by weight of the total weight of the mixture.

[0014] In another example of embodiment 1, the acrylate monomer is a hydrophilic acrylate monomer, for example, an acrylate monomer having a hydrophilic side chain or side group containing less than 12 carbons (C12).

[0015] In another example of embodiment 1, the mixture further comprises a crosslinking agent having silicon hydride functionality.

[0016] In another example of embodiment 1, the mixture further comprises a controlled release agent (CRA).

[0017] In another example of embodiment 1, the controlled release agent is present in an amount less than about 50% by weight, such as between about 4% and about 12% by weight of the total weight of the mixture.

[0018] In another example of embodiment 1, the mixture includes a catalyst, for example, a catalyst comprising platinum.

[0019] In another example of embodiment 1, the catalyst is present in a range between about 10 ppm and about 60 ppm, or up to 35 ppm, based on the total weight of the mixture.

[0020] In a second embodiment, exposing the mixture of embodiment 1 to a temperature in the range of about 70°C to about 140°C for a period in the range of about 1 second to about 10 seconds results in a composition that is 90% or greater, e.g., 95% or greater, cured. In another example, exposing the mixture of embodiment 1 to a temperature in the range of about 70°C to about 140°C for a period in the range of about 5 seconds to about 40 seconds results in a composition that is 90% or greater, e.g., 95% or greater, cured.

[0021] In an example of embodiment 2, the time period for curing the mixture ranges from about 1 second to about 5 seconds, or less than 5 seconds. In another example, the time period for curing the mixture ranges from about 10 seconds to about 40 seconds, or less than 40 seconds.

[0022] In another example of embodiment 2, the temperature at which the mixture is cured ranges from about 100°C to about 130°C.

[0023] In another example of embodiment 2, the elastic modulus (G') of the mixture after curing is 1 x 10 measured at a temperature of about 120°C. 6 More than Pascal.

[0024] In another example of Embodiment 2, the loss factor (tan δ) of the mixture after curing is less than 0.01 measured at a temperature of about 120°C.

[0025] In a third embodiment, there is a release liner comprising the cured composition of embodiment 1 and a liner having a first surface and a second surface, wherein the cured composition is disposed as a coating on a portion of the first surface of the liner.

[0026] In an example of embodiment 3, the liner is selected from the group of plastic or polymeric films, paper, and coated paper.

[0027] In a fourth aspect, there is an adhesive article that includes a substrate, an adhesive disposed on a surface of the substrate, and a release liner having a first surface and a second surface, wherein a portion of the first surface has the cured composition of aspect 1 disposed thereon and in contact with the adhesive.

[0028] In an example of embodiment 4, the substrate is a film, paper, or a combination thereof.

[0029] In another example of embodiment 4, the adhesive is a pressure sensitive adhesive.

[0030] In another example of embodiment 4, the liner is a plastic or polymeric film, paper, or coated paper.

[0031] Any one of the above aspects (or examples of those aspects) may be provided alone or in combination with any one or more examples of that aspect discussed above. For example, the first aspect may be provided alone or in combination with any one or more examples of the first aspect discussed above, and the second aspect may be provided alone or in combination with any one or more examples of the second aspect discussed above, etc.

[0032] Additional features and advantages will be set forth in the following detailed description, and in part will become readily apparent to those skilled in the art from that description, or may be learned by practice of the embodiments described herein, including the following detailed description, the claims, and the accompanying drawings.

[0033] It is to be understood that both the foregoing general description and the following detailed description are merely exemplary and are intended to provide an overview or framework for understanding the nature and character of the claims. The accompanying drawings are included to provide a better understanding, and are incorporated into and constitute a part of this specification. The drawings illustrate one or more embodiments, and together with the description, serve to explain the principles and operation of the various embodiments. [Brief explanation of the drawings]

[0034] [Figure 1] FIG. 1 shows an exemplary relationship between the concentration of the acrylate monomer EOEOEA in parts per million (pph) and peak cure temperature (° C.) for silicone-based compositions containing 10 ppm, 20 ppm, and 30 parts per million (ppm) of platinum catalyst. [Figure 2] FIG. 1 shows an exemplary relationship between the concentration of the acrylate monomer EOEOEA in parts per million (pph) and the peak width in degrees Celsius (° C.) for silicone-based compositions containing 10 ppm, 20 ppm, and 30 ppm of platinum catalyst. [Figure 3] FIG. 1 shows an exemplary relationship between the concentration of the acrylate monomer ODA in parts per million (pph) and the peak cure temperature in degrees Celsius (° C.) for a silicone-based composition containing 35 parts per million (ppm) of platinum catalyst. [Figure 4] FIG. 1 shows an exemplary relationship between the concentration of the acrylate monomer Tego RC722 in parts per million (pph) and the peak cure temperature in degrees Celsius (° C.) for a silicone-based composition containing 35 ppm platinum catalyst. [Figure 5] FIG. 1 shows exemplary relationships between storage modulus in Pascals (Pa) and cure temperature in degrees Celsius (°C) for a silicone-based composition containing no additive, a silicone-based composition containing an acrylate monomer (TMPTA), and a silicone-based composition containing an acrylate monomer / O-vinyl compound blend (TMPTA / BDVE). DETAILED DESCRIPTION OF THE INVENTION

[0035] The terminology used herein is merely illustrative of embodiments and should not be construed as limiting the invention as a whole. When a range such as 5 to 25 (or 5 to 25) is used herein, this preferably means at least 5 or more than 5, and independently preferably no more than 25 or less than 25. In one example, such a range is independently defined as no less than 5 and no more than 25.

[0036] As used herein, the term "about" means that amounts, sizes, formulations, parameters, and other quantities and characteristics are not, and need not be, exact, but may be approximate and / or larger or smaller, if desired, to reflect tolerances, conversion factors, rounding, measurement error, and other factors. When the term "about" is used in describing a value or an endpoint of a range, the disclosure should be understood to include the specific value or endpoint referred to. Whether or not a numerical value or endpoint of a range herein is described as "about," the numerical value or endpoint of the range is intended to include two embodiments: those modified by "about" and those not modified by "about." It will be further understood that the endpoints of each range are valid both in relation to the other endpoint and independently of the other endpoint.

[0037] As used herein, the terms "substantial," "substantially," and variations thereof are intended to note that a described characteristic is equal to or approximately equal to a value or description. For example, a "substantially planar" surface is intended to indicate a surface that is flat or nearly flat. Furthermore, "substantially" is intended to indicate that two values ​​are equal or approximately equal. In some embodiments, "substantially" can refer to values ​​that are within about 10% of each other, e.g., within about 5% of each other, or within about 2% of each other.

[0038] It is noted that the terms "substantially" and "about" may be used herein to express the inherent degree of uncertainty that may result from any quantitative comparison, value, measurement, or other representation. These terms are also used herein to express the degree to which a quantitative representation may differ from the indicated reference without resulting in a change in the basic functionality of the subject matter at issue.

[0039] Provided is a composition (which may be referred to as a mixture in its uncured state) that contains a silicone and an acrylate cure accelerator (e.g., an acrylate monomer) in an amount of about 0.05% by weight to about 5% by weight or less, based on the total weight of the mixture or composition. Adding one or more acrylate cure accelerators in these amounts to a mixture or composition containing a silicone-based polymer, a catalyst, and a crosslinker desirably lowers the peak cure temperature of the composition, thereby accelerating the rate and duration of cure. Surprisingly, it has also been found that adding the acrylate cure accelerators in these amounts selectively allows for a reduction in the amount of catalyst (e.g., a platinum-based catalyst) required to initiate and effectively complete the cure of the mixture or composition without sacrificing completeness of cure or adversely affecting the release properties of the cured silicone composition. The cured compositions provided herein are particularly useful in release liners, particularly for adhesive articles.

[0040] Composition Materials The curable mixture or composition of the present disclosure comprises one or more silicone-based polymers, making the mixture or composition a silicone composition. The composition further comprises one or more acrylate monomers as curing accelerators, one or more catalysts, and one or more crosslinking agents. Optionally, in some embodiments, the composition may further comprise one or more O-vinyl compounds and a controlled release agent as described herein.

[0041] Generally, one or more silicone-based polymers of the composition have reactive vinyl groups. In one or more embodiments, the silicone-based polymer is a vinyl-functional silicone-based polymer or siloxane, such as a diorganopolysiloxane or a dialkylpolysiloxane. In one example, the silicone-based polymer is a multifunctional polymer having vinyl groups along the polymer chain and / or at the end of the chain. In another example, the silicone-based polymer can be polydimethylsiloxane (PDMS) or a derivative thereof. Vinyl-terminated PDMS is an example of a silicone-based polymer. Exemplary silicone-based polymers used in the present disclosure include, but are not limited to, Wacker's Dehesive 915 and Dowsil SL 161. The total amount of silicone-based polymer (e.g., one or more silicone polymers) can be present in a range of about 50% to about 95% by weight, or about 60% to about 90% by weight, of the total weight of the composition. In another example, the composition contains about 50% by weight or more, about 60% by weight or more, about 65% by weight or more, about 70% by weight or more, or about 75% by weight or more total silicone-based polymer, based on the total weight of the composition, e.g., the uncured composition. In another example, the composition can contain about 95% by weight or less, about 90% by weight or less, about 85% by weight or less, or about 80% by weight or less total silicone-based polymer.

[0042] Acrylate cure accelerators, such as acrylate monomers, in the composition effectively and beneficially function to lower the peak cure temperature of the composition, thereby requiring lower cure temperatures and accelerating the rate and duration of cure. The term "acrylate" used herein to define acrylate cure accelerators refers specifically to acrylates, not methacrylates or combinations of acrylates and methacrylates. In certain embodiments, the acrylate cure accelerator is hydrophilic and includes hydrophilic side chains or groups containing fewer than 12 carbons (C12). The acrylate cure accelerator may be present in an amount between about 0.05 wt. % and about 5 wt. % based on the total weight of the composition. In another example, the acrylate cure accelerator is present in a range of about 0.1 wt. % to about 5 wt. %, about 0.15 wt. % or more, about 0.2 wt. % or more, or about 0.25 wt. % or more based on the total weight of the composition. In another example, the composition may contain about 4.5 wt.% or less, about 4 wt.% or less, about 3.5 wt.% or less, or about 3 wt.% or less of acrylate cure accelerator. In one or more embodiments, the curable composition contains about 5 wt.% or less total acrylate cure accelerator to ensure the formation of a high modulus cured composition. In another example, the composition (e.g., in the uncured state) may contain acrylate cure accelerator in a range of about 0.1 pph to about 10 pph (parts of acrylate cure accelerator per 100 parts of silicone-based polymer present in the composition), about 0.2 pph to about 5 pph, about 0.25 pph to 5 pph, about 0.2 pph to about 2 pph, or about 0.5 pph, about 0.75 pph, about 1 pph, about 1.25 pph, about 1.5 pph, or about 1.75 pph. In another example, the composition may contain about 10 pph or less, about 5 pph or less, about 4 pph or less, about 3 pph or less, or about 2 pph or less of total acrylate cure accelerator. In yet another example, the composition may include up to about 0.1 pph, about 0.2 pph, about 0.25 pph, about 0.5 pph, about 1 pph, about 1.5 pph, about 2 pph, or about 5 pph of total acrylate cure accelerator.

[0043] In one or more embodiments, the one or more acrylate cure accelerators are acrylate monomers that are monofunctional acrylate monomers. In other embodiments, the one or more acrylate monomers are difunctional, trifunctional, or multifunctional. Exemplary acrylate monomers for use in the present invention include, but are not limited to, hexanediol diacrylate (HDDA), tricyclodecanediol diacrylate, isobornyl acrylate, octyl / decyl acrylate, silicone diacrylate, silicone hexaacrylate, Tego RC722, 3-acryloxypropyltrimethoxysilane, trimethylolpropane triacrylate (TMPTA), isodecyl acrylate (IDA), propoxylated (3 mol) TMPTA, ethoxylated (3 mol) TMPTA, 2-ethoxyethoxyethyl acrylate (EOEOEA), propoxylated 2-neopentyl glycol diacrylate (PONPGDA), 2-phenoxyethyl acrylate, ethoxylated (15 mol) TMPTA, polyethylene glycol 200 diacrylate (PEG200DA).

[0044] The compositions disclosed herein also contain a crosslinking agent, such as a silicon hydride agent. A wide variety of crosslinking agents, including known polyorganohydrosiloxane crosslinking agents, can be used in the disclosed compositions. Crosslinking agents with silicon hydride functionality, i.e., Si—H groups, are particularly preferred. Exemplary crosslinking agents for use in the present invention include, but are not limited to, V90, available through Wacker Chemical, and Syl-Off 7488, available through Dow Chemical Corporation. The crosslinking agent can be present in a range of between about 1 wt.% and about 15 wt.%, based on the total weight of the composition. In another example, the crosslinking agent can be present in a range of about 2 wt.% to about 14 wt.%, about 3 wt.% or more, about 4 wt.% or more, or about 5 wt.% or more, based on the total weight of the composition. In another example, the composition can contain about 14 wt.% or less, about 13 wt.% or less, or about 12 wt.% or less of the crosslinking agent.

[0045] The compositions disclosed herein also include a catalyst, such as a metal-based catalyst, for example, platinum or rhodium. Various catalysts can be used in the compositions. Platinum (Pt)-containing catalysts, such as platinum, platinum complexes, or platinum compounds, are preferred for use in the compositions. In one or more embodiments, the platinum catalyst is Karstedt's catalyst, an organoplatinum compound derived from a divinyl-containing disiloxane suitable for hydrosilylation reactions.

[0046] Compositions often use more than 40 ppm of platinum catalyst. Less than 40 ppm of platinum catalyst can result in incomplete curing and bond failure with the adhesive-coated substrate when the composition is used in release applications. However, in preferred embodiments of the compositions disclosed herein, the catalyst is present in an amount between about 5 ppm and about 100 ppm, about 10 ppm and about 80 ppm, or about 15 ppm and about 60 ppm of the total weight of the composition. In some embodiments, the catalyst (e.g., platinum-based catalyst) comprises no more than about 40 ppm, no more than about 35 ppm, no more than about 30 ppm, no more than about 25 ppm, or no more than about 20 ppm of the total weight of the composition. In one or more embodiments, the amount of platinum catalyst can be in the range of about 1 ppm to about 20 ppm of the total weight of the composition. In other embodiments, the amount of platinum catalyst can be in the range of about 5 ppm to about 10 ppm of the total weight of the composition.

[0047] In one or more embodiments of the composition, the composition also optionally includes an O-vinyl compound. A wide variety of O-vinyl compounds can be used in the composition. For example, O-vinyl ether compounds can be used. In one or more embodiments, the O-vinyl ether compound is selected from 1,4-cyclohexanedimethanol divinyl ether, butanediol divinyl ether (BDVE), and dodecyl vinyl ether (DDVE). The O-vinyl compound can be present in a range of about 0.01% or 0.05% by weight to about 5% by weight or less, or about 0.1% to about 3% by weight, based on the total weight of the composition. In one or more embodiments, the O-vinyl compound is present in an amount of about 2.5% by weight or less, about 2% by weight or less, about 1% by weight or less, or about 0.5% by weight or less of the total weight of the composition.

[0048] In another embodiment of the composition, the composition also includes a controlled release agent (CRA). The controlled release agent, when added to the composition, functions to adjust the bond strength of the composition, for example, when used as an adhesive article. In one or more embodiments, the controlled release agent includes a monovalent (M) siloxane group (RSiO 1 / 2 groups, where R is a monovalent hydrocarbon group, typically methyl or vinyl, and tetravalent (Q) siloxane groups (SiO 4 / 2 Examples of suitable silicone resins include silicone resins containing only vinyl groups, also known as MQ resins. The vinyl groups allow the CRA to react with the silicone polymer during curing. In one or more embodiments, the controlled release agent can be CRA 17, available from Wacker, or SL 40, supplied by Dow Chemical. The controlled release agent can be present in an amount less than 50 wt.% of the total weight of the composition. In other embodiments, the controlled release agent can be present in a range of between about 1 wt.% and about 35 wt.% or less, about 2 wt.% and about 25 wt.% or less, or about 4 wt.% and about 12 wt.% or less, based on the total weight of the composition.

[0049] Exemplary compositions according to the present disclosure are shown in Table 1 below: [Table 1]

[0050] Preparation of the Composition The following is an exemplary method for preparing the composition: A silicone-based polymer, a crosslinking agent, a catalyst, and optionally a controlled release agent are added together and mixed together, e.g., for about 5 to about 25 minutes, or until thoroughly mixed, to form a mixture. An acrylate cure accelerator and, optionally, an O-vinyl ether compound are added to the mixture and further mixed (e.g., for about 5 to about 25 minutes) to form a reactive mixture. In one or more embodiments, the step of adding the acrylate cure accelerator and, optionally, an O-vinyl ether compound to the components of the mixture in the method for preparing a curable (e.g., thermosetting) composition is performed just before applying curing conditions, e.g., just before heating the composition.

[0051] In one or more embodiments, the silicone-based polymer and crosslinker are combined together and mixed until a uniform blend is achieved, after which an optional controlled release agent can be added. The blend is further mixed or stirred until uniform. A catalyst is further added, for example, in the form of a solution such as a platinum-containing solution, and mixed to form a mixture. An acrylate cure accelerator, and optionally an O-vinyl ether compound, are added to the mixture and further mixed (e.g., for about 5 minutes to about 25 minutes) to form a reactive mixture. The reactive mixture is subjected to curing conditions, for example, heating the composition. Heating can be achieved by any suitable means, for example, in an oven.

[0052] Curing conditions for the composition can include exposing the composition to heat. In one example, the composition is heated in an oven or series of ovens to initiate curing. The ovens can be preheated to a temperature range of about 130°C to about 150°C to effect curing. However, it has been found that the compositions disclosed herein can be about 90% or greater, or about 95% or greater, cured by heating the compositions to a temperature range of about 70°C to about 140°C, about 75°C to about 130°C, or about 80°C to about 120°C. In one or more embodiments, the coating composition can be about 90% or greater, or about 95% or greater, cured by heating the compositions to a temperature range of about 70°C to about 120°C, about 75°C to about 115°C, or about 80°C to about 110°C. In other embodiments, the composition may be cured at higher temperatures, for example, in the range of about 120°C to about 180°C, about 125°C to about 170°C, or about 130°C to about 160°C, or at about 140°C or 150°C, to about 90% or more, or about 95% or more.

[0053] As demonstrated in the examples below, the use of an acrylate cure accelerator can reduce the peak cure temperature of a composition, for example, by about 70°C to about 140°C, about 75°C to about 135°C, about 80°C to about 130°C, or about 90°C, about 100°C, about 110°C, or about 120°C. Curing conditions, such as exposure temperature, for the composition can be adjusted accordingly. For example, oven temperatures can be set lower than typical cure temperatures with the use of an acrylate cure accelerator. Additionally, the examples demonstrate cure temperatures that achieve 95% or greater cure, for example, from about 70°C to about 140°C, from about 75°C to about 135°C, from about 80°C to about 130°C, or about 90°C, about 100°C, about 110°C, or about 120°C.

[0054] The composition also benefits from the use of an acrylate cure accelerator in that the amount of time to achieve effective (e.g., 90% or greater than 95%) cure is reduced, e.g., residence time in a heated environment such as an oven. In one or more embodiments, the composition can be cured at temperatures ranging from about 70°C to about 130°C, about 75°C to about 125°C, or about 80°C to about 120°C for periods of about 1 second to about 1 minute, about 2 seconds to about 45 seconds, about 3 seconds to about 30 seconds, about 25 seconds or less, about 20 seconds or less, about 15 seconds or less, about 10 seconds or less, about 8 seconds or less, or about 5 seconds or less. In other embodiments, higher cure temperatures, e.g., in the range of about 120°C to about 180°C, about 125°C to about 170°C, or about 130°C to about 160°C, or about 140°C or 150°C, can be used with the same cure times as above. The curing time for curing the composition can range from 10 seconds to 40 seconds or more, for example, when the composition must be cured while simultaneously drying the adhesive material of the adhesive article described herein. In one or more embodiments, the composition can be applied as an uncured coating on the first surface of the liner substrate of the release liner. The release liner with the composition coating can be disposed on a substrate (e.g., a label made of a polymer film, paper, or a combination thereof) at least partially covered with a thin layer of adhesive, which can be pressure-sensitive. The composition coating of the release liner can be in direct contact with the adhesive on the substrate, so that the adhesive layer is disposed between the substrate and the coating composition on the liner material of the release liner. The article can also be heated in an oven under the above conditions, for example, by exposing the article to a temperature ranging from about 70°C to about 130°C, about 75°C to about 125°C, or about 80°C to about 120°C for a period of about 10 seconds to about 40 seconds or 1 minute, thereby curing the composition of the release liner and drying the adhesive on the substrate.

[0055] Release liner The present disclosure also provides the use of the composition for coating a flexible liner, which can be used to form a release liner. The release liner functions as a protective carrier for a substrate (e.g., a label). The compositions disclosed herein are typically applied to the surface of a flexible liner as a very thin release layer or coating (e.g., about 1 μm, micron). The thickness of the release layer of the composition can range from about 0.05 μm to about 3 μm, about 0.1 μm to about 2 μm, about 0.25 μm to about 1 μm, or about 0.5 μm, about 0.75 μm, about 1 μm, about 1.5 μm, or about 2 μm. Applying the release layer of the composition to the surface of the liner provides a resilient, low-energy layer that holds the label in place on the surface of the liner during storage, while also providing for quick and easy removal.

[0056] In some embodiments, the flexible liner coated with the composition can be a polymer film, a paper material, and / or a coated paper material. A variety of materials can be used for the flexible liner, including, but not limited to, conventional smooth-surfaced paper materials, polyester films, and polyolefin films. In certain embodiments, the flexible liner coated with the composition (i.e., the release liner) is thick enough to reinforce the backing sheet. In a preferred embodiment, the release liner has sufficient rigidity and / or thickness to maintain a flat configuration, while also having sufficient flexibility to bend in response to external stimuli.

[0057] To prevent the silicone polymer from migrating into the adhesive and interfering with the adhesion of adhesive articles such as labels, the composition coated on the flexible liner must be crosslinked by a process known as curing. Uncured silicone in the composition is undesirable because it can interfere with printing and other label processing steps.

[0058] Once the flexible liner coating composition is prepared as disclosed above, it is applied to the flexible liner using a series of rollers. The rollers grind the composition and form the reactive mixture into a thin layer of the thickness described above on the flexible liner. The coated release liner is then heated, for example, in an oven or series of ovens, to initiate curing of the reactive mixture. Typically, the oven is heated to a temperature in the range of about 130°C to about 150°C to effect curing. However, it has been found that the release liner coating compositions disclosed herein can be cured to about 90% or more, or about 95% or more, when the oven is heated to a temperature below 130°C, for example, in the range of about 70°C to about 130°C, about 75°C to about 125°C, or about 80°C to about 120°C. In one or more embodiments, the composition coated on the flexible liner may be about 90% or more, or about 95% or more cured when the composition is heated to a temperature in the range of about 70°C to about 120°C, about 75°C to about 115°C, or about 80°C to about 110°C.

[0059] In one example, the coated flexible liner is passed through an oven at approximately 2000 feet per minute, with the time of exposure to the elevated temperature during which curing occurs being between about 1 second and about 5 or 10 seconds. In some embodiments, the time for curing ranges from 1 to 5 seconds, or about 2, 3, or 4 seconds. During curing, the vinyl groups of the silicone react with the silicon hydride groups of the crosslinking agent through a process called hydrosilylation. The resulting product is a highly crosslinked, three-dimensional polymer. No volatile by-products are produced during the curing process. Once the liner exits the oven and returns to room temperature, little or no post-cure occurs. In one or more embodiments, the composition can be cured at temperatures ranging from about 70°C to about 140°C, about 75°C to about 130°C, or about 80°C to about 120°C for periods of about 1 second to about 30 seconds, about 2 seconds to about 25 seconds, about 20 seconds or less, about 15 seconds or less, about 10 seconds or less, or about 5 seconds or less.

[0060] The hydrosilylation that occurs during silicone cure is an exothermic process that produces an exothermic peak that is measured using differential scanning calorimetry (DSC). DSC is an industry-accepted method that analyzes the difference in the amount of heat required to raise the temperature of a sample compared to a reference, measured as a function of temperature. Typically, the temperature is increased at 10°C per minute. Heat flow is typically measured in watts.

[0061] Several measurements of the exotherm peak provide information about the overall cure. The peak temperature, typically measured in degrees Celsius (°C), is the temperature at which the exotherm peak reaches its maximum. The peak area, typically measured in joules per gram (J / g), is a measure of the total heat released and is a measure of the completeness of the cure. A larger peak area generally indicates a more complete cure. The peak width, typically measured in degrees Celsius (°C), is a measure of the rate at which curing occurs. The peak height, typically measured in watts per gram (W / g), indicates the degree (strength) of cure. A narrow, high exotherm peak indicates a rapid, intense cure, whereas a short, broad exotherm peak indicates a slow, gradual cure of the silicone composition. The temperature at which the silicone polymer is 95% cured is also typically measured in degrees Celsius (°C).

[0062] Unlike DSC results, a rheometer can reveal the physical properties of a material as the temperature increases during cure. Typically, the elastic shear modulus (G') is measured. The first derivative of the modulus indicates how rapidly the reaction is increasing. The temperature at which the first derivative reaches a maximum is a measure of the maximum reaction rate, which is roughly equivalent to the peak cure temperature obtained via DSC. The maximum value of the first derivative, typically measured in Pascals per degree Celsius (Pa / °C), indicates the maximum crosslinking rate, and the temperature of the maximum indicates the temperature at which this maximum rate occurs. The second derivative of the elastic curve indicates how the reaction rate is changing. The minimum temperature of the second derivative, typically measured in degrees Celsius (°C), is the temperature at which cure is nearly complete. The G' at the minimum temperature of the second derivative, measured in Pascals (Pa), indicates the point at which the reaction has slowed to near completion.

[0063] adhesive article The present disclosure also provides an adhesive article comprising a substrate, an adhesive applied to the substrate, and a release liner having a cured composition layered thereon. The composition can be applied as a solution to the substrate or liner material forming the release liner, and then the coated solution is cured by applying heat as disclosed above to complete the formation of the release liner. The present disclosure includes examples of methods for applying the composition as a release layer to the base material of the release liner (e.g., a paper liner) using various conventional methods, such as gravure coating, bar coating, spray coating, spin coating, knife coating, roll coating, die coating, etc. In some embodiments, the substrate is a label that can be made of a polymer film, paper, or a combination thereof. The substrate is at least partially covered with a thin layer of adhesive, which may be pressure-sensitive. The adhesive layer is disposed between the substrate and the cured release layer of the composition.

[0064] The adhesive layer can be formed from any suitable adhesive material desired for a particular purpose or intended use. The adhesive layer can include a pressure-sensitive adhesive layer or a heat-activated adhesive layer. The pressure-sensitive adhesive can be any pressure-sensitive adhesive currently known in the art, such as an acrylic adhesive, a vinyl ether adhesive, a polyester adhesive, a polyurethane adhesive, a rubber adhesive, a silicone adhesive, or any combination thereof. In other examples, the adhesive can be either an emulsion type, a solvent-based adhesive, or a non-solvent type, and can be either crosslinked or non-crosslinked. Useful pressure-sensitive adhesive materials can contain adhesive polymers, including, as a primary component, for example, acrylic polymers, block copolymers, natural rubber, recycled rubber, or styrene-butadiene rubber, tacky natural or synthetic rubber, random copolymers of ethylene and vinyl acetate, ethylene-vinyl-acrylic terpolymers, and polyisobutylene, poly(vinyl ether). Typically, pressure-sensitive adhesive materials are characterized by a glass transition temperature ranging from about -70°C to about 10°C.

[0065] In addition to the above, additional components can be incorporated into the pressure-sensitive adhesive material. These additional components include, for example, solid adhesive resins, liquid tackifiers (e.g., plasticizers), antioxidants, fillers, pigments, waxes, etc., or blends thereof. Particularly useful adhesives are described in U.S. Patent Nos. 5,192,612 and 5,346,766.

[0066] The adhesive layer may have a thickness desired for a particular purpose or intended use. In one embodiment, the adhesive layer may have a thickness of from about 10 microns to about 125 microns, or from about 10 microns to about 75 microns, or from about 10 microns to about 50 microns. In one embodiment, the coat weight of the pressure-sensitive adhesive may range from about 10 grams per square meter (gsm) to about 50 gsm, and in one embodiment, from about 20 gsm to about 35 gsm.

[0067] The assembly of the adhesive layer is not limited and can be any suitable assembly or configuration required for a particular purpose or intended use. In one embodiment, for example, the adhesive layer can include a single layer, two layers, or multiple layers. In one embodiment, the adhesive layer(s) can also be substantially continuous. In another embodiment, the adhesive layer(s) can be provided as one or more discontinuous layers.

[0068] It will be apparent to those skilled in the art that various modifications and variations can be made in the disclosed embodiments without departing from the spirit and scope of the disclosure, and therefore, the present disclosure is intended to cover any and all such modifications and variations that come within the scope of the appended claims and their equivalents. [Example]

[0069] To demonstrate the effect of certain additives on the compositions, cure studies were conducted using compositions prepared according to Table 2.

[0070] [Table 2]

[0071] Dehesive 915 (DEH 915), a silicone base polymer, is a short-chain, linear, difunctional, vinyl-terminated silicone polymer provided by Wacker Chemicals. CRA 17, a silicone release modifier resin (e.g., controlled release agent), was added to demonstrate compatibility between the additive being tested and other components in the release coating composition. V90, a silicone crosslinker provided by Wacker Chemical, and 20 ppm HSPC (20 ppm platinum atomic weight), a platinum catalyst diluted in the silicone polymer, were also added to the silicone base composition.

[0072] 1 pph of various additives, including acrylate cure accelerators and O-vinyl compounds, as shown in Table 3 below, were added to the composition mixtures identified in Table 2 to form reactive mixtures for curing. The reactive compositions were cured in the DSC at a ramp of 10°C / min as described above, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure of the release coating compositions were measured via DSC as described above. The results obtained are also included in Table 3.

[0073] [Table 3]

[0074] It can be readily observed from Table 3 that the peak cure temperatures for the acrylate monomer-containing compositions were reduced by approximately 7 to 15 degrees Celsius compared to the additive-free control compositions. Furthermore, the peak cure temperature reduction for the acrylate monomer-containing compositions was greater than for the other compounds tested. Because the peak temperature was significantly reduced for the acrylate monomer-containing compositions, it can be concluded that the acrylate monomer, along with the presence of a small amount of catalyst (20 ppm), directly contributed to the accelerated cure. In contrast, it can also be observed in Table 3 that N-vinyl compounds, vinyl compounds, and methacrylates did not beneficially change the peak cure temperature and, in some cases, even increased the cure temperature.

[0075] Furthermore, broader and shorter exothermic peak heights were observed for the acrylate monomer-containing compositions compared to the additive-free control compositions. The slightly broader and shorter peaks indicated that the acrylates lowered the peak cure temperature but slightly stalled the cure at the reduced temperature. However, as indicated by the higher peak heights while maintaining a narrow peak area, the O-vinyl ethers did not lower the peak cure temperature but did increase the reaction rate.

[0076] To investigate the effect of additives on compositions with higher concentrations of platinum catalyst, the experiment presented in Table 3 was reproduced using a composition according to Table 4. This composition used the same ingredients as in Table 2. However, the amount of vinyl-terminated base polymer was reduced and the amount of platinum was increased to 60 ppm. The amounts of silicone crosslinker and release modifier resin were kept approximately the same.

[0077] [Table 4]

[0078] For this study, smaller amounts of additives were added to the compositions. Specifically, 0.5 pph of various additives, including acrylate monomers and O-vinyl compounds, as shown in Table 5 below, were added to the compositions to form reactive mixtures. The compositions were cured, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure of the compositions were measured via DSC as described above. The results are listed in Table 5.

[0079] [Table 5]

[0080] It can be readily observed from Table 5 that the acrylate monomer-containing compositions exhibited a significant reduction in peak cure temperature (e.g., approximately 8.4 to 22.9 degrees Celsius lower) compared to the additive-free control compositions. Compared to the 20 ppm platinum-catalyzed acrylate-containing compositions studied in Table 3, the 60 ppm platinum-catalyzed acrylate monomer-containing compositions exhibited an even more dramatic increase in peak cure temperature. Similarly, it can be seen that while O-vinyl compounds only reduced the peak cure temperature by 0.9 to 2.7 degrees Celsius, they increased the peak height while maintaining a narrow peak width. Thus, O-vinyl compounds enhance the intensity of cure. Thus, it can be seen that acrylates and O-vinyl ethers affect cure in independent but complementary ways.

[0081] In terms of peak area, the acrylate-containing compositions generally exhibited greater peak area values ​​than the additive-free control composition, although the extent varied depending on the type of acrylate monomer used. Similarly, the O-vinyl compounds tested consistently exhibited greater peak areas and heights than both the acrylate monomer-containing compositions and the additive-free control composition. Therefore, it can be concluded that the inclusion of acrylate monomers and O-vinyl compounds can cause a greater proportion of the composition to cure (e.g., increased cure). Nevertheless, the results in Tables 3 and 5 demonstrate that the acceleration and enhancement of cure caused by acrylate monomers and O-vinyl compounds occurred across a range of platinum catalyst concentrations (20 ppm to 60 ppm) and additive amounts (0.5 pph to 1 pph). Thus, small amounts of cure accelerator and catalyst can be utilized while still achieving effective cure.

[0082] To demonstrate that cure acceleration and cure enhancement are not limited to the components of the silicone-based compositions used in the previous study, the experiments were repeated using compositions containing various silicone polymers, crosslinkers, and controlled release agents as listed in Table 6. Additionally, the compositions contained a small amount of catalyst (35 ppm platinum catalyst) as opposed to the 20 ppm and 60 ppm concentrations tested in the previous study.

[0083] [Table 6]

[0084] SL 161, a vinyl-terminated multifunctional silicone polymer containing vinyl groups along the polymer chain, provided by Dow Chemical, was used in the silicone base polymer. SL 40, a silicone release improver resin (e.g., a controlled release agent), was added to demonstrate compatibility between the tested additive and other components in the release coating composition. 7488, a silicone crosslinker provided by Wacker Chemical, and 35 ppm of SL 3000, a platinum catalyst, were also added to the silicone base composition.

[0085] 0.5 pph of various additives was added to the silicone-based composition as described in Table 7. The compositions were cured, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure of the compositions were measured via DSC as described above. The results are included in Table 7.

[0086] [Table 7]

[0087] It is clear from Table 7 that the acrylate-containing compositions exhibited significantly lower peak cure temperatures compared to the additive-free control compositions. The O-vinyl compounds did not significantly affect the peak cure temperatures. Therefore, it can be concluded that the ability of acrylate monomers to accelerate cure is independent of the specific type of silicone polymer, crosslinker, controlled release agent, and platinum catalyst used in the silicone-based coating composition. Comparing the results in Tables 3, 5, and 7, it can be further concluded that acrylate monomers accelerate cure independently of the amount of platinum catalyst present in the silicone-based composition.

[0088] In contrast to the additive-free control composition, shorter and broader peaks were observed in the acrylate monomer-containing composition. Both the acrylate monomer-containing composition and the O-vinyl compound-containing composition showed increased peak areas when compared to the additive-free control composition, indicating that a greater portion of these silicone-based compositions had been cured (e.g., increased cure). However, the O-vinyl compound, which generally had a larger peak height, proved to be the most effective cure accelerator. Considering these results, it is clear that the cure-enhancing properties of the O-vinyl compound and the acrylate monomer are independent of the specific amounts and types of silicone polymer, crosslinker, controlled release agent, and platinum catalyst used in the silicone-based coating composition.

[0089] To further demonstrate the cure-accelerating and cure-enhancing capabilities of acrylate monomers across silicone compositions containing various levels of platinum catalyst, silicone-based compositions according to Table 8 were prepared. SL 161 was used as the silicone base polymer and 7488 was used as the silicone crosslinker. No controlled release agent was added to these compositions. SL 3000, a platinum catalyst, was added to the compositions in amounts of 10 ppm, 20 ppm, 30 ppm, and 35 ppm, respectively, as shown below.

[0090] [Table 8]

[0091] The acrylate monomer, 2-ethoxyethoxyethyl acrylate (EOEOEA), was used as an additive and was added in amounts of 0.25 pph, 0.5 pph, 1 pph, 2 pph, 5 pph, and 10 pph in addition to 10 ppm, 20 ppm, and 30 ppm of the silicone base composition, respectively. Once EOEOEA was added, the composition was cured, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure were measured via DSC as described above. The results are shown in Table 9 below.

[0092] [Table 9]

[0093] As can be seen from Table 9, EOEOEA-containing compositions at each platinum concentration exhibited a substantial reduction in peak cure temperature, resulting in accelerated cure. Perhaps more importantly, the amount of acrylate monomer required to achieve the most significant cure acceleration can be determined from Table 9. As shown in Figure 1, the most rapid reduction in peak cure temperature occurred when between about 0.25 pph and about 2 pph of EOEOEA was added to base compositions spanning a range of platinum-containing concentrations. Addition of acrylate monomer in amounts greater than about 2 pph also caused a reduction in peak temperature, but the reduction was less significant. Therefore, regardless of the platinum concentration of the composition, as supported by the examples, it can be concluded that the most significant cure acceleration is observed when about 2 pph or less of acrylate monomer is added to the silicone base composition prior to curing.

[0094] Similarly, as shown in Figure 2, when between about 0.25 pph and about 2 pph of EOEOEA was added to various platinum-containing compositions, the peak width increased dramatically. However, when between about 2 pph and about 10 pph of EOEOEA was added to the compositions, the change in peak width remained nearly constant. Thus, Figure 2 also shows that the most significant cure acceleration occurs when about 2 pph or less of acrylate monomer is added to a silicone-based composition, regardless of the platinum concentration of the composition.

[0095] To demonstrate that acrylate monomers at approximately 2 pph or less induce the most significant cure acceleration across a range of acrylate monomer and platinum catalyst concentrations, various amounts of additional acrylate monomer were studied in silicone-based compositions containing higher concentrations of platinum catalyst. Two acrylate monomers, octyl / decyl acrylate (ODA) and Tego RC722 silicone acrylate fixative (Tego RC722), were added to the silicone-based composition at 35 ppm as shown in Table 8 above. The acrylate monomers were added to the silicone-based composition in amounts of 0.1 pph, 0.2 pph, 0.5 pph, 1 pph, 2 pph, 5 pph, and 10 pph, respectively. Once the acrylate monomers were added, the compositions were cured as described above, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure were measured via DSC. The results are shown in Tables 10 and 11 below, respectively.

[0096] [Table 10]

[0097] [Table 11]

[0098] As evidenced by the reduction in peak cure temperature shown in Tables 10 and 11, acrylate-containing compositions exhibited accelerated cure (e.g., reduced peak temperature) when compared to acrylate-free control compositions. The peak cure temperatures in Tables 10 and 11 were plotted against the amount of acrylate to generate Figures 3 and 4, respectively. Both Figures 3 and 4 show, for example, a sharp reduction in peak cure temperature for compositions containing ODA and Tego RC722 in amounts of about 2 pph or less when the acrylate cure accelerator was added in amounts of about 0.2 pph to about 2 pph or about 0.2 wt. % to about 2 wt. Adding more than about 2 pph of acrylate cure accelerator did not reduce the temperature as dramatically, but was still effective. Therefore, it can be concluded that the addition of about 2 pph or less (e.g., about 0.1 pph or about 0.2 pph to about 2 pph) of acrylate monomer as a cure accelerator to a silicone-based composition results in a significant reduction in peak cure temperature, and that this range is generally most effective for all acrylate monomers, regardless of the platinum concentration of the composition, which may be about 60 ppm or less, about 50 ppm or less, about 40 ppm or less, or about 35 ppm or less.

[0099] The above studies focused on the addition of a single type of additive to the silicone base composition. Therefore, studies were conducted by adding two additives to the silicone base composition: one acrylate monomer and one O-vinyl compound. The silicone base compositions shown in Table 8 above at 10 ppm, 20 ppm, and 30 ppm were used in this study. One acrylate monomer (TMPTA) and one O-vinyl compound (BDVE) were added to the silicone base composition in the amounts shown in Table 12. Once the TMPTA and BDVE were added, the compositions were cured, and the peak temperature, peak height, peak width, peak area, and temperature at 95% cure were measured via DSC as described above. The results are shown in Table 12.

[0100] [Table 12]

[0101] Table 12 shows that the combination of an acrylate monomer (TMPTA) and an O-vinyl compound (BDVE) results in a significant reduction in peak cure temperature when compared to the additive-free control composition, the acrylate monomer-containing composition, and the O-vinyl compound-containing composition. Because the composition containing the acrylate monomer / O-vinyl compound blend reduced the peak cure temperature the most, it can be concluded that the acrylate monomer / O-vinyl compound blend is an effective cure accelerator combination.

[0102] Similarly, the compositions containing both acrylate monomers and O-vinyl compounds exhibited the largest peak areas while maintaining peak height and reaction rate, indicating that these compositions were more partially cured (e.g., increased cure) than the additive-free compositions, the acrylate monomer-containing compositions, and the O-vinyl compound-containing compositions. Therefore, it can be concluded that acrylate monomer / O-vinyl compound blends are also effective cure accelerators.

[0103] To evaluate the potential effect of acrylate monomers on the elasticity of cured silicone base compositions, studies were conducted via rheometer using silicone base compositions containing 10 ppm of platinum catalyst as shown in Table 8 above. 0.25 pph of additive was added to the base composition as shown in Table 13 below. Once the additive was incorporated, the composition was cured as described above, and the rheometer was used to obtain the maximum temperature of the first derivative, the maximum reaction rate of the first derivative, the minimum temperature of the second derivative, and G' at the minimum temperature value of the second derivative. The results are shown in Table 13 below.

[0104] [Table 13]

[0105] As evidenced by the G' at the lowest temperature value of the second derivative for the acrylate monomer-containing compositions and the acrylate-free control composition in Table 13, acrylate monomers generally do not appear to have a significant effect on the elasticity of the cured compositions.

[0106] Finally, to evaluate the effect of acrylate and O-vinyl compounds on the elasticity of the cured compositions, curing studies were performed via rheometer on a silicone-based composition containing no additives (control), a silicone-based composition containing only acrylate monomers, and a silicone-based composition containing a blend of acrylate monomers and O-vinyls. A 30 ppm platinum-catalyzed silicone-based composition shown in Table 8 was supplemented with 0.25 pph of the acrylate monomer TMPTA. Similarly, another 30 ppm platinum-catalyzed silicone-based composition shown in Table 8 was supplemented with 0.25 pph of TMPTA and 0.2 pph of the O-vinyl ether BDVE. These two samples were added to one additive-free control sample and cured as described above. Storage modulus values ​​were measured via rheometer as the temperature was continuously increased at 10°C / min. The resulting data are shown in Table 14 below and Figure 5.

[0107] [Table 14]

[0108] As shown in Figure 5, the compositions containing TMPTA alone and TMPTA / BDVE achieved peak cure temperatures approximately 10°C and 13°C lower, respectively, than the additive-free compositions. This indicates that the compositions containing TMPTA alone and TMPTA / BDVE exhibit accelerated cure rates, with the TMPTA / BDVE composition curing slightly more quickly. Furthermore, the compositions containing TMPTA alone and TMPTA / BDVE also achieved higher storage modulus values ​​than the additive-free compositions, with the TMPTA / BDVE composition exhibiting the highest storage modulus value. This confirms that the use of acrylate monomers, O-vinyl compounds, or blends thereof does not adversely affect the elasticity of the cured silicone-based compositions.

[0109] To demonstrate the application of a composition of the present disclosure onto a flexible liner to form a release liner, in addition to forming an adhesive article, compositions were formed from the following ingredients listed in Tables 15-19.

[0110] [Table 15]

[0111] Dehesive 915 (DEH 915), a short-chain, linear, difunctional vinyl-terminated silicone polymer provided by Wacker Chemicals, was used for the silicone base polymer. V90, a silicone crosslinker provided by Wacker Chemical, was added and mixed until uniform. The silicone crosslinker is an organohydrogenpolysiloxane containing an average of at least two silicon-bonded hydrogen atoms (Si-H groups) per molecule, with the number of moles of Si-H groups equal to 1 to 5 times the number of moles of alkenyl groups in the silicone base polymer. CRA 17, a silicone release improver resin (e.g., controlled release agent), was added to the silicone base polymer and mixed until uniform. Wacker HSPC platinum solution was used to adjust the platinum content to 30 ppm by atomic weight. Finally, 0.2 parts by weight of 3-acryloxypropyltrimethoxysilane, an acrylate cure accelerator, was added to the mixture and mixed for 10 minutes.

[0112] The first control composition combined the ingredients listed in Table 16.

[0113] [Table 16]

[0114] Dehesive 915 (DEH 915), a silicone base polymer, is a short-chain, linear, difunctional, vinyl-terminated silicone polymer provided by Wacker Chemicals. V90, a silicone crosslinker provided by Wacker Chemical, was added and mixed until uniform. CRA 17, a silicone release modifier resin (e.g., controlled release agent), was added to the silicone base polymer and mixed until uniform. Wacker HSPC platinum solution was used to adjust the platinum ppm to 60 ppm by atomic platinum. Finally, 0.5 parts by weight of vinyltrimethoxysilane was added as a cure accelerator to the mixture and mixed for 10 minutes.

[0115] A second control composition combined the ingredients listed in Table 17.

[0116] [Table 17]

[0117] Dehesive 915 (DEH 915), a silicone base polymer, is a short-chain, linear, difunctional vinyl-terminated silicone polymer provided by Wacker Chemicals. V90, a silicone crosslinker provided by Wacker Chemical, was added and mixed until uniform. CRA 17, a silicone release modifier resin (e.g., controlled release agent), was added to the silicone base polymer and mixed until uniform. Wacker HSPC platinum solution was used to adjust the platinum ppm to 15 ppm by atomic platinum. Finally, 0.5 parts by weight of vinyltrimethoxysilane was added as a cure accelerator to the mixture and mixed for 10 minutes.

[0118] Another exemplary composition combines the ingredients listed in Table 18, excluding the controlled release agent.

[0119] [Table 18]

[0120] The silicone base polymer used was Dow silicone SL 161. 7488, a silicone crosslinker provided by Dow, was added and mixed until uniform. SL 3000 platinum solution was used to adjust the platinum ppm to 15 ppm by atomic weight of platinum. Finally, 0.25 parts by weight of trimethylolpropane triacrylate (TMPTA) was added as a cure accelerator to the mixture and mixed for 10 minutes.

[0121] Another exemplary composition combines the ingredients listed in Table 19, excluding the controlled release agent.

[0122] [Table 19]

[0123] The silicone base polymer used was Dow silicone SL 161. 7488, a silicone crosslinker provided by Dow, was added and mixed until uniform. SL 3000, a platinum solution, was used to adjust the platinum ppm to 15 ppm by atomic weight of platinum. Finally, 0.25 parts by weight of propoxylated (3 mol) trimethylolpropane triacrylate TMPTA was added as a cure accelerator to the mixture and mixed for 10 minutes.

[0124] Another exemplary composition combines the ingredients listed in Table 20, excluding the controlled release agent.

[0125] [Table 20]

[0126] The silicone base polymer used was Dow silicone SL 161. 7488, a silicone crosslinker provided by Dow, was added and mixed until uniform. SL 3000, a platinum solution, was used to adjust the platinum ppm to 15 ppm by atomic weight of platinum. Finally, 0.25 parts by weight of polyethylene glycol 200 diacrylate (PEG200DA) was added as a cure accelerator to the mixture and mixed for 10 minutes.

[0127] Another exemplary composition combines the ingredients listed in Table 21, excluding the controlled release agent.

[0128] [Table 21]

[0129] The silicone base polymer was Dow silicone SL 161. 7488, a silicone crosslinker provided by Dow, was added and mixed until uniform. SL 3000 platinum solution was used to adjust the platinum ppm to 15 ppm by atomic weight of platinum. 0.25 parts by weight of 3-acryloxypropyltrimethoxysilane and 0.05 parts by weight of dodecyl vinyl ether as acrylate cure accelerators were added to the mixture and mixed for 10 minutes.

[0130] Using the control compositions in Tables 16 and 17, and Compositions 1 to 5 shown in Tables 15 and 18 to 21, flexible liners were coated with a release layer and cured to form release liners.

[0131] Two hundred pounds of the control composition and Compositions 1-4 were prepared and transferred to a container. The composition solutions in the container were coated onto kraft paper as a release layer using a five-roll silicone coater. The coated paper was passed through three 20-foot ovens with a temperature ramp from 265°F to 330°F at a speed of 1850 feet per minute. This resulted in an exit web temperature of 310°F with an oven residence time of approximately 2 seconds to cure the release layer composition into a release liner. The cured coated paper was re-moistened with two steam foils to return the moisture level of the paper to its pre-oven level.

[0132] The release liner formed from each composition coating was used to form an adhesive article. The release liner was coated with a rubber-based hot melt adhesive material using a slot die coater. A heat transfer paper support was then attached to the adhesive-coated surface of the structure to form an adhesive article.

[0133] In another example, 100 pounds of the control composition and Compositions 1 through 5 were prepared and placed in a container. The composition solutions in the container were coated onto kraft paper as a release layer using a three-roll gravure silicone coating head. The coated paper was passed through three 20-foot ovens at two test speeds: 750 ft / min (for the control composition, and Compositions 1, 3, and 4) and 1000 ft / min (for the control composition and Compositions 1 through 5). After passing through the ovens, the coated paper reached a temperature of 290°F with oven residence times of 4.8 and 3.6 seconds for test speeds of 750 and 1000 ft / min, respectively, to cure the release layer compositions into release liners. Release liners formed from each composition coating were used to form adhesive articles. The release layer side of the release liners was coated with an all-temperature acrylic emulsion adhesive and dried in an additional oven. A heat transfer paper support was then laminated to the adhesive-coated surface of the structure to form an adhesive article.

[0134] To test for silicone extractables, samples of each release liner containing the control composition and Compositions 1 through 5 were peeled from the adhesive and substrate, and the residual silicone coating remaining on the paper substrate was measured using an Oxford LabX 3500 instrument. Samples of known release liner coating weights were placed in 30 ml of MIBK or toluene and stirred for 30 minutes. The samples of known release liner coating weights were then dried in a fume hood, and the coating weight of each sample was remeasured. The difference between the original coating weight of the release liner and the peeled sample was compared to determine the amount of composition that had migrated from the release liner coating to the paper substrate of the adhesive article. The MIBK or toluene solutions were also tested for silicone atomic absorption.

[0135] To test for a 32 fpm peel force, a 16" x 2" piece is cut from the complete laminate. The sample is placed on an IMASS Slip / Peel Tester TL-2300 and peeled at 32 fpm. This same procedure is used to measure a 950 fpm peel force, but an IMASS ZPE-1100W machine is used instead of the IMASS Slip / Peel Tester TL-2300.

[0136] Silicone adhesion measurement: A sample is measured for silicone coverage using an Oxford LabX 3500, which places the sample under a force of less than 10 pounds and rubs it over 2 feet along the felt surface at a speed of 24 fpm. The sample is then remeasured for coverage, and the ratio of silicone coverage before and after abrasion is reported as a percentage of silicone adhesion.

[0137] Test data measured on adhesive articles containing release layers formed with control Composition 1 and Compositions 1 to 4 in an oven at a speed of 1850 feet per minute are shown in Tables 22 and 23 below.

[0138] [Table 22]

[0139] [Table 23]

[0140] As shown in Tables 22 and 23, Compositions 1-4, which have half the platinum concentration of control Composition 1 (Composition 1) and one-quarter the platinum concentration (Compositions 2-4), exhibited comparable and sometimes improved adhesion to paper substrates. The acrylate additives in Compositions 1-4 provide improved catalyst material savings, as 50%-75% less catalyst is required to achieve adequate adhesion to paper substrates.

[0141] Compositions 1-4 also exhibited sufficient percentages of silicone extractables, indicating that the compositions cured even with significantly reduced amounts of catalyst compared to Control Composition 1. As shown in Table 23, Compositions 1-4 containing 30 ppm or less of catalyst were measured to have 14% or less silicone extractables. The sufficient cure of Compositions 1-4 was further supported by all compositions having greater silicone fixation than Control Composition 1. As shown in Table 23, Compositions 1-4 containing 30 ppm or less of catalyst were measured to have 60% or greater, or 65% or greater silicone fixation.

[0142] Test data measured on adhesive articles containing release layers formed in an oven at a speed of 750 feet per minute using control composition 2, and compositions 1, 3, and 4 are shown in Tables 24 and 25 below.

[0143] [Table 24]

[0144] [Table 25]

[0145] As shown in Table 24, Compositions 1 and 3-4 exhibited improved adhesion to paper substrates over a range of peel speeds compared to the control Composition 2, which did not contain the acrylate additive. Thus, the acrylate additive contributes to enhanced adhesion performance without the need for an additional catalyst.

[0146] Compositions 1 and 3-4 also exhibited sufficient percentages of silicone extractables compared to Control Composition 2, indicating that the compositions cured even with significantly reduced amounts of catalyst. Control Composition 2 exhibited reduced cure, measuring 20.4% silicone extractables compared to compositions with acrylate additives and the same or similar catalyst loadings. As shown in Table 25, Compositions 1 and 3-4 containing 30 ppm or less of catalyst were measured to have 12.4% or less silicone extractables, and Compositions 3 and 4 had 7% or less silicone extractables. Thus, Compositions 1 and 3-4 exhibited improved cure compared to Control Composition 2, which did not contain an acrylate additive. The sufficient cure of Compositions 1 and 3-4 was further supported by all compositions having greater silicone fixation than Control Composition 2. As shown in Table 25, Compositions 1 and 3-4 containing 30 ppm or less of catalyst were measured to have 70% or greater silicone fixation, or 80% or greater silicone fixation.

[0147] Test data measured on adhesive articles containing release layers formed with control Composition 2 and Compositions 1 to 5 in an oven at a speed of 1000 feet per minute are shown in Tables 26 and 27 below.

[0148] [Table 26]

[0149] [Table 27]

[0150] As shown in Table 26, Compositions 1-5 exhibited either equivalent or improved adhesion to paper substrates over a range of peel speeds compared to the control Composition 2, which did not contain the acrylate additive. Thus, the acrylate additive contributes to providing acceptable adhesion or enhanced adhesion performance without the need for an additional catalyst.

[0151] Compositions 1-5 also exhibited sufficient percentages of silicone extractables compared to Control Composition 2, indicating that the compositions cured even with significantly reduced amounts of catalyst. Control Composition 2 exhibited significantly reduced insufficient cure, with 41.6% silicone extractables measured. As shown in Table 27, Compositions 2-4 containing 15 ppm platinum catalyst were measured to have 14.8% or less silicone extractables, while Compositions 2 and 3 had 13% or less silicone extractables. Thus, Compositions 2-4 exhibited improved cure compared to Control Composition 2, which did not contain an acrylate additive. The sufficient cure of Compositions 1-5 was further supported by all compositions having greater silicone fixation than Control Composition 2. As shown in Table 27, Compositions 2 and 3 containing 15 ppm platinum catalyst were measured to have 70% or more silicone fixation.

Claims

1. a) combining a cure accelerator comprising an acrylate monomer, a silicone-based polymer, and a catalyst to form a mixture; b) heating the mixture to form a cured composition; 1. A method for promoting cure in a silicone-containing composition, comprising: The heating in step b) comprises exposing the mixture to a temperature ranging from 70°C to 140°C for a period ranging from 1 second to 10 seconds to cure the mixture by 90% or more; The elastic modulus (G') of the cured mixture was 1 x 10 measured at a temperature of 120°C. 6 More than Pascal, The loss factor (tan δ) of the cured mixture is less than 0.01 when measured at a temperature of 120°C; The method wherein the concentration of the acrylate monomer in the pre-cure mixture is 0.2% to 2% by weight.

2. The method of claim 1 , wherein the silicone-based polymer is a vinyl-functional silicone-based polymer.

3. 10. The method of claim 1, wherein the silicone-based polymer is present between 50% and 95% by weight of the total weight of the mixture.

4. The method of claim 1 , wherein the mixture further comprises an O-vinyl ether compound.

5. 5. The method of claim 4, wherein the O-vinyl ether compound is selected from the group consisting of 1,4-cyclohexanedimethanol divinyl ether, butanediol divinyl ether, and dodecyl vinyl ether.

6. 5. The method of claim 4, wherein the O-vinyl ether compound is present between 0.01% and 10% by weight of the total weight of the mixture.

7. The method of claim 1 , wherein the acrylate monomer is selected from the group consisting of monofunctional, difunctional, trifunctional, or multifunctional acrylate monomers.

8. 2. The method of claim 1, wherein the acrylate monomer is selected from the group consisting of hexanediol diacrylate, tricyclodecanediol diacrylate, isobornyl acrylate, octyl / decyl acrylate, silicone diacrylate, silicone hexaacrylate, 3-acryloxypropyltrimethoxysilane, and trimethylolpropane triacrylate.

9. The method of claim 1 , wherein the mixture further comprises a cross-linking agent comprising silicon hydride functional groups.

10. The method of claim 1 , wherein the mixture further comprises a controlled release agent, the controlled release agent being present in an amount less than 50% by weight of the total weight of the mixture.

11. 10. The method of claim 1, wherein the catalyst comprises platinum and is present in a range between 10 ppm and 60 ppm of the total weight of the mixture of step b).

12. 10. The method of claim 1, wherein the catalyst is present at 35 ppm or less of the total weight of the mixture.

13. The method of claim 1, wherein the period of time for curing the mixture ranges from 1 second to 5 seconds.

14. The method of claim 1, wherein the temperature at which the mixture is cured ranges from 100°C to 130°C.

15. The method of claim 1 , wherein the acrylate monomer is the sole cure accelerator present in the mixture.

16. The method of claim 1 further comprising applying the mixture as a coating on a liner prior to step b).

17. 17. The method of claim 16, further comprising contacting the cured composition with an adhesive on a substrate to form an adhesive article.

18. The method of claim 1 , wherein the cured composition comprises a portion of a silicone cure product.

Citation Information

Patent Citations

  • Peeling power-controlled solvent-free silicone peeling composition

    JP1984084953A

  • Addition-curable silicone rubber composition

    JP2000265067A

  • Silicone resin composition, and cured product thereof

    JP2011148981A

  • In situ method for forming thermally conductive, thermally radically curable silicone compositions

    JP2016510358A

  • Branched polyorganosiloxanes and related curable compositions, methods, uses, and devices

    JP2017088853A