Polylactone foam and method for producing same

The production of polylactone-based foams by polymerizing beta-lactone monomers and blowing them with a gas addresses the need for bio-based and compostable foams, achieving effective waste reduction and environmentally friendly manufacturing.

JP7676023B2Active Publication Date: 2025-05-14NOVOMER INC
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Patent Information

Application Number
JP2021500911
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-07-13
Filing Date
2019-07-11
Publication Date
2025-05-14
Estimated Expiration
2039-07-11

AI Technical Summary

Technical Problem

There is a need to produce foams that minimize solid waste accumulation and are bio-based and/or compostable, using commercially viable and efficient alternatives.

Method used

The production of polylactone-based foams is achieved by polymerizing beta-lactone monomers to produce polylactones, which are then blown with a gas to form the foam. This process can include carbonylation of epoxides with carbon monoxide to produce beta-lactone monomers, and the use of biobased epoxides and carbon monoxide. The foams can be molded and may include nucleating agents and additives to enhance properties.

Benefits of technology

This method allows for the production of foams that are biodegradable, compostable, and have a high biobased content, reducing solid waste and offering environmentally friendly alternatives for various applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a method for producing a polylactone melt, a composition including an extrudate, and a foam. In an exemplary embodiment of the invention, the method comprises heating a polylactone composition containing a bio-based polylactone in a reaction vessel and shaping the polylactone composition to provide a foamed structure.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 62 / 697,712, filed July 13, 2018, which is incorporated by reference in its entirety.

[0002] Field The present invention relates generally to compositions and methods for producing polymeric foams. More specifically, the present invention relates to polylactone-based foam compositions and methods for producing the same. Advantageously, the compositions and methods are useful in the production of various bio-based products. [Background technology]

[0003] background Polymer foams, which consist of polymer chains dispersed by gas, create voids, also known as cells, in the polymer chains. By replacing solid plastic with voids, polymer foams use less raw material than solid plastics for a given volume. Thus, using polymer foams instead of solid plastics can reduce material costs in many applications. Additionally, foams are useful in applications as insulators and / or sealants.

[0004] Polylactones, such as polypropiolactone, polylactide, polyglycolide, and polycaprolactone, are generally biodegradable aliphatic polyesters that may be composed of bio-based monomers. Polylactones are generally stable, have low toxicity, and may be easily transported and stored in remote locations. Recent advances in the carbonylation of epoxides (see, e.g., U.S. Pat. No. 6,852,865) and ring-opening polymerization of β-propiolactone intermediates provide more efficient and versatile synthetic routes to polylactones. These recent advances in manufacturing combined with beneficial physical and chemical properties make polylactones ideal for many commercial and industrial applications.

[0005] Currently, polymer foams are generally made using a continuous process in which blowing agent and molten resin are extruded under pressure through a suitable die into an atmosphere of lower pressure, see US2012 / 0009420. Alternatively, in a batch or stepwise process, ingredients such as polymer and blowing agent are expanded into a foam by heating to a temperature close to or above the glass transition temperature or crystalline melt temperature. The more commonly used blowing agents for producing thermoplastic polymer foams are hydrocarbons, chlorinated hydrocarbons, hydrochlorofluorocarbons, hydrofluorocarbons, or combinations thereof. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Patent No. 6,852,865 [Patent Document 2] US Patent Application Publication No. 2012 / 0009420 Summary of the Invention [Problem to be solved by the invention]

[0007] Therefore, a need exists to not only produce foams that minimize solid waste accumulation, but also to produce bio-based and / or compostable foams using alternative methods that are commercially viable and efficient. [Means for solving the problem]

[0008] overview The present invention addresses these needs by providing polylactone-based foams and methods of manufacture. Preferred embodiments relate to polylactone foams comprising at least one polylactone polymer. In certain preferred embodiments, the polylactone polymer comprises at least one β-lactone monomer. In certain preferred embodiments, the polylactone polymer comprises two or more β-lactone monomers. In certain preferred embodiments, the at least one β-lactone monomer is β-propiolactone. In certain preferred embodiments, the at least one polylactone polymer is polypropiolactone.

[0009] In preferred embodiments, a method for producing a polylactone-based foam is provided. In certain preferred embodiments, the method comprises polymerizing at least one beta-lactone monomer to produce at least one polylactone and sparging the at least one polylactone with a gas to produce the polylactone-based foam. In certain preferred embodiments, the method comprises carbonylating an epoxide with carbon monoxide to produce at least one β-lactone monomer, polymerizing the at least one β-lactone monomer to produce at least one polylactone and sparging the at least one polylactone with a gas to produce the polylactone-based foam. In certain embodiments, the epoxide and / or carbon monoxide are bio-based.

[0010] In some embodiments, the method for producing a foam can include heating a component comprising at least one polylactone. The method for producing a foam can be further carried out by molding the heated polylactone composition to obtain a foamed structure. In some variations, the composition comprising at least one polylactone is in the form of a resin.

[0011] Optionally, in some embodiments, the polylactone can have a biobased content of, for example, greater than about 60% by weight, greater than about 70% by weight, greater than about 80% by weight, greater than about 90% by weight, greater than about 95% by weight, or greater than about 99% by weight.

[0012] Optionally, in some embodiments, the polylactone is polypropiolactone or end-capped polypropiolactone. In some embodiments, the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 40,000 g / mol to about 1,000,000 g / mol, or about 50,000 g / mol to about 500,000 g / mol, or about 60,000 g / mol to about 400,000 g / mol, or about 70,000 g / mol to about 300,000 g / mol, or about 80,000 g / mol to about 150,000 g / mol.

[0013] In some variations, a reaction vessel is charged with at least one polylactone. In certain embodiments, the reaction vessel can include an extruder, such as a twin-screw extrusion device. The extruder can have, for example, an internal temperature of from about 10° C. to about 160° C. and an internal pressure of from about 10 bar to about 15 bar.

[0014] Optionally, in some embodiments, carbon dioxide, such as supercritical carbon dioxide, or nitrogen can be used as a blowing agent in the foam production. In some embodiments, for example, pentane, isopentane, or cyclopentane can be used as a blowing agent in the foam production.

[0015] Optionally, in some embodiments, the composition may further comprise a nucleating agent. Optionally, in some embodiments, the composition may further comprise an additive, such as, for example, an antioxidant, a light stabilizer, a fiber, a foaming additive, a conductive additive, an antiblocking agent, an antistatic agent, a heat stabilizer, an impact modifier, a biocide, a compatibilizer, a tackifier, a colorant, a coupling agent, a branching agent, a curing agent, and a pigment.

[0016] In another embodiment, the foam composition can include a compostable polylactone, hi some variations, the compostable polylactone has the following repeating units:

[0017] [ka] In some embodiments, the compostable polylactone comprises n repeat units, where n is from about 4,000 to about 1,000,000. In other embodiments, the compostable polylactone has one or more end groups. In certain embodiments, the one or more end groups are independently selected from the group consisting of H, alkyl, alkenyl, alkoxy, alkynyl, cycloalkyl, cycloalkenyl, cycloalkynyl, ester, amine, aniline, and amide.

[0018] In another variation, the compostable polylactone has the structure:

[0019] [ka] n is from about 4,000 to about 1,000,000, and L1 and L2 can be independently selected from the group consisting of H, alkyl, alkenyl, alkoxy, alkynyl, cycloalkyl, cycloalkenyl, cycloalkynyl, ester, amine, aniline, and amide.

[0020] Definitions of specific functional groups and chemical terminology are described in more detail below. Chemical elements are identified according to the Periodic Table of the Elements, CAS edition, Handbook of Chemistry and Physics, 75th edition, inside cover, and specific functional groups are generally defined as described herein. In addition, general principles of organic chemistry, as well as specific functional moieties and reactivities, are described in Organic Chemistry, Thomas Sorrell, University Science Books, Sausalito, 1999; Smith and March March's Advanced Organic Chemistry, 5th Edition, John Wiley & Sons, Inc., New York, 2001; Larock, Comprehensive Organic Transformations, VCH Publishers, New York, 1989; Carruthers, Some Modern Methods of Organic Synthesis, 3rd Edition, Cambridge University Press, Cambridge, 1987.

[0021] The term "alkyl" as used herein refers to a saturated straight or branched chain hydrocarbon group derived from an aliphatic moiety containing 1-6 carbon atoms by the removal of a single hydrogen atom. Unless otherwise specified, an alkyl group contains 1-12 carbon atoms. In certain embodiments, an alkyl group contains 1-8 carbon atoms. In certain embodiments, an alkyl group contains 1-6 carbon atoms. In certain embodiments, an alkyl group contains 1-5 carbon atoms. In certain embodiments, an alkyl group contains 1-4 carbon atoms. In still other embodiments, an alkyl group contains 1-3 carbon atoms, and in still other embodiments, an alkyl group contains 1-2 carbon atoms. Examples of alkyl groups include, but are not limited to, methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, sec-pentyl, isopentyl, tert-butyl, n-pentyl, neopentyl, n-hexyl, sec-hexyl, n-heptyl, n-octyl, n-decyl, n-undecyl, dodecyl, and the like.

[0022] As used herein, the term "partially unsaturated" refers to a ring moiety that contains at least one double or triple bond. The term "partially unsaturated" is intended to encompass rings with multiple sites of unsaturation, but is not intended to include aryl or heteroaryl moieties, as defined herein.

[0023] As described herein, compounds can include "optionally substituted" moieties. In general, the term "substituted," whether preceded by the term "optionally" or not, means that one or more hydrogens of the specified moiety are replaced with a suitable substituent. Unless otherwise indicated, an "optionally substituted" group can have a suitable substituent at each substitutable position of the group, and when more than one position in any given structure is substituted with more than one substituent selected from a specified group, the substituents can be the same or different at each position. Combinations of substituents contemplated may include those that result in the formation of stable or chemically viable compounds. As used herein, the term "stable" refers to compounds that are substantially unchanged when placed under conditions that allow for their preparation, detection, and, in some embodiments, their recovery, purification, and use for one or more of the purposes disclosed herein.

[0024] In certain embodiments, the compostable polylactone is in the form of a compostable polylactone melt. In further embodiments, the compostable polylactone melt may have a biobased content, for example, greater than about 60% by weight, greater than about 70% by weight, greater than about 80% by weight, greater than about 90% by weight, greater than about 95% by weight, or greater than about 99% by weight. Optionally, in some embodiments, the compostable polylactone melt may have a temperature of about 10° C. to about 160° C. and a pressure of about 10 bar to about 15 bar.

[0025] While this disclosure is susceptible to various modifications and alternative forms, specific exemplary embodiments thereof have been shown by way of example in the drawings and are herein described in detail. It is to be understood, however, that it is not the intention to limit the disclosure to the particular embodiments disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the scope of the disclosure as defined by the appended claims. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0026] Detailed Description The following description sets forth example methods, parameters, etc., however, it should be recognized that such description is not intended as a limitation on the scope of the present disclosure, but instead is provided as a description of example embodiments.

[0027] In some embodiments, provided is a polylactone-based foam comprising at least one polylactone polymer.

[0028] In some variations, a "polymer" is a molecule of high relative molecular weight whose structure comprises multiple repeats of units derived from a molecule of low relative molecular weight. In some embodiments, a polymer is composed of only one monomeric species. In some embodiments, a polymer is a copolymer, terpolymer, heteropolymer, block copolymer, or tapered heteropolymer of one or more monomeric species.

[0029] In certain preferred embodiments, the polylactone polymer comprises at least one β-lactone monomer. In certain preferred embodiments, the at least one β-lactone monomer is produced by carbonylation of an epoxide with carbon monoxide. In certain embodiments, the epoxide and / or the carbon monoxide are bio-based. In certain embodiments, the polylactone-based foams may be produced from any of the β-lactones provided in column B of Table 1 below. As shown in Table 1 and the following formula, such β-lactones in column B may be produced from the corresponding epoxides listed in column A of the table.

[0030] [ka] R 1 , R 2 , R 3 and R 4 contains any of the substituents from any of the structures in Table 1 below.

[0031] [Table 1] TIFF0007676023000005.tif254170TIFF0007676023000006.tif254170TIFF000 7676023000007.tif254170TIFF0007676023000008.tif254170TIFF00076760230 00009.tif254170TIFF0007676023000010.tif254170TIFF0007676023000011.t if254166TIFF0007676023000012.tif237170TIFF0007676023000013.tif123170

[0032] Preferably, in some embodiments, the polylactone polymers used in the materials degrade by composting. The degradation properties of polylactone-based foams can be selected by modifying the structure of the polylactone polymer chain, for example, by increasing or decreasing the number of ester groups in the polylactone polymer chain.

[0033] The present invention describes compostable and / or bio-based foams useful for producing foamed molded articles. The foams of the present invention are produced using a compound comprising a compostable and / or bio-based polylactone, such as polypropiolactone or an end-capped polypropiolactone polymer, and a blowing agent.

[0034] In some variations, "end-capped polypropiolactone" includes polypropiolactone polymers that are reacted with one or more end-capping agents to produce a thermally stable polymer. In some embodiments, the end-capping agent is an aniline derivative selected from the group consisting of benzothiazole, benzoxazole, benzimidazole, 2-aminothiophenol, o-phenylenediamine, and 2-aminophenol. In other embodiments, the end-capping agent is a phosphate selected from the group consisting of trimethyl phosphate and triphenyl phosphate. Suitable end-capping agents can further include other additives and stabilizers, such as isophthalic acid.

[0035] Compostable and / or biobased polylactone polymers can include polylactone polymers that degrade into compounds having lower molecular weight polylactones, such as polypropiolactone.

[0036] In some embodiments, polylactones can include, for example, polyacetolactone, poly-β-propiolactone, poly-γ-butyrolactone, and poly-δ-valerolactone.

[0037] Preferably, in certain embodiments, the polylactone polymers used to make the foams of the present invention are bio-based, e.g., the polylactone polymers have a bio-based content of greater than 20%, greater than 60%, more preferably greater than 70%, more preferably 80%, more preferably 90%, more preferably 95%, and more preferably 99%.

[0038] The terms "bio-content" and "bio-based content" refer to biogenic carbon, also known as biomass-derived carbon, carbon waste streams, and municipal solid waste-derived carbon. In some variations, bio-content (also called "bio-based content") can be determined based on: Biocontent or Biobased Content = [Biogenic (Organic) Carbon] / [Total (Organic) Carbon]*100%, as determined by ASTM D6866 (Standard Test Method for Determining the Biobased (Biogenic) Content of Solid, Liquid, and Gas Samples Using Radiocarbon Analysis).

[0039] For example, as disclosed in US2017 / 0002136, the ASTM D6866 method allows for the determination of the biobased content of materials using accelerator mass spectrometry, liquid scintillation counting, and radiocarbon analysis by isotopic mass spectrometry. When atmospheric nitrogen is hit by ultraviolet light-produced neutrons, the nitrogen loses a proton and forms carbon with a molecular weight of 14, which is radioactive. 14 C is readily oxidized to carbon dioxide, which represents a small but measurable fraction of carbon in the atmosphere. Atmospheric carbon dioxide is cycled by green leafy plants, which make organic molecules during the process of photosynthesis. The cycle is completed when a green leafy plant or other life form metabolizes the organic molecule, producing carbon dioxide that can be returned to the atmosphere. Virtually all life on Earth depends on this production of organic molecules by green leafy plants to create the chemical energy that fuels growth and reproduction. Thus, the carbon dioxide present in the atmosphere is14 C becomes part of all living organisms and their biological products. These renewable organic molecules that biodegrade to carbon dioxide do not contribute to global warming because there is no net additional carbon emitted into the atmosphere. In contrast, fossil fuel-based carbon does not have the signature radiocarbon ratio of atmospheric carbon dioxide. See WO2009 / 155086.

[0040] The application of ASTM D6866 to derive "biobased content" is built on the same concepts as radiocarbon dating, but does not use an age equation. 14 The analysis is performed by deriving the ratio of the amount of radiocarbon in the sample to that of a modern reference standard. The ratio is reported as a percentage in "pMC" (percent modern carbon). If the material being analyzed is a mixture of modern radiocarbon and fossil carbon (no radiocarbon), the resulting pMC value directly correlates to the amount of biobased material present in the sample. Modern reference standards used in radiocarbon dating are NIST (National Institute of Standards and Technology) reference materials, which have a known radiocarbon content approximately equal to that of 1950 AD. 1950 AD was chosen because it was a period before the thermonuclear weapons tests, which introduced large amounts of excess radiocarbon (called "explosive carbon") into the atmosphere with each explosion. The 1950 AD reference material represents 100 pMC. Atmospheric "explosive carbon" reached nearly double normal levels in 1963, at the peak of testing and before the treaty that stopped testing. Its distribution in the atmosphere has been estimated since its appearance, showing values ​​above 100 pMC for living plants and animals since 1950 A.D. The distribution of detonated carbon has gradually decreased over time, with values ​​today closer to 107.5 pMC. As a result, fresh biomass material such as corn could produce a radiocarbon signature near 107.5 pMC.

[0041] Petroleum carbon does not have the signature radiocarbon ratio of atmospheric carbon dioxide. Studies have noted that fossil fuels and petrochemical materials have less than about 1 pMC, and typically less than about 0.1 pMC, such as less than about 0.03 pMC. However, compounds derived from fully renewable sources have a percent modern carbon (pMC) of at least about 95, and they can have at least about 99 pMC, including about 100 pMC.

[0042] Combining fossil carbon with present-day carbon in a material results in a dilution of the present-day pMC content. By assuming that 107.5 pMC represents present-day bio-based material and 0 pMC represents petroleum derivatives, the measured pMC value of the material will reflect the proportions of these two component types. A material derived 100% from present-day biomass would give a radiocarbon signature near 107.5 pMC. Diluting the material with 50% petroleum derivatives would give it a radiocarbon signature near 54 pMC.

[0043] Biobased content results are derived by assigning 100% equal to 107.5 pMC and 0% equal to 0 pMC. In this regard, a sample measuring 99 pMC would give an equivalent biobased content result of 93%.

[0044] The evaluation of the materials described herein according to the present embodiments is performed in accordance with ASTM D6866 Revision 12 (i.e., ASTM D6866-12), which is incorporated herein by reference in its entirety. In some embodiments, the evaluation is performed according to the procedures of Method B of ASTM-D6866-12. The average values ​​encompass an absolute range of 6% (plus or minus 3% on either side of the biobased content value) to account for the variability in the end-member radiocarbon signatures. It is assumed that all materials are of present or fossil origin, and that the desired result is the amount of biobased carbon "present" in the material, not the amount of biomaterial "used" in the manufacturing process.

[0045] Other techniques for assessing the biobased content of a material are described, for example, in U.S. Patent Nos. 3,885,155, 4,427,884, 4,973,841, 5,438,194, and 5,661,299, and WO 2009 / 155086.

[0046] In some embodiments, the foams and polylactone polymers used to make the foams described herein are obtained from renewable sources. In some variations, "renewable sources" include sources of carbon and / or hydrogen obtained from biological organisms that are capable of replenishing themselves in less than 100 years.

[0047] In some embodiments, the foams and polylactone polymers used to make the foams described herein comprise at least one renewable carbon. In some variations, "renewable carbon" refers to carbon obtained from biological life forms that can replenish themselves in less than 100 years.

[0048] In some embodiments, the foams and polylactone polymers used to make the foams described herein are obtained from recycled sources. In some variations, "recycled sources" include sources of carbon and / or hydrogen that have been recovered from their previous use in an article of manufacture.

[0049] In some embodiments, the foams and polylactone polymers used to make the foams described herein comprise recycled carbon. In some variations, "recycled carbon" refers to carbon that has been recovered from its previous use in an article of manufacture.

[0050] Preferably, in other aspects, the polylactone polymers used herein can be processed using conventional melt processing techniques, such as single and twin screw extrusion. In one embodiment, the foamed structure is produced by cutting the extrudate containing the bio-based polylactone at the face of an extrusion die, followed by optional cooling by contacting with water, water vapor, air, carbon dioxide, or nitrogen gas.

[0051] In some variations, a "melt processable composition" includes formulations that are melt processed by conventional polymer processing techniques such as extrusion or injection molding, typically at elevated temperatures.

[0052] In some variations, "melt processing techniques" include extrusion, injection molding, blow molding, rotational molding, or batch mixing.

[0053] In some variations, "extrudate" includes a semi-solid material that has been extruded and shaped into a continuous form by forcing the material through a die opening.

[0054] Molded product materials can be made by a variety of methods, including blow molding, injection molding, open pot molding, and thermoforming. Blow molding is employed to make hollow shapes, particularly packaging containers. In an extrusion embodiment of this method, a parison is first made and then stretched over the walls of a mold cavity.

[0055] Thermoforming is a branch of molding using thermoplastic thick films or sheets. Polylactones are excellent candidates for thermoforming because they can be easily converted into films or sheets with excellent transparency. The sheet is heated to a point where it is fairly flexible and then subjected to a vacuum or pressure to force the sheet against a mold and form the desired shape. The elastic-plastic resilience properties of these polymer-plasticizer combinations are useful properties in the drape-forming embodiment of thermoforming.

[0056] In some embodiments, plasticizers can be added or incorporated into the melt-processable composition to address desired physical properties of the composition. In some variations, the plasticizer comprises a polyalkylene glycol and a functionalized natural oil. In some variations, the polyalkylene glycol comprises a polyethylene glycol sold under the trade name Carbowax (Dow Chemical Co., Midland, Michigan). In some variations, the functionalized natural oil comprises malicated or epoxidized soybean oil, linseed oil, or sunflower oil.

[0057] In another embodiment, the compostable and / or bio-based composition can include a chain extender to increase the molecular weight of the compostable or bio-based polymer during melt processing. This also has the effect of increasing the melt viscosity and strength, which can improve the foamability of the compostable or bio-based polymer. In some variations, the "chain extender" includes a material that, when melt processed with a polymer, increases the molecular weight by reacting and coupling the chain ends. Examples of chain extenders useful herein include those commercially available from Clariant under the trade name CESA-extend and those commercially available from BASF under the trade name Johncryl.

[0058] In another embodiment, the compostable and / or bio-based melt processable compositions may contain other additives. In some variations, the additives include antioxidants, light stabilizers, fibers, foaming agents, foaming additives, antiblocking agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, antistatic agents, conductive fillers, and pigments.

[0059] In certain variations, additives incorporated into the foam have performance enhancing properties, for example in one variation, the additives include antioxidants and stabilizers that protect the foam from oxidative (or UV-induced) degradation, or light stabilizers that protect materials from light-induced degradation.

[0060] The additives can be incorporated into the melt-processable composition in the form of powders, pellets, granules, or any other extrudable form. The amount and type of additives in the melt-processable composition can vary depending on the polymer matrix and the desired physical properties of the finished composition. Those skilled in the art of melt processing can select the appropriate amount and type of additive to match with a particular polymer matrix to achieve the desired physical properties of the final material.

[0061] In some variations, the bio-based foams produced according to the methods described herein exhibit desirable properties in applications requiring vibration dampening, shock absorption, low weight, and buoyancy.

[0062] In another embodiment, greater than about 60% by weight of the foam is made from compostable materials as determined by ASTM D6400. In a preferred embodiment, greater than about 80% by weight of the foam is made from compostable materials. In a most preferred embodiment, greater than about 95% by weight of the foam is made from compostable materials.

[0063] The compostable polymers of the present invention are made with melt processable compostable polymers that contain additives that modify the rheology of the compostable or bio-based polymer, including foaming agents and, optionally, chain extenders and plasticizers.

[0064] In a preferred embodiment, the polylactone polymer is combined with a blowing agent to produce a foam. Suitable blowing agents of the present invention are materials that can be incorporated into a melt-processable composition (e.g., either in molten or solid form with a premix of additives, polymer matrix, and / or optional fillers) to generate cells. The amount and type of blowing agent affects the density of the final product through its cell structure. Any suitable blowing agent can be used to produce the foamed material.

[0065] In certain preferred embodiments, blowing agents that are not incorporated into the polymer chains containing β-lactone monomers are referred to as physical blowing agents. In certain embodiments, the physical blowing agent disperses the polymer chains to generate cells. In a preferred embodiment, the physical blowing agent is carbon dioxide. In some embodiments, the physical blowing agent is uniformly distributed in the melt-processable composition containing the polymer to provide a uniform cell structure. In certain embodiments, the physical blowing agent comprises one or more carbonates, such as sodium, calcium, potassium, and / or magnesium carbonates. Sodium bicarbonate is preferably used because it is inexpensive and readily decomposes to form carbon dioxide gas. Sodium bicarbonate decomposes slowly when heated above about 120°C, with significant decomposition occurring at about 150°C to about 200°C. In general, the higher the temperature, the more quickly sodium bicarbonate decomposes. An acid, such as citric acid, may also be included in the foaming additive or may be added separately to the melt-processable composition to facilitate decomposition of the blowing agent.

[0066] In certain other embodiments, the blowing agent includes water, carbonates and other carbon dioxide releasing materials, diazo compounds and other nitrogen generating materials, carbon dioxide, decomposing polymeric materials such as poly(t-butyl methacrylate) and polyacrylic acid, alkane and cycloalkane gases such as pentane and butane, inert gases such as nitrogen, and the like. The blowing agent may be hydrophilic or hydrophobic. In one embodiment, the blowing agent may be a solid blowing agent. In another embodiment, the blowing agent may include one or more carbonates, such as sodium, potassium, calcium, and / or magnesium carbonates. In yet another embodiment, the blowing agent may be inorganic. The blowing agent may also include sodium carbonate and sodium bicarbonate, or alternatively include sodium bicarbonate alone.

[0067] While the blowing agent composition may include only the blowing agent, in other embodiments, the blowing agent includes a polymeric carrier used to carry or support the blowing agent. The blowing agent concentrate may be dispersed in a polymeric carrier for shipping and / or handling purposes. The polymeric carrier may also be used to carry or support any of the other materials or additives that are desired to be added to the melt processable composition.

[0068] The foaming agent content level in the concentrate can vary widely. In some embodiments, the foam comprises at least about 2.5% by weight of foaming agent, at least about 5% by weight of foaming agent, or suitably at least about 10% by weight of foaming agent. In other embodiments, the foam can comprise from about 10% to about 60% by weight of foaming agent, from about 15% to about 50% by weight of foaming agent, or suitably from about 20% to about 45% by weight of foaming agent. In still further embodiments, the foaming additive can comprise from about 0.05% to about 90% by weight of foaming agent, from about 0.1% to about 50% by weight of foaming agent, or from about 1% to about 26% by weight of foaming agent.

[0069] As mentioned above, the foaming agent concentrate may also include a polymeric carrier or material used to hold other additives to form a single additive. The polymeric carrier or polymeric component may be any suitable polymeric material, such as a hydrocarbon or non-hydrocarbon polymer. The polymeric carrier must be meltable or melt processable at a temperature below the activation temperature of the foaming agent. However, in some instances, a polymeric component having a melting point higher than the activation temperature of the foaming agent may be used as long as it is processed quickly enough so that an adequate amount of active foaming agent remains. In one embodiment, the polymeric carrier has a melting point of about 150° C. or less, about 125° C. or less, about 100° C. or less, or suitably about 80° C. or less. In a preferred embodiment, the foaming agent concentrate contains a compostable or bio-based polymer.

[0070] In certain preferred embodiments, one or more chemical blowing agents are capable of reacting with one or more polymer chains to produce a gas suitable for dispersing the polymer chains and creating cells.

[0071] In some variations, the blowing agent is injected into the extruder in a zone before the polymer melt passes through the die. In certain variations, the blowing agent is supplied as a pressurized liquid and mixed into the polymer melt, where it is degassed and foamed as the melt exits the extruder.

[0072] In some variations, the moldability of the compositions described herein may be improved by adding a nucleating agent. The dispersion of the nucleating agent within the polymer mixture helps to form a uniform cell structure. In some variations, a "nucleating agent" includes a material added to the polymer melt that provides sites for crystal formation. For example, by adding a nucleating agent, a higher degree of crystallinity and a more uniform crystal structure may be obtained. In certain variations, the foams produced according to the methods described herein have a crystallinity of at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, or at least 95%, or between 50% and 99%, or between 60% and 95%.

[0073] Examples of nucleating agents include inorganic powders such as talc, kaolin, mica, silica, calcium carbonate, barium sulfate, titanium oxide, aluminum oxide, clay, bentonite, and diatomaceous earth, as well as known chemical foaming agents such as azodicarbodiamide. Among them, in one variation, talc is preferred because it can facilitate the control of cell diameter. The content of nucleating agent varies depending on the type of nucleating agent and the intended cell diameter.

[0074] The amounts of ingredients in the melt-processible, compostable and / or bio-based foam composition may vary depending on the intended end use. The final composition may comprise from about 40% to about 99% by weight of a compostable or bio-based polymer. A blowing agent may be included in the final composition at a level of up to about 20% by weight. The final composition may comprise from about 1% to about 50% by weight of a compostable or bio-based plasticizer. The final composition may comprise from about 0.1% to about 10% by weight of a chain extender. A nucleating agent (such as talc) may be included in the final composition at up to about 5% by weight, more preferably less than about 1% by weight, and most preferably about 0.5% by weight.

[0075] A physical blowing agent, such as supercritical carbon dioxide, is combined with the melt early in the extruder mixing process. The supercritical carbon dioxide then expands to form a foamed structure as the mixture exits the extruder and is cut. Optionally, the foamed structure can be heated during a secondary expansion process to expand the material and reduce its density.

[0076] In the extrusion foaming process, the temperature profile of the extruder must be carefully controlled to allow for melting and mixing of the solids, reaction with the chain extender (optional), mixing with the blowing agent (e.g., supercritical CO2), and cooling of the molten mixture prior to extrusion through the die. The temperature of the first barrel section allows for melting and mixing of the solids, including dispersion of the nucleating agent within the melt. At the same time, the optional chain extender reacts with the chain ends of the polymer, increasing branching and molecular weight, which increases the viscosity of the melt and improves the melt strength of the plastic. Prior to the injection of the blowing agent, a melt seal is created within the extruder by carefully designing the internal screw elements to prevent the flow of the blowing agent from exiting the feed throat. The melt seal maintains pressure within the extruder and allows the blowing agent to remain soluble within the molten plastic. After the injection of the blowing agent, mixing elements are used to mix the blowing agent with the melt. The soluble blowing agent in the melt dramatically plasticizes the melt and greatly reduces its viscosity. This plasticizing effect allows the melt to be cooled at the final cross section of the extruder below the normal melting temperature of the compostable or bio-based polymer. Cooling is necessary to increase the viscosity of the plasticized melt, allowing the retention of a closed cell structure during expansion at the die.

[0077] The nucleating agent acts as a nucleation site for the development of the blowing agent during foaming. When the depressurization occurs at the die, the blowing agent dissolved in the plastic melt comes out of solution into the gas phase. Entering the gas phase dramatically increases the volume occupied by the blowing agent, resulting in a foam structure. The dispersion of the nucleating agent in the melt allows the blowing agent to evolve evenly from its soluble state in the melt to its gas form during depressurization, thus producing a fine cell foam. Without properly distributed nucleation sites, foaming can be non-uniform, resulting in large voids and an open cell structure, where the cell walls break down and become interconnected. Large voids and an open cell structure create a harder and more brittle foam. Very low density foams with closed cell structure can be described as sponge-like and exhibit good elastic recovery after significant compression.

[0078] As the extrudate leaves the die and foams, the rotating knives of the pelletizer cut the beads at the face of the die. Once cut, the foam is not fully set. The foaming process continues to shape the structure of the beads after they are cut. The blowing agent continues to develop, expanding the particles. The outer skin of the particle remains rubbery while it is cut, allowing the surface of the foamed bead to flow and reform a smooth, solid surface.

[0079] The melt processable, compostable or bio-based foam compositions of the present invention can be prepared by any of a variety of methods. For example, the compostable or bio-based polymer, blowing agent, nucleating agent, and optional additives can be combined together by any of the blending means commonly used in the plastics industry, such as a mixing extruder. The materials can be used in the form of, for example, powders, pellets, or granular products. The mixing operation is most conveniently performed at a temperature above the melting or softening point of the polymer. The resulting molten mixture can be processed into a foamed structure by cutting the extruded mixture of polymer and blowing agent at the face of the extrusion die. By cutting the extrudate at the face of the extrusion die, beads are formed before full expansion of the foam occurs. After pelletization, foam beads are formed from the expansion of the extrudate by the blowing agent. The foam beads are cooled by the release of the blowing agent, with subsequent cooling being applied by contact with water, water vapor, air, carbon dioxide, or nitrogen gas. The resulting foamed structure can be molded into a three-dimensional part using conventional equipment utilized in molding expandable polystyrene. In one embodiment, the foamed structure contains residual blowing agent and can be post-expanded in the molding process. In another embodiment, the foam structure is pressurized with a gas, such as air or carbon dioxide, prior to molding to allow expansion during molding.

[0080] Melt processing is typically carried out at temperatures of about 80°C to about 300°C, with the optimum operating temperature being selected depending on the melting point, melting viscosity, and thermal stability of the composition. Different types of melt processing equipment, such as extruders, may be used to process the melt-processable compositions of the present invention. Extruders suitable for use with the present invention are described, for example, by Rauwendaal, C., "Polymer Extrusion", Hansen Publishing, p. 11-33, 2001.

[0081] The first two examples below utilize a single type of polylactone resin. However, it is known that the degree of crystallinity of polylactones is controlled in two general ways: first, by composition, and second, by process. The polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone.

[0082] Heating a plastic above its melting point causes it to lose all crystallinity, and slow thermal annealing is required to induce crystallization. Fillers such as high performance talc are often used to promote more rapid crystallization, but most extrusion applications hoping to take advantage of the high crystallinity for thermal stability require an annealing step of 100°C to 130°C to sufficiently crystallize the PPL. However, in extrusion foam applications, there is enough shear and elongation during foam production to induce crystallinity within the very thin film of plastic that separates the closed cells of the foam. In addition, nucleating agents used to promote the dispersion and nucleation of dissolved CO2 in the melt during foam processing also improve crystallization kinetics. Thus, extrusion foam processing induces rapid crystallization of the PPL. From a thermal stability standpoint, this is favorable, as no annealing step is required.

[0083] In certain aspects, foams produced according to the methods described herein can be reprocessed into films or pyrolyzed, for example, to acrylic acid to produce superabsorbent polymers.

[0084] As used herein, the term "about" before one or more numerical values ​​means ±5% of the numerical value. Reference herein to a numerical value or parameter with "about" should be understood to include (and describe) aspects directed to that indication or parameter itself. For example, a description of "about x" includes a description of "x" itself.

[0085] Additionally, any reference herein to "between two values ​​or parameters" should be understood to include (and describe) aspects that include the two values ​​or parameters themselves. For example, a reference to "from x to y" includes a description of "x" and "y" themselves.

[0086] Mass fractions disclosed herein can be converted to weight percent by multiplying by 100. Enumerated Embodiments

[0087] The embodiments listed below are representative of some aspects of the present invention. 1. A method for producing a foam, comprising heating a composition containing at least one polylactone derived from a bio-based content in a reaction vessel, and molding the heated polylactone composition to obtain a foamed structure. 2. The method of embodiment 1, wherein the at least one polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone. 3. The method of embodiment 2, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of from about 40,000 g / mol to about 1,000,000 g / mol. 4. The method of embodiment 2, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of from about 50,000 g / mol to about 500,000 g / mol. 5. The method of embodiment 2, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of from about 60,000 g / mol to about 400,000 g / mol. 6. The method of embodiment 2, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of from about 70,000 g / mol to about 300,000 g / mol. 7. The method of embodiment 2, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of from about 80,000 g / mol to about 150,000 g / mol. 8. The method of embodiment 1, wherein the reaction vessel comprises an extruder. 9. The method of embodiment 8, wherein the extruder comprises a twin screw extruder. 10. The process of embodiment 8, wherein the extruder has an internal temperature of from about 10° C. to about 160° C. and an internal pressure of from about 10 bar to about 15 bar. 11. The method of embodiment 1, wherein carbon dioxide or nitrogen is used as a blowing agent in molding. 12. The method of embodiment 11, wherein supercritical carbon dioxide is used as a blowing agent in the molding. 13. The method of embodiment 1, wherein pentane, isopentane, or cyclopentane is used as a blowing agent in the molding. 14. The method of embodiment 1, further comprising mixing the polymeric material with a blowing agent. 15. The method of embodiment 1, further comprising the step of charging the reaction vessel with at least one polylactone. 16. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 60% by weight. 17. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 70% by weight. 18. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 80% by weight. 19. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 90% by weight. 20. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 95% by weight. 21. The method of embodiment 1, wherein the polylactone has a bio-based content of greater than about 99% by weight. 22. The method of embodiment 1, wherein the composition further comprises a nucleating agent. 23. The method of embodiment 1, wherein the composition further comprises one or more additives selected from the group consisting of antioxidants, light stabilizers, fibers, foaming additives, conductive additives, antiblocking agents, antistatic agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, branching agents, curing agents, and pigments. 24. A composition comprising a compostable polylactone melt processed into a mixture with at least one foaming agent, wherein the foaming agent is injected into the melt and the mixture is extruded into a foamed structure. 25. The composition of embodiment 24, wherein the at least one blowing agent is selected from the group consisting of pentane, isopentane, cyclopentane, carbon dioxide, and nitrogen. 26. The composition of embodiment 24, wherein at least one blowing agent is supercritical CO2. 27. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 60% by weight. 28. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 70% by weight. 29. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 80% by weight. 30. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 90% by weight. 31. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 95% by weight. 32. The composition of embodiment 24, wherein the compostable polylactone melt has a bio-based content of greater than about 99% by weight. 33. The composition of embodiment 24, wherein the polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone. 34. The composition of embodiment 33, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of from about 40,000 g / mol to about 1,000,000 g / mol. 35. The composition of embodiment 33, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 50,000 g / mol to 500,000 g / mol. 36. The composition of embodiment 33, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 60,000 g / mol to about 400,000 g / mol. 37. The composition of embodiment 33, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 70,000 g / mol to 300,000 g / mol. 38. The composition of embodiment 33, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 80,000 g / mol to about 150,000 g / mol. 39. The composition of embodiment 24, further comprising a nucleating agent. 40. The composition of embodiment 24, further comprising one or more additives selected from the group consisting of antioxidants, light stabilizers, fibers, foaming additives, conductive additives, antiblocking agents, antistatic agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, branching agents, curing agents, and pigments. 41. The composition of embodiment 24, wherein the compostable polylactone melt has a temperature of from about 10° C. to about 160° C. and a pressure of from about 10 bar to about 15 bar. 42. A composition comprising an extrudate of a compostable polylactone derived from a bio-based content containing a foaming agent, the extrudate having a suitable viscosity and density to form a foam having substantial stability and durability. 43. The composition of embodiment 42, wherein the blowing agent is selected from the group consisting of pentane, isopentane, cyclopentane, carbon dioxide, and nitrogen. 44. The composition of embodiment 42, wherein the blowing agent is supercritical CO2. 45. The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 60% by weight. 46. ​​The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 70% by weight. 47. The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 80% by weight. 48. The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 90% by weight. 49. The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 95% by weight. 50. The composition of embodiment 42, wherein the extrudate has a bio-based content of greater than about 99% by weight. 51. The composition of embodiment 42, wherein the polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone. 52. The composition of embodiment 51, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 40,000 g / mol to about 1,000,000 g / mol. 53. The composition of embodiment 51, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 50,000 g / mol to 500,000 g / mol. 54. The composition of embodiment 51, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 60,000 g / mol to about 400,000 g / mol. 55. The composition of embodiment 51, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 70,000 g / mol to 300,000 g / mol. 56. The composition of embodiment 51, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 80,000 g / mol to about 150,000 g / mol. 57. The composition of embodiment 42, further comprising a nucleating agent. 58. The composition of embodiment 42, further comprising one or more additives selected from the group consisting of antioxidants, light stabilizers, fibers, foaming additives, conductive additives, antiblocking agents, antistatic agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, branching agents, curing agents, and pigments. 59. A method for producing a foam, comprising: polymerizing at least one β-lactone monomer to form at least one polylactone; Blowing gas into polylactone to produce polylactone-based foams The method includes: 60. The method of embodiment 59, further comprising carbonylating the epoxide with carbon monoxide to produce at least one β-lactone monomer. 61. The method of embodiment 60, wherein the epoxide and / or carbon monoxide are comprised of bio-based molecules. 62. The method of embodiment 59, wherein the at least one polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone. 63. The method of embodiment 62, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 40,000 g / mol to about 1,000,000 g / mol. 64. The method of embodiment 62, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 50,000 g / mol to about 500,000 g / mol. 65. The method of embodiment 62, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 60,000 g / mol to about 400,000 g / mol. 66. The method of embodiment 62, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 70,000 g / mol to about 300,000 g / mol. 67. The method of embodiment 62, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 80,000 g / mol to about 150,000 g / mol. 68. The method of embodiment 59, wherein carbon dioxide or nitrogen is used as the blowing agent. 69. The method of embodiment 59, wherein supercritical carbon dioxide is used as the blowing agent. 70. The method of embodiment 59, wherein pentane, isopentane, or cyclopentane is used as the blowing agent. 71. The method of embodiment 59, further comprising mixing the polymeric material with a blowing agent. 72. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 60% by weight. 73. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 70% by weight. 74. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 80% by weight. 75. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 90% by weight. 76. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 95% by weight. 77. The method of embodiment 59, wherein the polylactone has a bio-based content of greater than about 99% by weight. 78. The method of embodiment 59, wherein the composition further comprises a nucleating agent. 79. The method of embodiment 59, wherein the composition further comprises one or more additives selected from the group consisting of antioxidants, light stabilizers, fibers, foaming additives, conductive additives, antiblocking agents, antistatic agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, branching agents, curing agents, and pigments. 80. A compostable polylactone having the repeating unit:

[0088] [ka] [In the formula, n is about 4,000 to about 1,000,000, and L1 and L2 are independently selected from the group consisting of H, alkyl, alkenyl, alkoxy, alkynyl, cycloalkyl, cycloalkenyl, and cycloalkynyl, ester, amine, aniline, and amide.] 1. A foam composition comprising: 81. The composition of embodiment 80, wherein the compostable polylactone is selected from the group consisting of polypropiolactone and end-capped polypropiolactone. 82. The composition of embodiment 81, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 40,000 g / mol to about 1,000,000 g / mol. 83. The composition of embodiment 81, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 50,000 g / mol to 500,000 g / mol. 84. The composition of embodiment 81, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 60,000 g / mol to about 400,000 g / mol. 85. The composition of embodiment 81, wherein the polypropiolactone or endcapped polypropiolactone has a molecular weight of about 70,000 g / mol to 300,000 g / mol. 86. The composition of embodiment 81, wherein the polypropiolactone or end-capped polypropiolactone has a molecular weight of about 80,000 g / mol to about 150,000 g / mol. 87. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 60% by weight. 88. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 70% by weight. 89. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 80% by weight. 90. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 90% by weight. 91. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 95% by weight. 92. The composition of embodiment 80, wherein the polylactone has a bio-based content of greater than about 99% by weight. EXAMPLES

[0089] The following examples are illustrative only and are not meant to limit any aspect of the present disclosure in any way.

[0090] Several acronyms and abbreviations are used throughout this section. For ease of understanding, the most commonly used are polypropiolactone ("PPL"), beta-propiolactone ("bPL").

[0091] [Example 1] A resin dry mix blend is prepared consisting of about 99% by weight of end-capped polypropiolactone having a molecular weight ("MW") of about 80,000 g / mol to about 150,000 g / mol, and about 1% by weight of Cereplast ECA-023 talc masterbatch. The resin dry mix is ​​gravimetrically fed into the feed throat of a twin screw extruder (about 11 mm to about 25 mm barrel diameter). The solids feed rate is set at 3.5 kg / hr (7.7 lbs / hr) and the screws are rotating at 40 rpm. Carbon dioxide (CO2) is blown into the plastic melt in the fourth barrel section of the extruder at 10 g / min. A single slit die with a 3 mm opening is bolted to the end of the extruder.

[0092] First, a flat temperature profile at 110°C is used. At the start, the extrudate is allowed to reach a temperature higher than 110°C. At the higher temperatures, the foaming characteristics, melt strength, viscosity to hold the blowing agent, and cell structure are determined for the extrudate. The temperature profile over the nine barrel sections from feed to exit is systematically adjusted to be 10°C, 50°C, 80°C, 110°C, 110°C, 110°C, 110°C, 110°C, and 110°C at each location in the extruder. At these conditions, the melt pressure at the die is set to about 10 bar to about 15 bar.

[0093] [Example 2] A dry mix blend of resins is prepared consisting of about 99% by weight of PPL having a MW of about 80,000 g / mol to about 150,000 g / mol and about 1% by weight of Cereplast ECA-023 talc masterbatch. The dry mix of resins is gravimetrically fed into the feed throat of a twin screw extruder (about 11 mm to about 25 mm barrel diameter). The solids feed rate is set at 3.5 kg / hr (7.7 lbs / hr) and the screws are rotated at 40 rpm. An end capping agent (phosphates such as trimethyl phosphate, triphenyl phosphate, benzothiazole, benzoxazole, benzimidazole, 2-aminothiophenol, o-phenylenediamine, and 2-aminophenol) is injected into the third barrel of the extruder. The amount of end-capped polypropiolactone made in situ inside the extruder is determined. Carbon dioxide (CO2) is blown into the plastic melt in the fourth barrel of the extruder at 10 g / min. A single slit die with a 3 mm opening is bolted to the end of the extruder.

[0094] First, a flat temperature profile at 110°C is used. At the start, the extrudate is allowed to reach a temperature above 110°C. At this high temperature, the foaming characteristics, melt strength, viscosity to hold the blowing agent, and cell structure are determined for the extrudate. The temperature profile over the nine barrel sections from feed to exit is systematically adjusted to be 10°C, 50°C, 80°C, 110°C, 110°C, 110°C, 110°C, 110°C, and 110°C at each location in the extruder. At these conditions, the melt pressure at the die is about 10 bar to about 15 bar.

[0095] The embodiments described herein are not intended to be limited to the aspects shown, but are to be accorded the widest scope consistent with the principles and features disclosed herein.

Claims

1. a) a thermally stable polylactone polymer end-capped with an end-capping agent comprising an aniline derivative or a phosphate, the polylactone polymer comprising repeating monomers of a β-lactone derivative; b) one or more blowing agents; Including, Can foam when heated and mixed composition.

2. 10. The composition of claim 1, wherein the one or more blowing agents comprise one or more of water, carbonates, carbon dioxide releasing materials, diazo compounds, nitrogen generating materials, carbon dioxide, decomposing polymeric materials, poly(t-butyl methacrylate), polyacrylic acid, nitrogen, pentane, isopentane, cyclopentane, or combinations thereof.

3. The composition of claim 1 or 2 further comprising one or more nucleating agents.

4. 4. The composition of claim 3, wherein the one or more nucleating agents comprise one or more of talc, kaolin, mica, silica, calcium carbonate, barium sulfate, titanium dioxide, aluminum oxide, clay, bentonite, diatomaceous earth, or azodicarbodiamide, or any combination thereof.

5. 5. The composition of any one of claims 1 to 4, further comprising one or more additives comprising one or more of an antioxidant, a light stabilizer, a fiber, a foaming additive, a conductive additive, an antiblocking agent, an antistatic agent, a heat stabilizer, an impact modifier, a biocide, a compatibilizer, a tackifier, a colorant, a coupling agent, a curing agent or a pigment, or any combination thereof.

6. The composition of any one of claims 1 to 5, further comprising one or more chain extenders, one or more branching agents, or both.

7. The composition of any one of claims 1 to 6, wherein the polylactone polymer is polypropiolactone.

8. 8. The composition of any one of claims 1 to 7, further comprising one or more plasticizers comprising one or more of a polyalkylene glycol, malicated soybean oil, epoxidized soybean oil, linseed oil, sunflower oil, or any combination thereof.

9. a) a thermally stable polylactone polymer end-capped with an end-capping agent comprising an aniline derivative or a phosphate; b) one or more blowing agents; A foam comprising: The foam, wherein the polylactone polymer comprises repeating monomers of a β-lactone derivative.

10. 10. The foam of claim 9, wherein the one or more blowing agents comprise one or more of water, carbonates, carbon dioxide releasing materials, diazo compounds, nitrogen generating materials, carbon dioxide, decomposing polymeric materials, poly(t-butyl methacrylate), polyacrylic acid, nitrogen, pentane, isopentane, cyclopentane, or combinations thereof.

11. 11. The foam of claim 9 or 10, further comprising one or more nucleating agents.

12. 12. The foam of claim 11, wherein the one or more nucleating agents comprise one or more of talc, kaolin, mica, silica, calcium carbonate, barium sulfate, titanium dioxide, aluminum oxide, clay, bentonite, diatomaceous earth, or any combination thereof.

13. 13. The foam of any one of claims 9 to 12, further comprising one or more additives comprising one or more of antioxidants, light stabilizers, fibers, foaming additives, conductive additives, antiblocking agents, antistatic agents, heat stabilizers, impact modifiers, biocides, compatibilizers, tackifiers, colorants, coupling agents, curing agents, branching agents, chain extenders, plasticizers or pigments, or any combination thereof.

14. The foam of any one of claims 9 to 13, wherein the foam has a closed cell structure.

15. The foam of any one of claims 9 to 14, wherein the foam can be thermally decomposed to produce acrylic acid.

16. heating the polylactone end-capped with an aniline derivative or a phosphate salt to produce a polylactone melt; processing the polylactone melt to produce a foam; A method comprising: The method, wherein the end-capped polylactone comprises repeating monomers of a β-lactone derivative.

17. 17. The method of claim 16, further comprising combining the end-capped polylactone with one or more nucleating agents, one or more additives, or any combination thereof, prior to heating.

18. 18. The method of claim 16 or 17, further comprising adding one or more blowing agents to the polylactone melt after heating and before molding.

19. 10. The composition of claim 1 or the foam of claim 9, wherein the aniline derivative comprises at least one of benzothiazole, benzoxazole, benzimidazole, 2-aminothiophenol, o-phenylenediamine, and 2-aminophenol, and the phosphate comprises at least one of trimethyl phosphate and triphenyl phosphate.

20. 10. The composition of claim 1 or the foam of claim 9, wherein the endcapping agent further comprises an isophthalic acid derivative.

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