Polymer composition for films with improved mechanical properties and degradability

The polymer composition combining aliphatic-aromatic polyester and natural polymers with polyhydroxyalkanoate addresses the challenge of maintaining mechanical properties and high degradability at low temperatures, ensuring efficient composting and waste reduction.

JP7807373B2Active Publication Date: 2026-01-27NOVAMONT SPA
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Patent Information

Application Number
JP2022539073
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-24
Filing Date
2020-12-17
Publication Date
2026-01-27
Estimated Expiration
2040-12-17

AI Technical Summary

Technical Problem

Existing polymer compositions for films lack the balance between maintaining good mechanical properties and achieving high degradability at low temperatures, particularly in composting processes below 58°C, which is essential for efficient waste management.

Method used

A polymer composition comprising aliphatic-aromatic polyester and a polymer of natural origin, partially or completely replacing lactic acid polyester with polyhydroxyalkanoate, enhancing low-temperature degradability while preserving mechanical properties.

Benefits of technology

The composition achieves rapid biodegradability under industrial and domestic composting conditions, maintaining mechanical integrity and facilitating environmental decomposition.

✦ Generated by Eureka AI based on patent content.

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Abstract

For the full composition: i) 30 to 95% by weight, preferably 50 to 85% by weight, of at least one polyester, relative to the sum of components i) to iv), a) With respect to the total dicarboxylic acid component: a1) 30 to 70 mol % of units derived from at least one aromatic dicarboxylic acid; a2) 70 to 30 mol % of units derived from at least one saturated aliphatic dicarboxylic acid; a3) 0 to 5 mol % of units derived from at least one unsaturated aliphatic dicarboxylic acid a dicarboxylic acid component comprising b) With respect to the total diol component: b1) 95 to 100 mol % of units derived from at least one saturated aliphatic diol; b2) 0 to 5 mol % of units derived from at least one unsaturated aliphatic diol Diol component containing Polyester containing; ii) 0.1 to 50% by weight, relative to the sum of components i) to vi), of at least one polymer of natural origin; iii) 0.1 to 10% by weight, relative to the sum of components i) to vi), of at least one polyhydroxyalkanoate other than the polyesters of lactic acid described in iv); iv) 0 to 3% by weight, relative to the sum of components i) to vi), of at least one polyester of lactic acid; v) 0 to 1% by weight, preferably 0 to 0.5% by weight, relative to the sum of components i) to vi), of at least one crosslinker and / or chain extender and / or hydrolysis stabilizer, comprising at least one compound having two or more functional groups, including isocyanate groups, peroxide groups, carbodiimide groups, isocyanurate groups, oxazoline groups, epoxide groups, anhydride groups and divinyl ether groups, and combinations thereof; vi) 0 to 15% by weight of at least one inorganic filler relative to the sum of components i) to vi). A polymer composition comprising:
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Description

[Technical Field]

[0001] The project leading to this invention has received funding from the European Union's Horizon 2020 research and innovation programme Bio Based Industries Joint Undertaking Public-Private Partnership under grant agreement no. 720720. The present invention relates to polymer compositions that are particularly suitable for the production of films with improved mechanical properties and high degradability, which films can be used to make products such as collection bags, shopping bags, food packaging, mulch films, diapers and hygiene products. [Background technology]

[0002] In the above mentioned fields of application, there is a demand for films that are not only characterized by good mechanical properties but also by high degradability at low temperatures and therefore can be decomposed after completion of their main use without accumulating waste in the environment. Currently available polymer compositions made from aliphatic polyesters, especially lactic acid polyesters, diacid-diol aliphatic-aromatic polyesters, and polymers of natural origin (e.g., starch), can be used to obtain films characterized by good mechanical properties and biodegradability (optimal at high temperatures) according to EN 13432. There is an increasing demand for high disintegration rates even at temperatures below 58°C, typical of composting processes. This is due to the increasing use of shorter cycles for compost plants. While compost quality, and therefore maturity, is essential for soil health, biodegradable bioplastics with fast decomposition rates overcome the problems that can be caused by inadequate composting.

[0003] Patent EP 2 984 138 B1 describes a biodegradable polymer mixture containing starch, an aliphatic-aromatic polyester, polylactic acid, and polyhydroxyalkanoate (PHA). The use of a high concentration of PHA can increase the content of renewable components in the mixture, but the presence of a moderate concentration of polylactic acid is required to give the material good mechanical properties. Summary of the Invention [Means for solving the problem]

[0004] Starting from the need to find a balance between improved mechanical properties and high degradability at low temperatures, it has now surprisingly been found possible to solve this problem by means of a polymer composition made from an aliphatic-aromatic polyester and a polymer of natural origin, in which the polyester of lactic acid is partially or completely replaced by at least one polyhydroxyalkanoate, which compositional substitution increases the low-temperature degradability of the resulting film while maintaining, if not improving, its mechanical properties. DETAILED DESCRIPTION OF THE INVENTION

[0005] The present invention specifically relates to the total composition of the present invention. i) 30 to 95% by weight, preferably 50 to 85% by weight, of at least one polyester, relative to the sum of components i) to iv), a) with respect to the total dicarboxylic acid component: a1) 30 to 70 mol %, preferably 40 to 60 mol %, of units derived from at least one aromatic dicarboxylic acid; a2) 70 to 30 mol %, preferably 40 to 60 mol %, of units derived from at least one saturated aliphatic dicarboxylic acid; a3) 0 to 5 mol % of units derived from at least one saturated aliphatic dicarboxylic acid a dicarboxylic acid component comprising b) With respect to the total diol component: b1) 95 to 100 mol % of units derived from at least one saturated aliphatic diol; b2) 0 to 5 mol % of units derived from at least one unsaturated aliphatic diol Diol component containing Polyester containing; ii) 0.1 to 50% by weight, preferably 5 to 40% by weight, of at least one polymer of natural origin, relative to the sum of components i) to vi), iii) 0.1 to 10% by weight, preferably 0.1 to 8% by weight, more preferably 0.1 to 6% by weight, of at least one polyhydroxyalkanoate other than the polyesters of lactic acid described in iv), relative to the sum of components i) to vi); iv) 0 to 3% by weight, preferably 0 to 2.9% by weight, more preferably 0 to 2% by weight, even more preferably 0 to 1% by weight, of at least one polyester of lactic acid relative to the sum of components i) to vi); v) 0 to 1% by weight, preferably 0 to 0.5% by weight, relative to the sum of components i) to vi), of at least one crosslinker and / or chain extender comprising at least one compound having two and / or three or more functional groups, including isocyanate groups, peroxide groups, carbodiimide groups, isocyanurate groups, oxazoline groups, epoxide groups, anhydride groups, divinyl ether groups and combinations thereof; vi) 0 to 15% by weight of at least one inorganic filler relative to the sum of components i) to vi). The present invention relates to a polymer composition comprising:

[0006] The compositions according to the invention are rapidly biodegradable under industrial composting conditions according to EN13432, more preferably under domestic composting conditions according to UNI11355, and in soil according to EN17033. The composition according to the present invention comprises 30 to 95% by weight, preferably 50 to 85% by weight, of at least one aliphatic-aromatic polyester i), based on the total of components i) to vi), which comprises a dicarboxylic acid component comprising 30 to 70% by mole, preferably 40 to 60% by mole, of units derived from at least one aromatic dicarboxylic acid (component a1) and 70 to 30% by mole, preferably 60 to 40% by mole, of units derived from at least one saturated aliphatic dicarboxylic acid (component a2), based on the total dicarboxylic acid component.

[0007] The aromatic dicarboxylic acids (component a1) of the composition according to the invention are preferably chosen from aromatic dicarboxylic acids of the phthalic acid type, preferably terephthalic acid or isophthalic acid, more preferably terephthalic acid, and heterocyclic dicarboxylic aromatic compounds, preferably 2,5-furandicarboxylic acid, 2,4-furandicarboxylic acid, 2,3-furandicarboxylic acid, 3,4-furandicarboxylic acid, their esters, salts and mixtures thereof. In one preferred embodiment, the aromatic dicarboxylic acid is: - 1 to 99 mol %, preferably 5 to 95 mol %, more preferably 10 to 80 mol % of terephthalic acid, its esters or salts; 99 to 1 mol %, preferably 95 to 5 mol %, more preferably 90 to 20 mol % of 2,5-furandicarboxylic acid, its ester or salt Includes. In another preferred embodiment, the aromatic dicarboxylic acids are chosen exclusively from aromatic dicarboxylic acids of the phthalic acid type.

[0008] Alternatively, the saturated aliphatic dicarboxylic acid (component a2) of the aliphatic-aromatic polyester i) is preferably selected from C2-C24, preferably C4-C13, more preferably C4-C11 saturated dicarboxylic acids, their C1-C24, preferably C1-C4 alkyl esters, their salts, and mixtures thereof. Preferably, the saturated aliphatic dicarboxylic acid is selected from succinic acid, 2-ethylsuccinic acid, glutaric acid, 2-methylglutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, brassic acid, and their C1-C24 alkyl esters. Preferably, the saturated dicarboxylic acid is selected from the group consisting of succinic acid, adipic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, brassic acid, and mixtures thereof. The dicarboxylic acid component of the aliphatic-aromatic polyester in the composition according to the present invention may comprise up to 5% of an unsaturated aliphatic dicarboxylic acid (component a3), preferably selected from itaconic acid, fumaric acid, 4-methylene-pimelic acid, 3,4-bis(methylene)nonanedioic acid, 5-methylene-nonanedioic acid, their C1-C24, preferably C1-C4 alkyl esters, their salts, and mixtures thereof. In one preferred embodiment of the present invention, the unsaturated aliphatic dicarboxylic acid comprises a mixture containing at least 50 mol%, preferably 60 mol% or more, preferably 65 mol% or more of itaconic acid and / or its C1-C24, preferably C1-C4 esters. More preferably, the unsaturated aliphatic dicarboxylic acid consists of itaconic acid.

[0009] The diol component of the aliphatic-aromatic polyester i) of the composition according to the invention comprises 95 to 100 mol %, preferably 97 to 100 mol %, based on the total diol component, of units derived from at least one saturated aliphatic diol (component b1) and 0 to 5 mol %, preferably 0 to 3 mol %, based on the total diol component, of units derived from at least one unsaturated aliphatic diol (component b2). The saturated aliphatic diol (component b1) of the aliphatic-aromatic polyester i) of the composition according to the invention is preferably selected from 1,2-ethanediol, 1,2-propanediol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, 1,9-nonanediol, 1,10-decanediol, 1,11-undecanediol, 1,12-dodecanediol, 1,13-tridecanediol, 1,4-cyclohexanediethanol, neopentyl glycol, 2-methyl-1,3-propanediol, dianhydrosorbitol, dianhydromannitol, dianhydroiditol, cyclohexanediol, cyclohexanemethanediol, dialkylene glycols and polyalkylene glycols having a molecular weight of 100 to 4000, such as polyethylene glycol, polypropylene glycol, and mixtures thereof. Preferably, the diol component comprises at least 50 mol % of one or more diols selected from 1,2-ethanediol, 1,3-propanediol, 1,4-butanediol, hi one preferred embodiment of the present invention, the saturated aliphatic diol is 1,4-butanediol. The unsaturated aliphatic diols (component b2) of the aliphatic-aromatic polyesters i) of the composition according to the invention are preferably selected from cis 2-butene-1,4-diol, trans 2-butene-1,4-diol, 2-butyne-1,4-diol, cis 2-pentene-1,5-diol, trans 2-pentene-1,5-diol, 2-pentyne-1,5-diol, cis 2-hexene-1,6-diol, trans 2-hexene-1,6-diol, 2-hexyne-1,6-diol, cis 3-hexene-1,6-diol, trans 3-hexene-1,6-diol, 3-hexyne-1,6-diol.

[0010] In one preferred embodiment, the aliphatic-aromatic polyester i) is preferably poly(1,4-butylene adipate-co-1,4-butylene terephthalate), poly(1,4-butylene succinate-co-1,4-butylene terephthalate), poly(1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene terephthalate), poly(1,4-butylene brassylate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene undecanoate-co-1,4-butylene terephthalate), poly(1,4-butylene dodecanoate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene azelate-co-1 ,4-butylene terephthalate), poly(1,4-butylene succinate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene succinate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene succinate-co-1,4-butylene terephthalate), and mixtures thereof. In one preferred embodiment, the aliphatic-aromatic polyester i) is preferably selected from poly(1,4-butylene adipate-co-1,4-butylene terephthalate), poly(1,4-butylene sebacate-co-1,4-butylene terephthalate) and poly(1,4-butylene azelate-co-1,4-butylene terephthalate), and mixtures thereof.

[0011] In another preferred embodiment of the present invention, poly(1,4-butylene adipate-co-1,4-butylene azelate-co-1,4-butylene terephthalate) is blended with one or more polyesters selected from poly(1,4-butylene adipate-co-1,4-butylene terephthalate), poly(1,4-butylene sebacate-co-1,4-butylene terephthalate), and poly(1,4-butylene azelate-co-1,4-butylene terephthalate). In one further preferred embodiment of the present invention, poly(1,4-butylene adipate-co-1,4-butylene terephthalate) is blended with one or more polyesters selected from poly(1,4-butylene adipate-co-1,4-butylene azelate-co-1,4-butylene terephthalate), poly(1,4-butylene sebacate-co-1,4-butylene terephthalate), and poly(1,4-butylene azelate-co-1,4-butylene terephthalate). In one further preferred embodiment, the aliphatic-aromatic polyester i) is poly(1,4-butylene adipate-co-1,4-butylene terephthalate).

[0012] The aliphatic-aromatic polyester i) may also advantageously comprise repeat units derived from at least one hydroxy acid in an amount of 0 to 49 mol %, preferably 0 to 30 mol %, relative to the total moles of dicarboxylic acid components. Examples of convenient hydroxy acids are glycolic acid, hydroxybutyric acid, hydroxycaproic acid, hydroxyvaleric acid, 7-hydroxyheptanoic acid, 8-hydroxyheptanoic acid, 9-hydroxynonanoic acid, lactic acid or lactide. The hydroxy acids may be inserted into the chain as such or as prepolymers / oligomers, or may be previously reacted with diacids or diols. Longer molecules with two functional groups (even if not in terminal positions) can also be added in an amount not exceeding 10 mole % with respect to the total number of moles of dicarboxylic acid components. Examples are dimer acids, ricinoleic acid, and acids containing epoxy functional groups, as well as polyoxyethylenes with molecular weights between 200 and 10,000. Diamines, amino acids and amino alcohols may also be present in amounts up to 30 mole % based on the total moles of dicarboxylic acid components.

[0013] In the process for preparing the aliphatic-aromatic polyester i) of the composition according to the invention, one or more molecules with multiple functional groups may also be added, advantageously in an amount of 0.1 to 3 mol % relative to the total moles of dicarboxylic acid components, in order to obtain branched products. Examples of these molecules are glycerol, pentaerythritol, trimethylolpropane, citric acid, dipentaerythritol, monoanhydrosorbitol, monohydromannitol, acid triglycerides, polyglycerols, etc. The molecular weight Mn of the polyester i) is preferably ≧20000, more preferably ≧40000. When the polydispersity index Mw / Mn of the molecular weight is taken into consideration, it is preferably 1.5 to 10, more preferably 1.6 to 5, and even more preferably 1.8 to 2.7. Molecular weights Mn and Mw can be measured using gel permeation chromatography (GPC) using a chromatographic system maintained at 40°C, a set of two columns in series (mixed porosity with 5 μm and 3 μm particle sizes), a refractive index detector, chloroform as eluent (flow 0.5 ml / min) and polystyrene as reference standard.

[0014] The melt flow rate (MFR) of the aliphatic-aromatic polyester i) is preferably 500 to 1 g / 10 min, more preferably 100 to 3 g / 10 min, and even more preferably 15 to 3 g / 10 min (measured at 190°C / 2.16 kg according to ISO 1133-1 "Plastics - Determination of the melt mass-flow rate (MFR) and melt volume flow rate (MVR) of thermoplastics - Part 1: Standard method"). The terminal acid group content of polyester i) is preferably 100 meq / kg or less, more preferably 60 meq / kg or less, and even more preferably 40 meq / kg or less. The content of terminal acid groups may be determined as follows: 1.5-3 g of polyester is placed in a 100 ml flask with 60 ml of chloroform. After the polyester is completely dissolved, 25 ml of 2-propanol is added, and immediately before analysis, 1 ml of deionized water is added. The solution thus obtained is titrated with a pre-standardized NaOH solution in ethanol. The titration end point is determined using an appropriate indicator (e.g., a glass electrode for acid-base titrations in non-aqueous solvents). The content of terminal acid groups is calculated based on the amount of NaOH solution in ethanol consumed according to the following formula:

number

[0015] Preferably, the polyester i) has an intrinsic viscosity (measured with an Ubbelohde viscometer on a CHCl3 solution at a concentration of 0.2 g / dl at 25°C) of 0.3 dl / g or more, preferably between 0.3 and 2 dl / g, more preferably between 0.4 and 1.1 dl / g. Preferably, the polyester i) is biodegradable. According to the present invention, the biodegradable polymer is a biodegradable polymer according to EN13432. Said polyester i) can be synthesized by any of the processes known in the prior art. In particular, polyester i) may advantageously be obtained by a polycondensation reaction. The synthesis process may advantageously be carried out in the presence of a suitable catalyst, examples of which include organometallic tin compounds such as stannic acid derivatives, titanium compounds such as orthobutyl titanate, aluminum compounds such as triisopropylaluminum, or compounds of antimony, zinc and zirconium, and mixtures thereof. An example of a synthetic process that can be advantageously used to prepare polyesters is described in international application WO 2016 / 050963.

[0016] The composition according to the invention comprises from 0.1 to 50% by weight, preferably from 5 to 40% by weight, of at least one polymer (ii) of natural origin, relative to the sum of components i) to vi). In the composition according to the invention, the polymers of natural origin are advantageously chosen from starch, chitin, chitosan, alginates, proteins such as gluten, zein, casein, collagen, gelatin, natural gums, cellulose (also in nanofibrillar form) and pectin. The term starch is used herein to refer to all types of starch, i.e., wheat flour, native starch, hydrolyzed starch, destructed starch, gelatinized starch, plasticized starch, thermoplastic starch, complexed starch, or biofillers including mixtures thereof. Starches such as potato, corn, tapioca, and pea starch are particularly suitable according to the invention. Starches which can be easily broken down and have a high initial molecular weight, such as potato starch or corn starch, are particularly advantageous. The starch may be present as it is or in a chemically modified form, such as starch esters with a degree of substitution of 0.2 to 2.5, hydroxypropylated starch, or starches modified with fatty chains.

[0017] Destructured starch in this specification refers to the teachings in patents EP 0 118 240 and EP 0 327 505 and means starch that has been processed so that it does not substantially exhibit the so-called "Maltese cross" under a polarized light microscope and the so-called "ghost" under a phase contrast light microscope. The destruction of the starch is advantageously carried out by an extrusion process at a temperature between 110 and 250°C, preferably between 130°C and 180°C, and at a pressure between 0.1 and 7 MPa, preferably between 0.3 and 6 MPa, preferably providing a specific energy of 0.1 kWh / kg or more during extrusion. The starch is preferably broken down in the presence of 1 to 40% by weight, relative to the weight of the starch, of one or more plasticizers selected from water and polyols having 2 to 22 carbon atoms. When water is taken into account, this may be the water naturally present in the starch. Polyols having 1 to 20 hydroxyl groups and containing 2 to 6 carbon atoms, their ethers, thioethers and organic and inorganic esters are preferred.

[0018] Examples of polyols are glycerol, diglycerol, polyglycerol, pentaerythritol, polyglycerol ethoxylate, ethylene glycol, polyethylene glycol, 1,2-propanediol, 1,3-propanediol, 1,4-butanediol, neopentyl glycol, sorbitol, sorbitol monoacetate, sorbitol diacetate, sorbitol monoethoxylate, sorbitol diethoxylate, and mixtures thereof. In one preferred embodiment, the starch is disrupted in the presence of glycerol or a mixture of plasticizers containing glycerol (preferably 2 to 90% by weight of glycerol). Preferably, the disrupted and crosslinked starch according to the invention comprises 1 to 40% by weight of plasticizer relative to the weight of the starch. When present, the starch in the composition according to the invention is preferably in the form of particles having a circular, elliptical or other ellipsoid cross section with an arithmetic mean diameter, measured taking into account the longest axis of the particle, of not more than 1 μm, more preferably not more than 0.5 μm.

[0019] In addition to components i) and ii), the composition according to the invention comprises from 0.1 to 10% by weight, preferably from 0.1 to 8% by weight, more preferably from 0.1 to 6% by weight, of at least one polyhydroxyalkanoate (component iii) other than the polyesters of lactic acid described in iv), relative to the sum of components i) to vi). In the present invention, polyhydroxyalkanoates (component iii) refer to polyhydric fatty acids containing monomers with a chain length of at least 4 carbon atoms. Thus, acid lactic acid polyesters are not polyhydroxyalkanoates according to the invention, whereas, for example, polyhydroxybutyrate (PHB) is. According to the invention, polyhydroxyalkanoates (iii) comprising repeating monomer units according to formula (1) below are considered preferred: [O-CHR-(CH2) m -CO-] (1) where R is H or a group of formula C n H (2n+1) (n is an integer of 1 to 15, preferably 1 to 6), and m is an integer of 1 to 4.

[0020] The polyhydroxyalkanoate (component iii) is preferably selected from the group consisting of poly-ε-caprolactone, polyhydroxybutyrate, polyhydroxybutyrate-valerate, polyhydroxybutyrate-propanoate, polyhydroxybutyrate-hexanoate, polyhydroxybutyrate-decanoate, polyhydroxybutyrate-dodecanoate, polyhydroxybutyrate-hexadecanoate, polyhydroxybutyrate-hexadecanoate, polyhydroxybutyrate-octadecanoate, poly 3-hydroxybutyrate 4-hydroxybutyrate. More preferably, the polyhydroxyalkanoate is selected from the group consisting of polyhydroxybutyrate (PHB), polyhydroxybutyrate-valerate (PHBV) and polyhydroxybutyrate-hexanoate (PHBH).More preferably, the polyhydroxyalkanoate is polyhydroxybutyrate-valerate. Polyhydroxybutyrate-valerate (PHBV) described by formula (2) is particularly preferred. [ka]

[0021] In a further preferred embodiment of the present invention, hydroxybutyrate (comonomer x) represents 95 mol % or more, preferably 96 mol % to 100 mol %, relative to the sum of all comonomers (x+y). The presence of a high molar content of comonomers other than hydroxybutyrate in the polymer chain of polyhydroxybutyrate leads to a decrease in the fusion temperature, thus increasing the difference between the melting temperature and the decomposition temperature, and consequently improving processability. In the present invention, the "melting temperature" means the maximum value of the endothermic peak corresponding to the fusion of polyhydroxyalkanoate measured by differential scanning calorimetry (DSC) during a heating scan from -20°C to 200°C at 20°C / min. In the present invention, "decomposition temperature" means the onset temperature determined by thermogravimetric analysis (TGA). The onset temperature is calculated as the intersection of the offset point from the initial weight and the tangent line at the inflection point on the thermogravimetric curve analyzed in a nitrogen atmosphere at a heating rate of 10°C / min. Surprisingly, in the present invention, the use of polyhydroxyalkanoates with a low molar content of comonomers other than hydroxybutyrate exhibits a good balance between mechanical properties and tear strength, even though they are less stable from a thermal point of view than those with a higher content.

[0022] In addition to components i) to iii), the composition according to the invention comprises at least one polyester of lactic acid (component iv) in an amount of at most 3% by weight, preferably at most 2.9% by weight, more preferably at most 2.5% by weight, even more preferably at most 1% by weight, relative to the sum of components i) to vi). In one preferred embodiment, the lactic acid polyester is selected from the group consisting of poly-L-lactic acid, poly-D-lactic acid, poly-D-lactic acid stereocomplex, copolymers containing 50 mol % or more of the lactic acid polyester, and mixtures thereof. Particularly preferred is a lactic acid polyester containing at least 95 wt % repeating units derived from L-lactic acid or D-lactic acid, or a combination thereof, and having a molecular weight Mw of 50,000 or more and a shear viscosity of 50 to 700 Pa s, preferably 80 to 500 Pa s (measured according to ASTM standard D3835 at T=190°C, shear rate=1000 s-1, D=1 mm, L / D=10). In one particularly preferred embodiment of the present invention, the lactic acid polyester contains at least 95% by weight of L-lactic acid units and 5% or less of repeating D-lactic acid units, and has a melting point in the range of 135-175°C, a glass transition temperature (Tg) in the range of 55-65°C, and a MFR in the range of 1-50 g / 10 min (measured according to ASTM-D1238 at 190°C and 2.16 kg). Commercially available examples of lactic acid polyesters with such properties include Ingeo TM The brand products are Biopolymer 4043D, 3251D and 6202D.

[0023] 0 to 1 wt. %, more preferably 0 to 0.5 wt. %, relative to the weight of components i) to vi), of at least one crosslinker and / or chain extender and / or hydrolysis stabilizer (component v) may also be present in the composition according to the invention to improve the stability against hydrolysis. The crosslinking agent and / or chain extender is selected from compounds having two or more functional groups including isocyanate groups, peroxide groups, carbodiimide groups, isocyanurate groups, oxazoline groups, epoxide groups, anhydride groups, divinyl ether groups, and mixtures thereof. Particularly preferred is a mixture of a compound having two or more functional groups, including an isocyanate group, and a compound having two or more functional groups, including an epoxy group, and even more preferred is a mixture containing at least 75% by weight of a compound having two or more functional groups, including an isocyanate group.

[0024] The compound having two or more functional groups including an isocyanate group is preferably phenylene diisocyanate, 2,4-toluene diisocyanate, 2,6-toluene diisocyanate, 4,4-diphenylmethane diisocyanate, 1,3-phenylene-4-chlorodiisocyanate, 1,5-naphthalene diisocyanate, 4,4-diphenylene diisocyanate, 3,3'-dimethyl-4,4-diphenylmethane diisocyanate, 3-methyl-4,4'-diphenylmethane diisocyanate, diphenyl ester diisocyanate, 2, The isocyanate may be selected from 4-cyclohexane diisocyanate, 2,3-cyclohexane diisocyanate, 1-methyl-2,4-cyclohexyl diisocyanate, 2,6-cyclohexyl diisocyanate, bis(cyclohexyl isocyanate)methane, 2,4,6-toluene triisocyanate, 2,4,4-diphenyl ether triisocyanate, polymethylene-polyphenyl-polyisocyanate, methylene diphenyl diisocyanate, triphenylmethane triisocyanate, 3,3'-ditolylene-4,4-diisocyanate, 4,4'-methylene bis(2-methylphenyl isocyanate), hexamethylene diisocyanate, 1,3-cyclohexylene diisocyanate, 1,2-cyclohexylene diisocyanate, and mixtures thereof. In one preferred embodiment, the compound containing an isocyanate group is 4,4-diphenylmethane diisocyanate.

[0025] As regards the compounds having two or more functional groups containing peroxide groups, these are preferably selected from benzoyl peroxide, lauroyl peroxide, isononanoyl peroxide, di(t-butylperoxyisopropyl)benzene, t-butyl peroxide, dicumyl peroxide, α,α'-di(t-butylperoxy)diisopropylbenzene, 2,5-dimethyl-2,5-di(t-butylperoxy)hexane, t-butylcumyl peroxide, di-t-butyl peroxide, 2,5-dimethyl-2,5-di(t-butylperoxy)hex-3-yne, di(4-t-butylcyclohexyl)peroxydicarbonate, dicetyl peroxydicarbonate, dimyristyl peroxydicarbonate, 3,6,9-trimethyl-3,6,9-trimethyl-1,4,7-triperoxonane, di(2-ethylhexyl)peroxydicarbonate and mixtures thereof.Compounds having two or more functional groups containing carbodiimide groups that are preferably used in the composition according to the present invention include poly(cyclooctylenecarbodiimide), poly(1,4-dimethylenecyclohexylenecarbodiimide), poly(cyclohexylenecarbodiimide), poly(ethylenecarbodiimide), poly(butylenecarbodiimide), poly(isobutylenecarbodiimide), poly(nonylenecarbodiimide), poly(dodecylenecarbodiimide), poly(neopentylenecarbodiimide), poly(1,4-dimethylenephenylenecarbodiimide), poly(2,2',6,6'-tetraisopropyldiphenylenecarbodiimide) (Stabaxol® D), poly(2,4,6-triisopropyl-1,3-phenylenecarbodiimide) (Stabaxol® P-100), poly(2,6-diisopropyl -1,3-phenylenecarbodiimide) (Stabaxol® P), poly(tolylcarbodiimide), poly(4,4'-diphenylmethanecarbodiimide), poly(3,3'-dimethyl-4,4'-biphenylenecarbodiimide), poly(p-phenylenecarbodiimide), poly(m-phenylenecarbodiimide), poly(3,3'-dimethyl-4,4'-diphenylmethanecarbodiimide), poly(naphthalene The copolymer is selected from the group consisting of poly(ethylenecarbodiimide), poly(isophoronecarbodiimide), poly(cumenecarbodiimide), p-phenylenebis(ethylcarbodiimide), 1,6-hexamethylenebis(ethylcarbodiimide), 1,8-octamethylenebis(ethylcarbodiimide), 1,10-decamethylenebis(ethylcarbodiimide), 1,12-dodecamethylenebis(ethylcarbodiimide), and mixtures thereof.

[0026] Examples of compounds having two or more functional groups, including epoxy groups, which can be advantageously used in the composition according to the invention are epoxidized oils and / or polyepoxides from styrene-glycidyl ether-methyl methacrylate, glycidyl ether-methyl methacrylate, all of which have a molecular weight in the range of 1000 to 10000 and have 1 to 30, preferably 5 to 25, epoxy groups per molecule, such as the following: diethylene glycol diglycidyl ether, polyethylene glycol diglycidyl ether, polyglycidyl ether glycerol, polyglycidyl ether The glycerol may be selected from the group comprising diglycerol, 1,2-epoxybutane, polyglycidyl ether polyglycerol, isoprene diepoxide and cycloaliphatic epoxide, 1,4-cyclohexanedimethanol diglycidyl ether, glycidyl 2-methylphenyl ether, glycerol propoxylato triglycidyl ether, 1,4-butanediol diglycidyl ether, sorbitol polyglycidyl ether, glycerol diglycidyl ether, tetraglycidyl meta-xylylene diamine ether and diglycidyl bisphenol A ether, and mixtures thereof.

[0027] In combination with compounds having two or more functional groups, including isocyanate groups, peroxide groups, carbodiimide groups, isocyanurate groups, oxazoline groups, epoxide groups, anhydride groups, and divinyl ether groups (such as those mentioned above), a catalyst may also be used to enhance the reactivity of the reactive groups. In the case of polyoxides, salts of fatty acids are preferably used, and more preferably calcium stearate and zinc stearate are used. In one particularly preferred embodiment of the present invention, the crosslinker and / or chain extender comprises a compound containing isocyanate groups, preferably 4,4-diphenylmethane diisocyanate, and / or carbodiimide groups, and / or epoxy groups, preferably of the styrene-glycidyl ether methyl methacrylate type.

[0028] In addition to components i) to v) of the composition according to the invention, the composition also contains 0 to 15% by weight, relative to the weight of components i) to vi), of at least one inorganic filler (component vi), preferably selected from kaolin, barite / barite, clay, talc, calcium and magnesium carbonate, iron and lead carbonate, aluminum hydroxide, diatomaceous earth, aluminum sulfate, barium sulfate, silica, mica, titanium dioxide, and wollastonite / wollastonite. In one preferred embodiment of the invention, the inorganic filler comprises talc, calcium carbonate, or a mixture thereof, which is present in the form of particles having an arithmetic mean diameter of 10 microns or less, measured along the longest axis of the particle. In fact, it has been found that fillers of the above types not characterized by the arithmetic mean diameter do not improve the decomposition properties of the objects containing them during industrial composting. When calcium carbonate and talc are simultaneously present as inorganic fillers, the calcium carbonate is present in an amount of 0.1 to 9% by weight relative to the weight of components i) to vi).

[0029] In the composition according to the invention, one or more other components may advantageously be present in addition to the above-mentioned components i) to vi), in which case the composition comprises components i) to vi) and preferably one or more polymers of synthetic or natural origin (biodegradable or not) other than components i) to iv), and optionally one or more other components. As regards the polymers (biodegradable or not) other than components i) to iv) of synthetic or natural origin, these are advantageously selected from the group consisting of vinyl polymers, diacid-diol polyesters other than polyester i), polyamides, polyurethanes, polyethers, polyureas, polycarbonates and mixtures thereof. Of the vinyl polymers, preferred are polyethylene, polypropylene and copolymers thereof, polyvinyl alcohol, polyvinyl acetate, polyethylvinyl acetate and polyethylenevinyl alcohol, polystyrene, chlorinated vinyl polymers, and polyacrylates. In addition to polyvinyl chloride, chlorinated vinyl polymers are understood herein to include polyvinylidene chloride, poly(vinyl chloride-vinyl acetate), poly(vinyl chloride-ethylene), poly(vinyl chloride-propylene), poly(vinyl chloride-styrene), poly(vinyl chloride-isobutylene), and copolymers in which polyvinyl chloride accounts for 50 mol % or more. The copolymers may be random, block, or alternating copolymers.

[0030] As regards the polyamides of the composition according to the invention, these are preferably selected within the group consisting of polyamides 6 and 6,6, polyamides 9 and 9,9, polyamides 10 and 10,10, polyamides 11 and 11,11, polyamides 12 and 12,12, and combinations thereof of the 6 / 9, 6 / 10, 6 / 11, 6 / 12 type, blends and copolymers thereof (both random and block copolymers). Preferably, the polycarbonate of the composition according to the invention is selected from the group consisting of polyalkylene carbonates, more preferably polyethylene carbonate, polypropylene carbonate, polybutylene carbonate, mixtures and copolymers thereof (both random and block copolymers). Of the polyethers, preferred are those selected from the group consisting of polyethylene glycol, polypropylene glycol, polybutylene glycol, copolymers and mixtures thereof, each having a molecular weight of 70,000 to 500,000.

[0031] As regards the diacid-diol polyesters other than polyester i), these are preferably those selected from the following: g) The following: g1) 20 to 100 mol % of units derived from at least one aromatic dicarboxylic acid; g2) 0 to 80 mol % of units derived from at least one saturated aliphatic dicarboxylic acid; g3) 0 to 5 mol % of units derived from at least one unsaturated aliphatic dicarboxylic acid; Dicarboxylic acid components containing, with respect to the total dicarboxylic acid components, h) The following: h1) 95 to 100 mol % of units derived from at least one saturated aliphatic diol; h2) 0 to 5 mol % of units derived from at least one unsaturated aliphatic diol Diol components containing, with respect to all diol components, Includes. Preferably, the aromatic dicarboxylic acids g1), saturated aliphatic dicarboxylic acids g2), unsaturated aliphatic dicarboxylic acids g3), saturated aliphatic diols h1) and unsaturated aliphatic diols h2) for the polyesters are selected from those described above for the polyesters i) of the compositions according to the invention.

[0032] In addition to the above-mentioned components, the composition according to the present invention preferably also contains at least one further component selected from the group consisting of plasticizers, UV stabilizers, lubricants, nucleating agents, surfactants, antistatic agents, pigments, flame retardants, compatibilizers, lignin, organic acids, antioxidants, antifungal agents, waxes, processing aids, and polymer components (preferably polymer components selected from the group consisting of vinyl polymers, diacid-diol polyesters other than the above-mentioned aliphatic-aromatic polyesters, polyamides, polyurethanes, polyethers, polyureas, and polycarbonates). When considering plasticizers, in addition to the plasticizers preferably used in the preparation of the destructurized starch as described above, the composition according to the present invention may contain phthalates (e.g., diisononyl phthalate), trimellitates (e.g., trimellitic acid esters with C4-C20 monoalcohols, preferably selected from the group consisting of n-octanol and n-decanol), and esters of the following structure: R1-OC(O)-R4-C(O)-[-O-R2-OC(O)-R5-C(O)-]zO-R3 (In the formula: R1 is selected from one or more of the group consisting of H, C1-C24 linear and branched saturated and unsaturated alkyl residues, and polyol residues esterified with C1-C24 monocarboxylic acids; R2 comprises -CH2-C(CH3)2-CH2- groups and C2-C8 alkylene groups, and consists of at least 50 mol% -CH2-C(CH3)2-CH2- groups; R3 is selected from one or more of the group consisting of H, C1-C24 linear and branched saturated and unsaturated alkyl residues, and polyol residues esterified with C1-C24 monocarboxylic acids; R4 and R5 are the same or different and comprise one or more C2-C22, preferably C2-C11, more preferably C4-C9 alkylenes, with at least 50 mol% C7 alkylenes; z is an integer of 1 to 20, preferably 2 to 10, more preferably 3 to 7. The composition contains one or more plasticizers selected from the group consisting of aliphatic esters having the formula:

[0033] Preferably, in the esters, at least one of the R1 and / or R3 groups comprises the residue of a polyol esterified with at least one C1-C24 monocarboxylic acid selected from the group consisting of stearic acid, palmitic acid, 9-ketostearic acid, 10-ketostearic acid, and mixtures thereof, preferably in an amount of 10 mol % or more, more preferably 20 mol % or more, and even more preferably 25 mol % or more, relative to the total amount of R1 and / or R3 groups. Examples of this type of aliphatic esters are described in Italian patent application MI2014A000030 and international applications WO2015 / 104375 and WO2015 / 104377. If present, the selected plasticizer is preferably present in an amount of up to 10% by weight relative to the total weight of the composition.

[0034] The lubricants are preferably chosen from metal esters and salts of fatty acids, such as zinc stearate, calcium stearate, aluminum stearate and acetyl stearate. Preferably, the composition according to the invention comprises up to 1% by weight, more preferably up to 0.5% by weight, of lubricants relative to the total weight of the composition. Examples of nucleating agents include saccharin sodium salt, calcium silicate, sodium benzoate, calcium titanate, boron nitride, isotactic polypropylene, and low molecular weight PLA. Slip agents are, for example, biodegradable fatty acid amides (eg oleamide, erucamide, ethylene-bis-stearylamide), fatty acid esters (eg glycerol oleate or glycerol stearate), saponified fatty acids (eg stearates). These additives are preferably added in an amount of up to 10% by weight, more preferably from 2 to 6% by weight, relative to the total weight of the composition.

[0035] If desired, pigments such as titanium dioxide, clay, copper phthalocyanine, titanium dioxide, silicates, iron oxides and hydroxides, carbon black, and magnesium oxide may also be added, preferably in amounts up to 10% by weight. The compositions according to the invention are highly suitable for use in many practical applications for the production of products characterized by a high degree of disintegration at low temperatures accompanied by very good mechanical properties, such as films, preferably blown films and multilayer films. Preferably, the disintegration of the film comprising the composition according to the invention occurs at a temperature of 28°C ± 2°C during home composting, and the degree of disintegration is determined visually by periodic observation. Preferably, the film comprising the composition according to the invention is no longer visible after 180 days.

[0036] Due to their high disintegration rate at low temperatures and very good mechanical properties, films containing the compositions according to the invention are used for the production of mulch films that effectively protect the soil (e.g., prevent weed growth and reduce water consumption) but do not need to be removed at the end of their use. Preferably, the disintegration of the film comprising the composition according to the invention occurs in soil at a temperature of 28°C ± 2°C, and the degree of disintegration is determined visually by periodic observation. Preferably, the film comprising the composition according to the invention is no longer visible after 120 days, more preferably after 90 days of disintegration. Films produced using the compositions according to the invention are biodegradable according to EN 13432. Preferably, the films are biodegradable in home composting according to UNI 11355 and in soil according to EN 17033.

[0037] The films produced using the composition according to the invention advantageously have a thickness of less than or equal to 40 μm, preferably less than or equal to 30 μm, and even more preferably less than or equal to 15 μm. When considering the mechanical properties, the films produced using the compositions according to the invention have a tensile strength of at least 15 MPa, preferably at least 20 MPa, an elongation at break of at least 200%, and a modulus of elasticity of at least 200 MPa, determined according to the method of ASTM standard D882 (tensile properties at 23°C, 55% relative humidity, Vo=50 mm / min). Preferably, films produced using the compositions according to the invention are characterized by a machine direction tear strength of 80 N / mm or more and a transverse direction tear strength of 150 N / mm or more (determined according to ASTM D1922 method at 23°C and 55% relative humidity). The compositions according to the invention may be advantageously used in cast extrusion processes. The compositions according to the invention also find application in the agricultural textile sector.

[0038] The present invention also relates to an article comprising a composition according to the invention. Examples of products containing the composition according to the invention are: - films (both uniaxially and biaxially oriented) and multilayer films with other polymeric materials; - Films used as mulch films in the agricultural field; - Fabrics for use in the agricultural sector as agricultural textiles; - Films for use in the hygiene sector, for example for diapers, tampon liners, etc.; - Stretch film and cling film for packaging in the food and agricultural sector and waste packaging; - Bags and liners for organic matter collection, such as food waste and grass clippings collection; - Vegetable and fruit bags and shopping bags; - Composites with gelatinized, decomposed and / or composite starch, native starch, flour and other natural, vegetable or inorganic fillers. The present invention will be described using several embodiments, which should be understood as examples and not as limiting the scope of protection of this patent application. [Example]

[0039] Working Example: Example 1 Preparation of the components of the polymer mixture according to the invention Component i) ia = Poly(1,4-butylene adipate-co-1,4-butylene terephthalate) ("PBAT") prepared according to the following method: At a diol / dicarboxylic acid (MGR) molar ratio of 1.40, 7453 g of terephthalic acid, 7388 g of adipic acid, 12033 g of 1,4-butanediol, 4.4 g of glycerin, and 3.4 g of an 80 wt. % solution of diisopropyltriethanolamine titanate in ethanol (Tyzor TE, containing 8.2 wt. % titanium) were charged into a 60-liter steel reactor equipped with a mechanical stirring system, a nitrogen inlet, a distillation column, a knockdown system for high-boiling distillates, and a connection to a high-vacuum system. The temperature of the mass was gradually increased to 230°C over 120 minutes. When 95% of the theoretical water had been distilled, 17.0 g of tetra-n-butyl titanate was added (corresponding to 119 ppm of metals relative to the amount of poly(1,4-butylene adipate-co-1,4-butylene terephthalate) theoretically obtained by converting all the adipic acid and terephthalic acid fed to the reactor). The reactor temperature was then increased to 235-240 °C, and the pressure was gradually reduced to 2 mbar or less within 60 minutes. The reaction was allowed to proceed for the time required to obtain poly(1,4-butylene adipate-co-1,4-butylene terephthalate) with an MFR of approximately 6.5 g / 10 min (190 °C, 2.16 kg), after which the material was discharged in rod form into a water bath and granulated.

[0040] ib = Poly(1,4-butylene sebacate-1,4-butylene terephthalate-co-1,4-butylene furan-2,5-dicarboxylate) ("PBSTF") prepared according to the following method: At a diol / dicarboxylic acid (MGR) molar ratio of 1.40, 6414 g of terephthalic acid, 2009 g of 2,5-furandicarboxylic acid, 6939 g of sebacic acid, 10820 g of 1,4-butanediol, 3.95 g of glycerin, and 3.4 g of an 80 wt. % solution of diisopropyltriethanolamine titanate in ethanol (Tyzor TE, containing 8.2 wt. % titanium) were charged into a 60-liter steel reactor equipped with a mechanical stirring system, a nitrogen inlet, a distillation column, a knockdown system for high-boiling distillates, and a connection to a high-vacuum system. The temperature of the mass was gradually increased to 235°C over 120 minutes. When 95% of the theoretical water had been distilled, 17.0 g of tetra-n-butyl titanate was added (corresponding to 119 ppm of metals relative to the amount of poly(1,4-butylene sebacate-1,4-butylene terephthalate-co-1,4-butylene furan-2,5-dicarboxylate) theoretically obtained by converting all of the sebacic acid, 2,5-furandicarboxylic acid, and terephthalic acid fed to the reactor). The reactor temperature was then increased to 235-240 °C, and the pressure was gradually reduced to below 2 mbar within 60 minutes. The reaction was allowed to proceed for the time required to obtain poly(1,4-butylene sebacate-co-1,4-butylene terephthalate-co-1,4-butylene furan-2,5-dicarboxylate) with an MFR of approximately 22 g / 10 min (190 °C, 2.16 kg), after which the material was discharged into a water bath in the form of a rod and granulated.

[0041] Component ii) ii = native corn starch and plasticizer (75.7 wt% native corn starch, 12.3 wt% polyglycerol and 12.0% added water). ingredient iii) iii = Polyhydroxybutyrate-valerate ("PHBV") Enmat Y1000P, MFR (190°C, 2.16 kg) = 14.4 g / 10 min, which contains 1.6 mol% of 3 hydroxyvalerate units. Ingredient iv) iv = Polylactic acid ("PLA") Luminy LX175, MFR (190°C, 2.16 kg) = 3.5 / 10 min Ingredients v) Styrene-glycidyl ether-methyl methacrylate copolymer with a molecular weight Mw of approximately 14,000 and an epoxy group equivalent of 420 g / eq vb = HMV-15CA Carbodilite manufactured by Nisshinbo Chemical Co., Ltd.

[0042] Example 2 Granule characterization, filming process and mechanical property evaluation The compositions shown in Table 1 were fed into a twin-screw APV2030 co-rotating extruder (L / D=40; diameter 30 mm) operated under the following conditions: - rpm:170 - Production capacity: 10kg / h - Temperature profile 30 - 90 - 140 - 150 - 200 x 9 - 170 x 3°C - Release degassing The granules thus obtained exhibited the MFR values ​​(190°C; 2.16 kg) shown in Table 2 in accordance with ISO 1133-1 "Plastics - Determination of the melt mass-flow rate (MFR) and melt volume flow rate (MVR) of thermoplastics - Part 1: Standard method." The granules thus obtained were fed into a Ghioldi model bubble film machine equipped with a 40 mm diameter screw (L / D 30) operating at 64 rpm with a temperature profile of 120-140-180 x 2. The film-forming head with an air gap of 0.9 mm and an L / D of 12 was set at 155 °C. Film formation was carried out at a blow ratio of 3 and a stretch ratio of 14, resulting in a film with a thickness of 20 μm. The film was then subjected to mechanical characterization (film tensile strength according to ASTM D882, 23 °C, 55% relative humidity - Vo 50 mm / min). Tear strength testing was carried out according to ASTM D1922 (23 °C and 55% relative humidity).

[0043] Example 3 Film Decomposition Process Decomposition under home composting conditions was carried out according to UNI standard 11355 App, while decomposition in soil was carried out according to ISO 17556 using fertile soil and compost at a temperature of 28 ± 2°C. In each case, the degree of disintegration of films containing the compositions according to the invention was measured by inserting a 5 x 5 cm sample into a slide. The slide was placed on a first layer of soil or compost (depending on the test) of approximately 4 cm, and then covered with a second layer of soil or compost of approximately 2 cm. The slide was periodically inspected and photographed to determine the degree of disintegration. The degree of disintegration was assigned according to an empirical scale. - Disintegration degree gd=0 No change in the film. - Disintegration degree gd=1 The film has a very small number (1-2) of holes - tears, etc. - Disintegration degree gd=2: The film is extensively torn, but the structure is maintained. - Degradation level gd=3: The film has decomposed areas and extensive damage, losing its structure. - Disintegration degree gd=4 Film with only a small amount of residue that is difficult to recover. - Degree of disintegration gd=5 The film has completely disintegrated and is no longer visible.

[0044] Example 4 Composition Description In addition to that described in Example 1, different polymer compositions according to the invention and different comparative compositions were prepared. Table 1 lists the various compositions that were subsequently fed into the extruder. [Table 1] 0.24% by weight of a processing adjuvant, Atmer SA 1753, relative to the total of components i) to vi) was added to all compositions. Table 2 lists the rheological properties of the compositions and the moisture content of the granules as a weight percent based on the total composition after the extrusion process. [Table 2]

[0045] Example 5 Mechanical property test results The different compositions described in Example 4 were tested as described in Example 2. The results are shown in Table 3. [Table 3] As can be seen, the compositions according to the invention not only show a general improvement in the mechanical properties, but also have a surprisingly improved effect on the tear strength of the film in the transverse direction.

[0046] Example 6 Film disintegration test results The different compositions described in Example 4 were tested as described in Example 3. The results are shown in Tables 4 and 5. [Table 4] [Table 5] As can be seen, the compositions according to the invention have a considerable effect on disintegration kinetics.

Claims

1. For the entire composition: i) 50 to 85% by weight, relative to the sum of components i) to iv), of at least one polyester, a) With respect to the total dicarboxylic acid component: a1) 30 to 70 mol % of units derived from at least one aromatic dicarboxylic acid; a2) 70 to 30 mol % of units derived from at least one saturated aliphatic dicarboxylic acid; a3) 0 to 5 mol % of units derived from at least one unsaturated aliphatic dicarboxylic acid a dicarboxylic acid component comprising b) With respect to the total diol component: b1) 95 to 100 mol % of units derived from at least one saturated aliphatic diol; b2) 0 to 5 mol % of units derived from at least one unsaturated aliphatic diol Diol component containing polyesters containing ii) 5 to 40% by weight, relative to the sum of components i) to vi), of at least one polymer of natural origin; iii) 0.1 to 10 wt. % of a polyhydroxyalkanoate, based on the sum of components i) to vi), selected from polyhydroxybutyrate-valerate (PHBV), polyhydroxybutyrate-propanoate, polyhydroxybutyrate-hexanoate (PHBH), polyhydroxybutyrate-decanoate, polyhydroxybutyrate-dodecanoate, polyhydroxybutyrate-hexadecanoate, polyhydroxybutyrate-octadecanoate, and poly3-hydroxybutyrate-4-hydroxybutyrate, and wherein the hydroxybutyrate comonomer is 95 mol % or more, based on the sum of all comonomers; iv) 0 to 3% by weight, relative to the sum of components i) to vi), of at least one polyester of lactic acid; v) 0 to 1 wt. % or 0 to 0.5 wt. %, relative to the sum of components i) to vi), of at least one crosslinker and / or chain extender and / or hydrolysis stabilizer, comprising at least one compound having two or more functional groups, including isocyanate groups, peroxide groups, carbodiimide groups, isocyanurate groups, oxazoline groups, epoxide groups, anhydride groups and divinyl ether groups, and combinations thereof; vi) 0 to 15% by weight of at least one inorganic filler relative to the sum of components i) to vi). A polymer composition comprising:

2. 2. The polymer composition according to claim 1, wherein the aromatic dicarboxylic acid (component a1) is selected from aromatic dicarboxylic acids of the phthalic acid type; heterocyclic dicarboxylic aromatic compounds; their esters and salts; and mixtures thereof.

3. 3. The polymer composition according to claim 2, wherein the aromatic dicarboxylic acid of the phthalic acid type is terephthalic acid or isophthalic acid, and the heterocyclic dicarboxylic aromatic compound is 2,5-furandicarboxylic acid, 2,4-furandicarboxylic acid, 2,3-furandicarboxylic acid or 3,4-furandicarboxylic acid.

4. 4. A polymer composition according to claim 2, wherein said aromatic dicarboxylic acid of the phthalic acid type is terephthalic acid.

5. Aromatic dicarboxylic acids - 1 to 99 mol%, 5 to 95 mol% or 10 to 80% mol of terephthalic acid, its esters or salts; - 99 to 1 mol%, 95 to 5 mol%, or 90 to 20 mol% of 2,5-furandicarboxylic acid, its esters, or salts 3. The polymer composition of claim 2, comprising:

6. 2. The polymer composition according to claim 1, wherein the saturated aliphatic dicarboxylic acid (component a2) of the aliphatic-aromatic polyester i) is selected from C2-C24, C4-C13 or C4-C11 saturated dicarboxylic acids, their C1-C24 or C1-C4 alkyl esters and salts, and mixtures thereof.

7. 5. The polymer composition according to claim 4, wherein the saturated aliphatic dicarboxylic acid (component a2) of the aliphatic-aromatic polyester i) is selected from succinic acid, 2-ethylsuccinic acid, glutaric acid, 2-methylglutaric acid, adipic acid, pimelic acid, suberic acid, azelaic acid, sebacic acid, undecanedioic acid, dodecanedioic acid, brushic acid and their C1-C24 alkyl esters, and mixtures thereof.

8. 2. The polymer composition according to claim 1, wherein the saturated aliphatic diol (component b1) of the aliphatic-aromatic polyester is selected from 1,2-ethanediol, 1,2-propanediol, 1,3-propanediol, 1,4-butanediol, 1,5-pentanediol, 1,6-hexanediol, 1,7-heptanediol, 1,8-octanediol, 1,9-nonanediol, 1,10-decanediol, 1,11-undecanediol, 1,12-dodecanediol, 1,13-tridecanediol, 1,4-cyclohexanedimethanol, neopentyl glycol, 2-methyl-1,3-propanediol, dianhydrosorbitol, dianhydromannitol, dianhydropyriditol, cyclohexanediol, cyclohexanemethanediol, dialkylene glycols, and polyalkylene glycols having a molecular weight of 100 to 4000, and mixtures thereof.

9. 9. The polymer composition of claim 8, wherein the polyalkylene glycol having a molecular weight of 100 to 4000 is selected from polyethylene glycol and polypropylene glycol.

10. 2. The polymer composition of claim 1, wherein the saturated aliphatic diol (component b1) of the aliphatic-aromatic polyester comprises at least 50 mol % of one or more diols selected from 1,2-ethanediol, 1,3-propanediol, 1,4-butanediol.

11. Aliphatic-aromatic polyesters i) are poly(1,4-butylene adipate-co-1,4-butylene terephthalate), poly(1,4-butylene succinate-co-1,4-butylene terephthalate), poly(1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene terephthalate), poly(1,4-butylene brassylate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene undecanoate-co-1,4-butylene terephthalate), poly(1,4-butylene dodecanoate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene azelate-co-1,4-butylene terephthalate) 2. The polymer composition of claim 1, wherein the polymer is selected from poly(1,4-butylene succinate-co-1,4-butylene sebacate-co-1,4-butylene terephthalate), poly(1,4-butylene adipate-co-1,4-butylene succinate-co-1,4-butylene terephthalate), poly(1,4-butylene azelate-co-1,4-butylene succinate-co-1,4-butylene terephthalate), and mixtures thereof.

12. 2. The polymer composition of claim 1, wherein the aliphatic-aromatic polyester i) comprises repeat units derived from at least one hydroxy acid in an amount of 0 to 49 mol % or 0 to 30 mol % relative to the total moles of dicarboxylic acid components.

13. 2. The polymer composition of claim 1, wherein the polyester i) has a molecular weight Mn of 20,000 or more, a polydispersity index Mw / Mn of molecular weights between 1.5 and 10, and an intrinsic viscosity of 0.3 dl / g or more, measured using an Ubbelohde viscometer on a solution of 0.2 g / dl in CHCl at 25°C.

14. 10. The polymer composition of claim 1, wherein the content of polyester terminal acid groups i) is at most 100 meq / kg, at most 60 meq / kg, or at most 40 meq / kg.

15. 2. The polymer composition according to claim 1, wherein the polymer of natural origin of component ii) is selected from starch, chitin, chitosan, alginates and proteins.

16. 2. The polymer composition of claim 1, wherein the component ii) polymer of natural origin is selected from gluten, zein, casein, collagen, gelatin, natural gums, cellulose and pectin.

17. 2. The polymer composition of claim 1, wherein the polyhydroxyalkanoate is polyhydroxybutyrate-valerate (PHBV).

18. 2. The polymer composition of claim 1, wherein the polyester of lactic acid (component iv) is present in an amount of 0 to 2.9 wt. %, 0 to 2.5 wt. %, 0 to 2 wt. %, or 0 to 1 wt. % relative to the sum of components i) to vi).

19. 2. The polymer composition of claim 1, wherein the crosslinking agent and / or chain extender is a mixture of a compound having two or more functional groups containing an isocyanate group and a compound having two or more functional groups containing an epoxy group.

20. 20. The polymer composition of claim 19, wherein the mixture comprises at least 75% by weight of compounds having two or more functional groups, including isocyanate groups.

21. 2. The polymer composition of claim 1, wherein the inorganic filler (component vi) is selected from kaolin, barite, clay, talc, calcium and magnesium carbonates, iron and lead carbonates, aluminum hydroxide, diatomaceous earth, aluminum sulfate, barium sulfate, silica, mica, titanium dioxide, wollastonite, and mixtures thereof.

22. 2. The polymer composition according to claim 1, which comprises, in addition to components i) to vi), one or more polymers of synthetic or natural origin other than the biodegradable and non-biodegradable components i) to iv).

23. 10. The polymer composition of claim 1, comprising, in addition to components i) through vi), a plasticizer, a UV stabilizer, a lubricant, a nucleating agent, a surfactant, an antistatic agent, a pigment, a flame retardant, a compatibilizer, lignin, an organic acid, an antioxidant, a mildewcide, a wax, a processing aid, and a polymer component.

24. 24. The polymer composition of claim 23, wherein the polymer component is selected from the group consisting of vinyl polymers, diacid-diol polyesters other than the aliphatic-aromatic polyesters described above, polyamides, polyurethanes, polyethers, polyureas, and polycarbonates.

25. A film comprising the polymer composition according to one or more of claims 1 to 24.

26. 26. The film of claim 25, having a thickness of 40 μm or less, 30 μm or less, or 15 μm or less.

27. 26. The film of claim 25, having a tensile strength of 15 MPa or more or 20 MPa or more, an elongation at break of 200% or more, and a modulus of elasticity of 200 MPa or more, measured according to standard method ASTM D882 (tensile properties at 23°C, 55% relative humidity and V = 50 mm / min).

28. 26. The film of claim 25, characterized by a machine direction tear strength of 80 N / mm or more and a transverse direction tear strength of 150 N / mm or more (measured according to ASTM D1922 at 23°C and 55% relative humidity).

29. - uniaxially and biaxially stretched films and multilayer films with other polymeric materials; - Films used in the agricultural sector as mulch films; - Fabrics for use in the agricultural sector as agricultural textiles; - Stretch films, including cling films, for food, agricultural packaging and waste packaging; - Films used in hygiene applications, such as diapers, liners or tampons 26. The film of claim 25 selected from:

30. - Bags and liners for collecting organic matter; - Vegetable and fruit bags and shopping bags; - Gelatinised, broken and / or composite starch, native starch, wheat flour or its mixtures with other natural, vegetable or inorganic fillers as fillers 25. An article made with the polymer composition according to one or more of claims 1 to 24, selected from:

31. 31. The article of claim 30, wherein the organic matter collection is food waste or grass clippings collection.

Citation Information

Patent Citations

  • Bio-based biodegradable plastic bag material

    CN104194289A

  • Blends of Aliphatic-Aromatic Copolyesters and Cellulose Esters / Polymers

    JP1994504558A

  • Biodegradable polymer mixture

    JP2012504166A

  • Biodegradable polymer composition

    JP2012507614A

  • Biodegradable polyester film

    JP2014523962A