Biodegradable resin composition, and biodegradable film and biodegradable mulching film each using the biodegradable resin composition

A biodegradable resin composition using biomass and PHA resin addresses the limitations of existing mulching films by enhancing mechanical properties and biodegradability, ensuring effective soil and ocean degradation, and improving soil fertility.

JP7763930B2Active Publication Date: 2025-11-04CJ CHEILJEDANG CORP
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Patent Information

Application Number
JP2024504210
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-07-30
Filing Date
2022-07-27
Publication Date
2025-11-04
Estimated Expiration
2042-07-27

AI Technical Summary

Technical Problem

Existing biodegradable mulching films face challenges with high material costs, limited mechanical properties, rapid chemical degradation leading to soil contamination, and difficulty in adjusting biodegradation rates to match crop growth periods, along with issues of tearing and poor flexibility.

Method used

A biodegradable resin composition comprising biomass and polyhydroxyalkanoate (PHA) resin, which improves tensile strength, elongation, flexibility, and impact resistance, and is biodegradable in both soil and ocean, with enhanced compatibility through epoxidized biomass.

Benefits of technology

The composition results in biodegradable films and mulching films with improved mechanical properties, biodegradability, and soil improvement effects, reducing environmental impact and cost while maintaining excellent quality and durability.

✦ Generated by Eureka AI based on patent content.

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Abstract

One embodiment of the present invention provides a biodegradable resin composition containing biomass and a polyhydroxyalkanoate (PHA) resin, a biodegradable film and a mulching film formed using the biodegradable resin composition, and a method for preparing the biodegradable resin composition. The biodegradable resin composition according to one embodiment contains a specific component, which can improve the tensile strength, elongation, flexibility, and impact resistance of a film formed from the biodegradable resin composition, and can be applied to various fields due to its biodegradability in both soil and ocean, and can exhibit excellent properties when used effectively as a mulching film.
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Description

[Technical Field]

[0001] The present invention relates to a biodegradable resin composition, and a biodegradable film and a biodegradable mulching film that use the biodegradable resin composition. [Background technology]

[0002] Mulching film is a film that covers the surface of crop fields, such as between rows, when cultivating crops. Due to its various functions, such as suppressing water evaporation, suppressing weed growth, and preventing the loss of fertilizer components in the soil, the use of mulching film continues to increase, and mulching film is making a significant contribution to increasing agricultural productivity.

[0003] However, since mulching films are left in the soil after use due to the difficulty of recovery or recycling, they are recognized as a significant pollutant of the rural environment.

[0004] Currently, aliphatic polyesters such as polybutylene adipate terephthalate (PBAT) are widely used as materials for biodegradable mulching films. In recent years, active research has been conducted to improve the physical properties of biodegradable polyesters, such as the mechanical strength and hydrolysis properties of the films, by using various biodegradable polyesters.

[0005] However, although PBAT has excellent mechanical properties and moldability, its use is limited due to the high cost of its raw materials, similar to other biodegradable polymer resins. Furthermore, although PBAT is easily and rapidly degraded by chemical hydrolysis, terephthalate is a regulated hazardous substance and may cause soil contamination and the formation of endocrine disrupters.

[0006] Furthermore, biodegradable mulching films using biodegradable materials such as PBAT and polylactic acid (PLA) have also been developed.

[0007] However, it is not easy to adjust the biodegradation rate taking into account the growing period of crops, and the quality is poor because biodegradable mulching films are prone to tearing due to their low strength and flexibility. Furthermore, biodegradable mulching films are expensive, making them difficult to use widely.

[0008] Therefore, there is an urgent need to develop a biodegradable mulching film that has excellent mechanical properties such as strength and flexibility, and biodegradability while minimizing the problems of soil contamination and the formation of environmental hormones. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] Korean Patent No. 1294346

[0010] [DISCLOSURE OF THE INVENTION] [Technical issue] An object of the present invention is to provide a biodegradable resin composition that can improve mechanical properties such as tensile strength, elongation, flexibility, and impact resistance, and at the same time is biodegradable in both soil and the ocean.

[0011] Another object of the present invention is to provide a biodegradable film formed from the biodegradable resin composition and a method for preparing the biodegradable film.

[0012] Another object of the present invention is to provide a biodegradable mulching film that is formed from a biodegradable resin composition, is biodegradable in both soil and the ocean, has the above-mentioned excellent mechanical properties, and has various functions such as soil improvement, suppression of water evaporation, and suppression of weed growth.

[0013] [Problem Solution] The present invention provides a biodegradable resin composition comprising biomass and a polyhydroxyalkanoate (PHA) resin.

[0014] Additionally, the present invention provides a biodegradable film comprising biomass and a polyhydroxyalkanoate (PHA) resin.

[0015] Additionally, the present invention provides a method for preparing a biodegradable film, comprising the steps of (1) melt-extruding biomass and a polyhydroxyalkanoate (PHA) resin to prepare biodegradable pellets, and (2) molding the biodegradable pellets.

[0016] Furthermore, the present invention provides a biodegradable mulching film formed from the biodegradable resin composition.

[0017] [Advantageous effects of the invention] Since the biodegradable resin composition according to the embodiment contains biomass and a polyhydroxyalkanoate (PHA) resin, films formed from the biodegradable resin composition can have improved mechanical properties such as tensile strength, elongation, flexibility, and impact resistance, and films using this biodegradable resin composition are biodegradable in both soil and the ocean. Therefore, the biodegradable resin composition can be applied to a wider variety of fields and exhibits excellent properties.

[0018] In particular, when the biomass includes epoxidized biomass, the compatibility can be further improved, the biodegradation rate can be further increased, and the cost of the biodegradable film and mulching film can be improved.

[0019] Therefore, according to one embodiment of the present invention, it is possible to use a biodegradable resin composition to provide biodegradable films and mulching films that can be biodegraded in both soil and the ocean, and at the same time have excellent quality with improved thermal and mechanical properties. [Brief explanation of the drawings]

[0020] [Figure 1] 1 shows a flow chart of a process for preparing a biodegradable film according to one embodiment of the present invention. BEST MODE FOR CARRYING OUT THE INVENTION

[0021] The present invention will now be described in more detail.

[0022] The embodiments are not limited to the following, but may be modified in various ways without departing from the spirit of the present invention.

[0023] Throughout this specification, when a part is referred to as "comprising" an element, it is understood that other elements may be included, rather than excluding other elements, unless otherwise specified.

[0024] Furthermore, all numbers expressing physical properties, dimensions, and the like of elements used herein should be understood to be modified by the term "about" unless otherwise indicated.

[0025] Throughout this specification, terms such as first, second, etc. are used to describe various components. However, the components should not be limited by the terms. These terms are used only to distinguish one component from another.

[0026] [Biodegradable resin composition] A biodegradable resin composition according to one embodiment of the present invention comprises biomass and a polyhydroxyalkanoate (hereinafter referred to as PHA) resin.

[0027] Since the biodegradable resin composition contains biomass and a PHA resin, it is possible to improve mechanical properties such as tensile strength, elongation, flexibility, and impact resistance, and biodegradable films and mulching films formed from the biodegradable resin composition are biodegradable in both soil and the ocean, and are tear-resistant due to their excellent strength and flexibility. Therefore, the films can exhibit excellent quality and lifespan characteristics.

[0028] In particular, according to one embodiment, the present invention has technical significance in that the use of biomass brings about soil improvement effects such as improved fertilizer and increased soil fertility, and that the compatibility between biomass and PHA is excellent, thereby improving crosslinking ability and enabling the desired effects of the present invention to be efficiently achieved.

[0029] Each component of the biodegradable resin composition will be described in detail below.

[0030] biomass The biodegradable resin composition according to one embodiment of the present invention contains biomass.

[0031] Since the biodegradable resin composition contains biomass, it is possible to improve biodegradability and improve soil. That is, biomass has excellent biodegradability, is easily crushed when not decomposed, improves fertilizer, and increases soil strength, thereby providing soil improvement effects.

[0032] Biomass that can be used in accordance with one embodiment of the present invention is of plant origin and can include natural products derived from various categories of plants.

[0033] The biomass may include at least one selected from the group consisting of natural materials derived from herbs and natural materials derived from wood, as well as lignin, cellulose, and biological by-products as constituents thereof.

[0034] Specifically, the biomass may include natural materials derived from herbs including at least one selected from the group consisting of rice straw, barley straw, wheat straw, rice husks, corn stalks and leaves, soybean stalks, bean pods, onion stalks, sweet potato stalks, pine needles, and coffee grounds.

[0035] Biomass can include natural wood-derived materials of softwood and hardwood trees, including at least one selected from the group consisting of poplar, willow, silver maple, cottonwood, green ash, black walnut, cedar, and sycamore.

[0036] Additionally, biomass can include a variety of sources, including grain grains and straw and castor seeds for extraction of ricinoleic acid; crops such as corn starch, corn oil, soybean oil, soybean flour, wheat bran, and other vegetable oils; aquatic resources such as algae, macroalgae, seaweed, and marine microorganisms; agricultural crop residues such as corn cobs, wheat straw, and rice straw; and industrial crops such as waste and energy from other farm or meat processing operations.

[0037] Additionally, biomass can include components of plant origin, such as lignin, cellulose, or combinations thereof.

[0038] Additionally, the biomass may include biological by-products derived from plant sources, such as at least one selected from the group consisting of coffee grounds, soybean husks, corn husks, and corn cobs.

[0039] Biomass may contain hydroxyl groups (OH groups) as functional groups on its surface.

[0040] According to one embodiment of the present invention, the biomass may comprise epoxidized surface-modified biomass.

[0041] The binding properties of biomass are improved by the epoxidation process, which can increase the molecular weight and content of the biomass.

[0042] The biomass may include biomass containing epoxidized hydroxyl groups (OH groups), which has excellent compatibility with PHA resins containing hydroxyl groups (OH groups), and can be easily mixed with each other while having excellent bond strength due to crosslinking.

[0043] Generally, non-epoxidized biomass such as cellulose and lignin contains hydroxyl groups (OH groups), but the biomass is difficult to melt when heat is applied, which makes it difficult to disperse, and the biomass exists in a solid state, which makes it difficult to mix with the PHA resin. Due to this problem, the physical properties of the film deteriorate as the biomass content increases.

[0044] In the present invention, it is very important to use biomass having epoxidized hydroxyl groups (OH groups), which can further improve the compatibility with PHA resins having the same functional groups (OH groups), making mixing with the PHA resin easier, and further improve the physical properties of the biodegradable film because it is crosslinked with the PHA resin.

[0045] Furthermore, epoxidized biomass can further improve elongation and tensile strength during film production compared to non-epoxidized biomass (e.g., non-epoxidized lignin, hydrochloric acid saccharified lignin, non-epoxidized herbal enzyme saccharified lignin).

[0046] The epoxidized biomass can contain 1 to 20 moles or 5 to 10 moles of epoxy functional groups based on one equivalent of hydroxyl groups (OH groups) of the epoxidized biomass.

[0047] The epoxidation treatment will be described later.

[0048] The biomass may be used in an amount of 10 to 50% by weight based on the total weight of the biodegradable resin composition. Specifically, the biomass content may be, for example, 15 to 50% by weight, for example, 15 to 45% by weight, for example, 15 to 40% by weight, for example, 15 to 35% by weight, for example, 17 to 50% by weight, for example, 17 to 45% by weight, for example, 17 to 40% by weight, for example, 17 to 35% by weight, for example, 17 to 30% by weight, for example, 20 to 50% by weight, for example, 20 to 45% by weight, or for example, 20 to 40% by weight.

[0049] When the biomass content satisfies the above range, biodegradability is further improved, soil improvement effects are achieved, and crosslinking strength with the PHA resin is improved, thereby making it possible to effectively achieve the desired effects of the present invention.

[0050] Polyhydroxyalkanoate (PHA) resin A biodegradable resin composition according to one embodiment of the present invention contains a PHA resin.

[0051] PHA resins have physical properties similar to those of conventional petroleum-derived synthetic polymers such as polybutylene adipate terephthalate (PBAT), polybutylene succinate (PBS), polybutylene succinate terephthalate (PBST), and polybutylene succinate adipate (PBSA), and are completely biodegradable and have excellent biocompatibility.

[0052] Specifically, PHA resin is a natural thermoplastic polyester polymer that accumulates within microbial cells. Because natural thermoplastic polyester polymers are biodegradable materials, they can be composted and ultimately decomposed into carbon dioxide, water, and organic waste without generating harmful waste. In particular, PHA resins are biodegradable in soil and the ocean. Therefore, when a biodegradable resin composition contains a PHA resin, the biodegradable resin composition is biodegradable under any environmental conditions, such as soil and the ocean, and has environmentally friendly properties. Therefore, biodegradable films formed using biodegradable resin compositions containing PHA resins can be used in a variety of fields.

[0053] PHA resins can be formed by enzyme-catalyzed polymerization of one or more monomer repeat units in living cells.

[0054] The PHA resin may be a copolymerized polyhydroxyalkanoate resin (hereinafter referred to as a PHA copolymer). Specifically, the PHA resin may be a copolymer containing two or more different repeating units, the different repeating units being randomly distributed in the polymer chain.

[0055] Examples of repeating units that can be contained in PHA include 2-hydroxybutyrate, lactic acid, glycolic acid, 3-hydroxybutyrate (hereinafter referred to as 3-HB), 3-hydroxypropionate (hereinafter referred to as 3-HP), 3-hydroxyvalerate (hereinafter referred to as 3-HV), 3-hydroxyhexanoate (hereinafter referred to as 3-HH), 3-hydroxyheptanoate (hereinafter referred to as 3-HHep), 3-hydroxyoctanoate (hereinafter referred to as 3-HO), and ), 3-hydroxynonanoate (hereinafter referred to as 3-HN), 3-hydroxydecanoate (hereinafter referred to as 3-HD), 3-hydroxydodecanoate (hereinafter referred to as 3-HDd), 4-hydroxybutyrate (hereinafter referred to as 4-HB), 4-hydroxyvalerate (hereinafter referred to as 4-HV), 5-hydroxyvalerate (hereinafter referred to as 5-HV), and 6-hydroxyhexanoate (hereinafter referred to as 6-HH). The PHA resin may contain one or more repeating units selected from the foregoing.

[0056] Specifically, the PHA resin may include one or more repeat units selected from the group consisting of 3-HB, 4-HB, 3-HP, 3-HH, 3-HV, 4-HV, 5-HV, and 6-HH.

[0057] More specifically, the PHA resin may include 4-HB repeat units, i.e., the PHA resin may be a PHA copolymer containing 4-HB repeat units.

[0058] Furthermore, the PHA resin may include isomers. For example, the PHA resin may include structural isomers, enantiomers, or geometric isomers. Specifically, the PHA resin may include structural isomers.

[0059] Additionally, the PHA resin can be a PHA copolymer that includes 4-HB repeat units and further includes one repeat unit different from the 4-HB repeat unit, or two, three, four, five, six, or more different repeat units.

[0060] According to one embodiment of the present invention, the PHA resin may comprise a copolymerized polyhydroxyalkanoate resin comprising at least one repeat unit selected from the group consisting of 3-HB, 3-HP, 3-HH, 3-HV, 4-HV, 5-HV, and 6-HH, and 4-HB repeat units.

[0061] Specifically, the PHA copolymer may contain 4-HB repeat units and further contain one or more repeat units selected from the group consisting of 3-HB repeat units, 3-HP repeat units, 3-HH repeat units, 3-HV repeat units, 4-HV repeat units, 5-HV repeat units, and 6-HH repeat units. More specifically, the PHA resin may be a copolymerized polyhydroxyalkanoate resin containing 3-HB repeat units and 4-HB repeat units.

[0062] For example, the PHA resin can be poly-3-hydroxybutyrate-co-4-hydroxybutyrate (hereinafter referred to as 3HB-co-4HB).

[0063] According to one embodiment of the present invention, it is important to adjust the 4-HB repeat unit content of the PHA copolymer.

[0064] That is, the content of 4-HB repeat units in the PHA copolymer may be important in order to achieve the physical properties desired in the present invention, particularly to improve biodegradability in soil and marine environments and to achieve excellent physical properties such as thermal and mechanical properties.

[0065] More specifically, the PHA copolymer may contain 4-HB repeat units in an amount of 0.1 wt% to 60 wt%, based on the total weight of the PHA copolymer. For example, the 4-HB repeat unit content may be 0.1 wt% to 55 wt%, 0.5 wt% to 60 wt%, 0.5 wt% to 55 wt%, 1 wt% to 60 wt%, 1 wt% to 55 wt%, 1 wt% to 50 wt%, 2 wt% to 55 wt%, 3 wt% to 55 wt%, 3 wt% to 50 wt%, 5 wt% to 55 wt%, 5 wt% to 50 wt%, 10 wt% to 55 wt%, 10 wt% to 50 wt%, 1 wt% to 40 wt%, 1 wt% to 30 wt%, 1 wt% to 29 wt%, 1 wt% to 10 ... The total weight may be 1% to 25% by weight, 1% to 24% by weight, 2% to 20% by weight, 2% to 23% by weight, 3% to 20% by weight, 3% to 15% by weight, 4% to 18% by weight, 5% to 15% by weight, 8% to 12% by weight, 9% to 12% by weight, 15% to 55% by weight, 15% to 50% by weight, 20% to 55% by weight, 20% to 50% by weight, 25% to 55% by weight, 25% to 50% by weight, 35% to 60% by weight, 40% to 55% by weight, or 45% to 55% by weight.

[0066] When the content of 4-HB repeating units satisfies the above range, biodegradability in soil and marine environments can be improved, the thermal properties of the material can be improved, and mechanical properties such as flexibility and strength can be further improved.

[0067] Furthermore, the PHA resin contains at least one or more 4-HB repeat units, and the content of the 4-HB repeat units can be controlled to adjust the crystallinity of the PHA resin, i.e., the PHA resin can be a PHA copolymer with controlled crystallinity.

[0068] A PHA resin with controlled crystallinity may have controlled crystallinity and amorphousity due to increased disorder in its molecular structure, specifically, the type and ratio of monomers or the type and / or content of isomers.

[0069] The PHA resin may be a combination of two or more PHA resins with different crystallinity levels, i.e., the PHA resin may be tailored to have a specific range of 4-HB repeat unit content by mixing two or more PHA resins with different crystallinity levels.

[0070] For example, the PHA resin may comprise a mixed resin of a first PHA resin and a second PHA resin having different contents of 4-HB repeating units, and the PHA resin may be adjusted so that the content of 4-HB repeating units is 0.1 to 60 wt% based on the total weight of the PHA resin. Specific properties of the first and second PHA resins will be described later.

[0071] Alternatively, the PHA copolymer may comprise 3-HB repeat units in an amount of 20% by weight or more, 35% by weight or more, 40% by weight or more, 50% by weight or more, 60% by weight or more, 70% by weight or more, or 75% by weight or more, and 99% by weight or less, 98% by weight or less, 97% by weight or less, 96% by weight or less, 95% by weight or less, 93% by weight or less, 91% by weight or less, 90% by weight or less, 80% by weight or less, 70% by weight or less, 60% by weight or less, or 55% by weight or less, based on the total weight of the PHA copolymer.

[0072] On the other hand, the PHA resin may have a glass transition temperature (Tg) of, for example, -45°C to 80°C, -35°C to 80°C, -30°C to 80°C, -25°C to 75°C, -20°C to 70°C, -35°C to 5°C, -25°C to 5°C, -35°C to 0°C, -25°C to 0°C, -30°C to -10°C, -35°C to -15°C, -35°C to -20°C, -20°C to 0°C, -15°C to 0°C, or -15°C to -5°C.

[0073] The crystallization temperature (Tc) of the PHA resin may not be measured, or may be, for example, 70°C to 120°C, 75°C to 120°C, 75°C to 115°C, 75°C to 110°C, or 90°C to 110°C.

[0074] The melting temperature (Tm) of the PHA resin may not be measured or may be, for example, from 100°C to 170°C, for example, from 110°C to 150°C, or for example, from 120°C to 140°C.

[0075] The PHA resin may have a weight average molecular weight (Mw) of, for example, 10,000 g / mol to 1,200,000 g / mol. For example, the weight average molecular weight of the PHA resin may be 50,000 g / mol to 1,200,000 g / mol, 100,000 g / mol to 1,200,000 g / mol, 50,000 g / mol to 1,000,000 g / mol, 100,000 g / mol to 1,000,000 g / mol, or 200,000 g / mol to 1,200,000 g / mol. 0,000 g / mol, 250,000 g / mol to 1,150,000 g / mol, 300,000 g / mol to 1,100,000 g / mol, 350,000 g / mol to 1,000,000 g / mol, 350,000 g / mol to 950,000 g / mol, 100,000 g / mol to 900,000 g / mol, 20 0,000g / mol to 800,000g / mol, 200,000g / mol to 700,000g / mol, 250,000g / mol to 650,000g / mol, 200,000g / mol to 400,000g / mol, 300,000g / mol to 800,000g / mol, 300,000g / mol to 600,000g / mol g / mol, 500,000 g / mol to 1,200,000 g / mol, 500,000 g / mol to 1,000,000 g / mol, 550,000 g / mol to 1,050,000 g / mol, 550,000 g / mol to 900,000 g / mol, or 600,000 g / mol to 900,000 g / mol.

[0076] The PHA resin may include a first PHA resin, a second PHA resin, or a mixed resin of the first PHA resin and the second PHA resin.

[0077] The first PHA resin and the second PHA resin have the same content of 4-HB repeating units, glass transition temperature (Tg), crystallization temperature (T c ), and melting temperature (Tm).

[0078] Specifically, the first PHA resin may contain 4-HB repeat units in an amount of, for example, 15% to 60% by weight, 15% to 55% by weight, 20% to 55% by weight, 25% to 55% by weight, 30% to 55% by weight, 35% to 55% by weight, 20% to 50% by weight, 25% to 50% by weight, 30% to 50% by weight, 35% to 50% by weight, or 20% to 40% by weight, based on the total weight of the first PHA resin.

[0079] The glass transition temperature (Tg) of the first PHA resin can be, for example, -45°C to -10°C, -35°C to -10°C, -35°C to -15°C, -35°C to -20°C, or -30°C to -20°C.

[0080] The crystallization temperature (Tc) of the first PHA resin may not be measured, or may be, for example, 60°C to 120°C, 60°C to 110°C, 70°C to 120°C, or 75°C to 115°C.

[0081] The melting temperature (Tm) of the first PHA resin may not be measured, or may be, for example, 100°C to 170°C, 100°C to 160°C, 110°C to 160°C, or 120°C to 150°C.

[0082] The first PHA resin may have a molecular weight of, for example, 10,000 g / mol to 1,200,000 g / mol, 10,000 g / mol to 1,000,000 g / mol, 50,000 g / mol to 1,000,000 g / mol, 50,000 g / mol to 1,200,000 g / mol, or 200,000 g / mol to 1,200,000 g / mol. The polymer may have a weight average molecular weight (Mw) of 300,000 g / mol to 1,000,000 g / mol, 100,000 g / mol to 900,000 g / mol, 500,000 g / mol to 900,000 g / mol, 200,000 g / mol to 800,000 g / mol, or 200,000 g / mol to 400,000 g / mol.

[0083] Alternatively, the second PHA resin may contain 4-HB repeat units in an amount of 0.1% to 30% by weight, based on the total weight of the second PHA resin. For example, the second PHA resin may contain 4-HB repeat units in an amount of 0.1% to 30% by weight, 0.5% to 30% by weight, 1% to 30% by weight, 3% to 30% by weight, 1% to 28% by weight, 1% to 25% by weight, 1% to 24% by weight, 1% to 20% by weight, 1% to 15% by weight, 2% to 25% by weight, 3% to 25% by weight, 3% to 24% by weight, 5% to 24% by weight, 5% to 20% by weight, greater than 5% to less than 20% by weight, 7% to 20% by weight, 10% to 20% by weight, 15% to 25% by weight, or 15% to 24% by weight.

[0084] The first PHA resin and the second PHA resin can differ from each other in terms of their content of 4-HB repeat units.

[0085] The glass transition temperature (Tg) of the second PHA resin may be, for example, -30°C to 80°C, for example, -30°C to 10°C, for example, -25°C to 5°C, for example, -25°C to 0°C, for example, -20°C to 0°C, or for example, -15°C to 0°C.

[0086] The glass transition temperature (Tg) of the first PHA resin and the glass transition temperature (Tg) of the second PHA resin can be different from each other.

[0087] The second PHA resin may have a crystallization temperature (Tc) of, for example, 70°C to 120°C, for example, 75°C to 115°C, or 80°C to 110°C, or may, for example, be undetermined.

[0088] The second PHA resin may have a melting temperature (Tm) of, for example, 100°C to 170°C, for example, 105°C to 165°C, for example, 110°C to 160°C, for example, 100°C to 150°C, for example, 115°C to 155°C, for example, 120°C to 160°C, or for example, 120°C to 150°C.

[0089] The second PHA resin can have a weight average molecular weight (Mw) of 10,000 g / mol to 1,200,000 g / mol, 50,000 g / mol to 1,100,000 g / mol, 100,000 g / mol to 1,000,000 g / mol, 300,000 g / mol to 1,000,000 g / mol, 100,000 g / mol to 900,000 g / mol, 200,000 g / mol to 800,000 g / mol, 200,000 g / mol to 600,000 g / mol, 200,000 g / mol to 400,000 g / mol, or 400,000 g / mol to 700,000 g / mol.

[0090] Specifically, the first PHA resin has a glass transition temperature (Tg) of -35°C to -15°C, and the second PHA resin satisfies at least one characteristic selected from a glass transition temperature (Tg) of -15°C to 0°C, a crystallization temperature (Tc) of 80°C to 110°C, and a melting temperature (Tm) of 120°C to 160°C, and the glass transition temperatures (Tg) of the first PHA resin and the second PHA resin may be different from each other. Furthermore, the crystallization temperature (Tc) and melting temperature (Tm) of the first PHA resin do not need to be measured.

[0091] If the first PHA resin and the second PHA resin each satisfy at least one of the above ranges of 4-HB repeating units, glass transition temperature (Tg), crystallization temperature (Tc), and melting temperature (Tm), this may be more advantageous for achieving the desired effects of the present invention.

[0092] Additionally, the first PHA resin and the second PHA resin can each be a PHA resin with controlled crystallinity.

[0093] For example, the first PHA resin may comprise an amorphous PHA resin (hereinafter referred to as an aPHA resin), and the second PHA resin may comprise a semi-crystalline PHA resin (hereinafter referred to as an scPHA resin).

[0094] Specifically, the first PHA resin can be an aPHA resin or a mixed resin of an aPHA resin and an scPHA resin.

[0095] Specifically, the second PHA resin can be an scPHA resin or a mixed resin of an aPHA resin and an scPHA resin.

[0096] The aPHA resin and scPHA resin have different properties such as the content of 4-HB repeating units, glass transition temperature (Tg), and crystallization temperature (T c ), melting temperature (Tm), etc.

[0097] The aPHA resin may contain 4-HB repeat units in an amount of, for example, 25-50% by weight, based on the total weight of the PHA resin.

[0098] The aPHA resin may have a glass transition temperature (Tg) of, for example, -35°C to -20°C.

[0099] The crystallization temperature (Tc) of the aPHA resin does not have to be measured.

[0100] The melting temperature (Tm) of the aPHA resin does not have to be measured.

[0101] The scPHA resin may contain 4-HB repeat units in an amount of, for example, 1 to less than 25% by weight, based on the total weight of the PHA resin.

[0102] The scPHA resin may have a glass transition temperature (Tg) of -20°C to 0°C.

[0103] The scPHA resin may have a crystallization temperature (Tc) of 75°C to 115°C.

[0104] The scPHA resin may have a melting temperature (Tm) of 110°C to 160°C.

[0105] According to one embodiment of the present invention, the PHA resin may be used in an amount of 5 wt % or more, 8 wt % or more, 10 wt % or more, 12 wt % or more, 14 wt % or more, 15 wt % or more, 16 wt % or more, or 17 wt % or more, and 80 wt % or less, 70 wt % or less, 60 wt % or less, 50 wt % or less, or 40 wt % or less, based on the total weight of the biodegradable resin composition.

[0106] Specifically, the biodegradable resin composition may contain, based on the total weight of the biodegradable resin composition, for example, 10 to 80 wt%, for example, 10 to 70 wt%, for example, 10 to 60 wt%, for example, 10 to 50 wt%, for example, 10 to 40 wt%, for example, 10 to 30 wt%, for example, 14 to 80 wt%, for example, 14 to 70 wt%, for example, 14 to 60 wt%, for example, 14 to 50 wt%, for example, 15 to 80 wt%, for example, 15 to 70 wt%, for example, 15 to 60 wt%, for example, 15 to 50 wt%, for example, 17 to 80 wt%, for example, 17 to 50 wt%, for example, 17 to 30 wt%, for example, 20 to 80 wt%, for example, 20 to 75 wt%, for example, 20 to 70 wt%, for example, 20 to 60 wt%, for example, 20 to 40 wt%, or for example, 40 to 80 wt% of the PHA resin.

[0107] According to another embodiment of the present invention, the first PHA resin may be used in an amount of, for example, 5 to 80 wt%, for example, 10 to 80 wt%, for example, 20 to 80 wt%, for example, 20 to 75 wt%, for example, 20 to 70 wt%, for example, 20 to 60 wt%, for example, 20 to 40 wt%, for example, 10 to 40 wt%, for example, 5 to 20 wt%, or for example, 40 to 80 wt%, based on the total weight of the biodegradable resin composition.

[0108] According to another embodiment of the present invention, the second PHA resin may be used in an amount of, for example, 5 to 80 wt%, for example, 10 to 80 wt%, for example, 10 to 60 wt%, for example, 20 to 80 wt%, for example, 20 to 75 wt%, for example, 20 to 70 wt%, for example, 20 to 60 wt%, for example, 20 to 40 wt%, for example, 5 to 20 wt%, or for example, 40 to 80 wt%, based on the total weight of the biodegradable resin composition.

[0109] On the other hand, when the PHA resin constitutes the first PHA resin, the PHA resin may account for, for example, 1% to 95% by weight. When the first PHA resin is used alone, the first PHA resin may be used in an amount of, for example, 5 to 80% by weight based on the total weight of the biodegradable resin composition. Specifically, the first PHA resin may be used in an amount of 10% by weight or more and 70% by weight or less, or 40% by weight or less.

[0110] Furthermore, according to another embodiment of the present invention, when the PHA resin comprises a mixed resin of a first PHA resin and a second PHA resin, the first PHA resin may be used in an amount of, for example, 1 to 50%, for example, 5 to 40% by weight, 5 to 20% by weight, 10% to 40% by weight, or for example, 20 to 40% by weight, based on the total weight of the biodegradable resin composition.

[0111] When the PHA resin contains a second PHA resin, the second PHA resin can be used in an amount of, for example, 1 to 95% by weight based on the total weight of the biodegradable resin composition. When the second PHA resin is used alone, the second PHA resin can be used in an amount of, for example, 50% by weight or more, 55% by weight or more, 60% by weight or more, 65% by weight or more, or 70% by weight or more, and 95% by weight or less, 90% by weight or less, 85% by weight or less, or 80% by weight or less based on the total weight of the biodegradable resin composition. When the second PHA resin is used alone, the second PHA resin can be used in an amount of, for example, 50 to 95% by weight based on the total weight of the biodegradable resin composition.

[0112] As another example, when the second PHA resin is used in combination with the first PHA resin, the second PHA resin is used in an amount of, for example, 5 to 99% by weight, for example, 20 to 80% by weight, for example, 30 to 70% by weight, or for example, 30 to 50% by weight, based on the total weight of the biodegradable resin composition. Furthermore, the second PHA resin may be used in an amount of 5 to 60% by weight, 5 to 40% by weight, 40 to 60% by weight, 5 to 20% by weight, or 10 to 40% by weight.

[0113] According to another embodiment of the present invention, when the PHA resin comprises a mixed resin of a first PHA resin and a second PHA resin, the weight ratio of the first PHA resin to the second PHA resin can be, for example, 1:0.5-3, for example, 1:0.5-2.5, or for example, 1:0.5-2.

[0114] According to another embodiment of the present invention, the weight ratio of the first PHA resin to the second PHA resin to the biomass may be 1:0.5-9:1-2.

[0115] When the PHA resin and biomass contents and their content ratios each satisfy the above ranges, the thermal properties and mechanical properties can be further improved, and the moldability, processability, and productivity when producing a biodegradable film or mulching film can also be improved.

[0116] biodegradable resin The biodegradable resin composition according to one embodiment of the present invention may further comprise at least one component selected from the group consisting of an aliphatic polyester-based biodegradable resin and an aliphatic / aromatic copolyester-based biodegradable resin, which provides biodegradability while ensuring mechanical properties suitable for use in a biodegradable film or mulching film using the biodegradable resin composition.

[0117] Specifically, the type of biodegradable resin is not particularly limited as long as it is commonly used. Representative biodegradable resins may include at least one selected from the group consisting of polybutylene adipate terephthalate (PBAT), polylactic acid (PLA), polybutylene succinate (PBS), polybutylene adipate (PBA), polybutylene succinate-adipate (PBSA), polybutylene succinate-terephthalate (PBST), polyhydroxybutyrate-valerate (PHBV), polycaprolactone (PCL), polybutylene succinate adipate terephthalate (PBSAT), and thermoplastic starch (TPS). Specifically, the biodegradable resin may include at least one selected from the group consisting of polybutylene adipate terephthalate (PBAT), polylactic acid (PLA), polybutylene succinate (PBS), and thermoplastic starch (TPS). More specifically, the biodegradable resin may include at least one selected from the group consisting of polybutylene adipate terephthalate (PBAT) and polylactic acid (PLA). Further, the biodegradable resin may include polybutylene adipate terephthalate (PBAT).

[0118] The biodegradable resin may be used in an amount of, for example, 0.001% by weight or more, 1% by weight or more, 5% by weight or more, 10% by weight or more, 20% by weight or more, 30% by weight or more, 40% by weight or more, 50% by weight or more, 55% by weight or more, 60% by weight or more, 65% by weight or more, or 70% by weight or more, and for example, 80% by weight or less, 75% by weight or less, 70% by weight or less, 65% by weight or less, 60% by weight or less, 50% by weight or less, 40% by weight or less, 30% by weight or less, 20% by weight or less, or 10% by weight or less, based on the total weight of the biodegradable resin composition.

[0119] Specifically, when the biodegradable resin composition further contains a biodegradable resin, the weight ratio of the PHA resin to the biodegradable resin can be 1:0.1 to 9, 1:0.5 to 8, 1:0.5 to 6, 1:0.5 to 5, 1:1 to 8, 1:1 to 6, 1:1 to 5, or 1:1 to 4. For example, the biodegradable composition can further contain a PBAT resin as a biodegradable resin, and can contain the PHA resin and PBAT resin in a weight ratio of 1:0.1 to 9, 1:0.5 to 9, 1:0.7 to 8, 1:0.8 to 8, 1:1 to 8, 1:1 to 6, 1:1 to 5, or 1:1 to 4.

[0120] When the biodegradable resin composition contains a biodegradable resin within the above range, it is possible to easily achieve mechanical properties suitable for use as a biodegradable film or mulching film, which is advantageous in that the film can be used in a variety of ways. For example, the use of a biodegradable resin can further improve the tensile strength and elongation.

[0121] Physical property improver The biodegradable resin composition according to one embodiment of the present invention may further include a physical property improver to further improve the physical properties of the biodegradable film or mulching film prepared using the biodegradable resin composition.

[0122] The physical property improver may include at least one selected from the group consisting of a diamine, a diacid, and an isocyanate.

[0123] The physical property improver can further improve physical properties by combining with the epoxy functional groups contained in the epoxidized biomass and / or the hydroxyl groups (OH groups) contained in the biomass and / or PHA resin.

[0124] The physical property improver may be used in an amount of 0.001 to 30% by weight, based on the total weight of the biodegradable resin composition. The physical property improver may be used in an amount of 0.1% by weight or more, 0.5% by weight or more, 1% by weight or more, 1.5% by weight or more, or 2% by weight or more. The additive may be used in an amount of 30% by weight or less, 28% by weight or less, 25% by weight or less, 20% by weight or less, 15% by weight or less, 10% by weight or less, 8% by weight or less, or 5% by weight or less.

[0125] The physical property improver can be selected in various ways depending on the use of the biodegradable resin composition. When the above range is satisfied, the desired physical properties in the present invention can be effectively achieved.

[0126] additives The biodegradable resin composition may further comprise at least one additive selected from the group consisting of pigments, colorant absorbers, light absorbers, antioxidants, compatibilizers, extenders, nucleating agents, melt strength enhancers, and slip agents.

[0127] The additives may be used in an amount of 0.1 to 30% by weight based on the total weight of the biodegradable resin composition.

[0128] The additives may be used in an amount of 0.1 wt% or more, 0.5 wt% or more, 1 wt% or more, 1.5 wt% or more, or 2 wt% or more. The additives may be used in an amount of 30 wt% or less, 28 wt% or less, 25 wt% or less, 20 wt% or less, 15 wt% or less, 10 wt% or less, 8 wt% or less, or 5 wt% or less.

[0129] The pigment may include at least one selected from the group consisting of carbon black and cobalt green. The pigment may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example, 0.2 to 4.5 wt%, for example, 0.2 to 4 wt%, or for example, 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0130] The antioxidant is an additive that prevents decomposition by ozone or oxygen, prevents oxidation during storage, and prevents deterioration of the physical properties of the film.

[0131] As the antioxidant, any commonly used antioxidant can be used as long as it does not impair the effects of the present invention.

[0132] Specifically, the antioxidant may include at least one selected from the group consisting of hindered phenol-based antioxidants and phosphite-based (phosphorus-based) antioxidants.

[0133] The hindered phenolic antioxidant may include, for example, at least one selected from the group consisting of 4,4′-methylene-bis(2,6-di-t-butylphenol), octadecyl-3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate, pentaerythritol tetrakis[3-(3,5-di-t-butyl-4-hydroxyphenyl)propionate), and 3,9-bis[2-[3-(3-tert-butyl-4-hydroxy-5-methylphenyl)propionyloxy]-1,1-dimethylethyl]-2,4,8,10-tetraoxaspiro[5.5]undecane.

[0134] The phosphite (phosphorus) antioxidant may include, for example, at least one selected from the group consisting of tris-(2,4-di-t-butylphenyl)phosphite, bis-(2,4-di-t-butylphenyl)pentaerythritol-diphosphite, bis-(2,6-di-t-butyl-4-methylphenyl)pentaerythritol-diphosphite, distearyl-pentaerythritol-diphosphite, [bis(2,4-di-t-butyl-5-methylphenoxy)phosphino]biphenyl, and N,N-bis[2-[[2,4,8,10-tetrakis(1,1-dimethylethyl)dibenzo[d,f][1,3,2]dioxyphosphepin-6-yl]oxy]-ethyl]ethanamine.

[0135] The antioxidant may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example, 0.2 to 4.5 wt%, for example, 0.2 to 4 wt%, or for example, 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0136] When the content of the antioxidant satisfies the above range, the physical properties of the film can be improved, which may be more advantageous for achieving the desired effects of the present invention.

[0137] A compatibilizer is an additive that imparts compatibility by eliminating heterogeneous phases of the biomass, PHA resin, and / or biodegradable polymer resin.

[0138] As the compatibilizer, any commonly used compatibilizer can be used as long as it does not impair the effects of the present invention.

[0139] Specifically, the compatibilizer may include at least one selected from the group consisting of polyvinyl acetate (PVAc), isocyanate, polypropylene carbonate, glycidyl methacrylate, ethylene vinyl alcohol, polyvinyl alcohol (PVA), ethylene vinyl acetate, and maleic anhydride.

[0140] The compatibilizer may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, such as 0.2 to 4.5 wt%, such as 0.2 to 4 wt%, or such as 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0141] When the content of the compatibilizer satisfies the above range, the compatibility between the resins used can be increased, thereby improving the physical properties of the film, which may be more advantageous in achieving the desired effects of the present invention.

[0142] The filler is an inorganic material and is an additive to increase moldability by increasing the crystallization rate during the molding process and to alleviate the problem of increased cost due to the use of biodegradable resins.

[0143] As the filler, any commonly used inorganic material can be used as long as it does not impair the effects of the present invention.

[0144] Specifically, the filler may include at least one selected from the group consisting of calcium carbonate, such as light or ground calcium carbonate, silica, talc, kaolin, barium sulfate, clay, calcium oxide, magnesium hydroxide, titanium oxide, carbon black, and glass fiber.

[0145] The bulking agent may have an average particle size of 0.5 μm to 5 μm. If the average particle size of the bulking agent is less than 0.5 μm, it is difficult to disperse the particles. If the average particle size is more than 5 μm, the particle size becomes too large, which may impair the effect of the present invention.

[0146] The extender may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example 0.2 to 4.5 wt%, for example 0.2 to 4 wt%, or for example 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0147] If the content of the filler satisfies the above range, it may be more advantageous to achieve the desired effects of the present invention.

[0148] Nucleating agents are additives for supplementing or changing the crystalline morphology of polymers and for increasing the crystallization (solidification) rate when the polymer melt is cooled. In particular, the PHA resin used in the present invention has a low crystallization rate, so the PHA resin may become too soft and difficult to process. To solve this problem, the use of a nucleating agent can increase the crystallization rate, further improving processability, moldability, and productivity, and effectively achieving desired physical properties.

[0149] Any common nucleating agent can be used as long as it does not impair the effect of the present invention.

[0150] Specifically, the nucleating agent may be a simple substance (pure substance), a metal compound including a complex oxide, such as carbon black, calcium carbonate, synthetic silicic acid and salt, silica, zinc white, clay, kaolin, basic magnesium carbonate, mica, talc, quartz powder, diatomaceous earth, dolomite powder, titanium oxide, zinc oxide, antimony oxide, barium sulfate, calcium sulfate, alumina, calcium silicate, metal salts of organic phosphorus, and boron nitride; a low molecular weight organic compound having a metal carboxylate group, such as octylic acid, toluic acid, heptanoic acid, pelargonic acid, Metal salts of lauric acid, myristic acid, palmitic acid, stearic acid, behenic acid, cerotic acid, montanic acid, melissic acid, benzoic acid, p-tert-butylbenzoic acid, terephthalic acid, terephthalic acid monomethyl ester, isophthalic acid, and isophthalic acid monomethyl ester; polymeric organic compounds having metal carboxylate groups, such as salts of carboxyl group-containing polyethylene obtained by oxidation of polyethylene, carboxyl group-containing polypropylene obtained by oxidation of polypropylene, acrylic acid or methacrylic acid; copolymers of olefins (e.g., ethylene, propylene, and butene-1), copolymers of acrylic acid or methacrylic acid and styrene, copolymers of olefins and maleic anhydride, and copolymers of styrene and maleic anhydride; polymeric organic compounds, such as alpha-olefins having five or more carbon atoms branched at the third carbon atom (e.g., 3,3-dimethylbutene-1,3-methylbutene-1,3-methylpentene-1,3-methylhexene-1 and 3,5,5-trimethylhexene-1), polymers of vinylcycloalkanes (e.g., vinylcyclopentane, vinylcyclohexane, and vinylnorbornane), polyalkylene glycols (e.g., polyethylene glycol and polypropylene glycol), poly(glycolic acid), cellulose, cellulose esters, and cellulose ethers; phosphoric or phosphorous acid and metal salts thereof, such as diphenyl phosphate, diphenyl phosphite, metal salts of bis(4-tert-butylphenyl)phosphate, and methylenebis(2,4-tert-butylphenyl)phosphate;Sorbitol derivatives, such as bis(p-methylbenzylidene)sorbitol and bis(p-ethylbenzylidene)sorbitol, as well as thioglycolic anhydride, p-toluenesulfonic acid, and metal salts thereof, may be used. The nucleating agents may be used alone or in combination.

[0151] The nucleating agent may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, such as 0.2 to 4.5 wt%, such as 0.2 to 4 wt%, or such as 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0152] When the content of the nucleating agent satisfies the above range, the crystallization rate can be increased to improve moldability, for example, by increasing the crystallization rate during the cutting step for producing pellets or in the preparation method, it is possible to further improve productivity and processability.

[0153] Melt strength enhancers are additives to improve the melt strength of the reactants.

[0154] As the melt strength improver, any commonly used melt strength improver can be used as long as it does not impair the effects of the present invention.

[0155] Specifically, the melt strength enhancer may include at least one selected from the group consisting of polyester, styrenic polymer (such as acrylonitrile butadiene styrene and polystyrene), polysiloxane, organo-modified siloxane polymer, and maleic anhydride grafted ethylene propylene diene monomer (MAH-g-EPDM).

[0156] The melt strength improver may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example 0.2 to 4.5 wt%, for example 0.2 to 4 wt%, or for example 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0157] If the content of the melt strength agent satisfies the above range, it may be more advantageous to achieve the desired effects of the present invention.

[0158] Slip agents are additives that improve slip properties during extrusion and prevent film surfaces from sticking to each other.

[0159] As the slip agent, any commonly used slip agent can be used as long as it does not impair the effects of the present invention. For example, the slip agent may be at least one selected from the group consisting of erucamide, oleamide, and stearamide.

[0160] The slip agent may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, such as 0.2 to 4.5 wt%, such as 0.2 to 4 wt%, or such as 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0161] When the content of the slip agent satisfies the above range, the processability, productivity, and moldability can be further improved, which may be more advantageous for achieving the desired effects of the present invention.

[0162] The biodegradable resin composition may contain a crosslinking agent and / or a stabilizer as further additives.

[0163] The crosslinking agent is an additive for modifying the properties of the PHA and increasing the molecular weight of the resin. Any common crosslinking agent can be used as long as it does not impair the effects of the present invention.

[0164] For example, the crosslinking agent may be at least one selected from the group consisting of fatty acid esters, epoxy group-containing (epoxidized) natural oils, diallyl phthalate, pentaerythritol tetraacrylate, trimethylolpropane triacrylate, pentaerythritol triacrylate, dipentaerythritol pentaacrylate, diethylene glycol dimethacrylate, and bis(2-methacryloxyethyl)phosphate.

[0165] The crosslinking agent may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example 0.2 to 4.5 wt%, for example 0.2 to 4 wt%, or for example 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0166] The stabilizer is an additive for protecting the composition against oxidation and heat and preventing discoloration. Any commonly used stabilizer can be used as the stabilizer as long as it does not impair the effects of the present invention.

[0167] Specifically, the stabilizer may be selected from the group consisting of trimethyl phosphate, triphenyl phosphate, trimethylphosphine, phosphoric acid, and phosphorous acid.

[0168] The stabilizer may be used in an amount of 0.01 to 20 wt%, 0.01 to 15 wt%, 0.01 to 12 wt%, 0.01 to 10 wt%, 0.01 to 8 wt%, 0.01 to 5 wt%, for example, 0.2 to 4.5 wt%, for example, 0.2 to 4 wt%, or for example, 0.5 to 3 wt%, based on the total weight of the biodegradable resin composition.

[0169] Biodegradable Films and Methods for Preparing Biodegradable Films According to one embodiment of the present invention, a biodegradable film is provided that includes biomass and a polyhydroxyalkanoate (PHA) resin.

[0170] The biomass and PHA resin are as described above.

[0171] According to one embodiment of the present invention, there is provided a biodegradable film formed from the biodegradable resin composition.

[0172] The biomass and PHA resin are as described above.

[0173] Meanwhile, according to one embodiment of the present invention, there is provided a method for preparing a biodegradable film, comprising the steps of: (1) melt-extruding biomass and a polyhydroxyalkanoate (PHA) resin to prepare biodegradable pellets; and (2) molding the biodegradable pellets.

[0174] Referring to FIG. 1, a method (S100) for preparing a biodegradable film includes a step (S110) of melt-extruding biomass and a polyhydroxyalkanoate (PHA) resin to prepare biodegradable pellets.

[0175] The biomass and PHA resin are as described above.

[0176] However, according to one embodiment of the present invention, the biomass may include epoxidized biomass.

[0177] The epoxidation process may include polymerizing biomass with epihalohydrin in an alkaline solution to obtain epoxy-polymerized biomass (Step A), and filtering and drying the epoxy-polymerized biomass (Step B).

[0178] The alkaline solution may include at least one selected from the group consisting of sodium hydroxide, ammonia, lithium hydroxide, and calcium hydroxide.

[0179] The amount of alkaline solution used may be 1 to 10% by weight based on the total weight of the reaction composition, where the reaction composition may include the alkaline solution, biomass, and epihalohydrin.

[0180] The epihalohydrin may include epichlorohydrin.

[0181] Furthermore, the amount of epihalohydrin used can be, for example, 1 to 200 moles, for example, 10 to 200 moles, or for example, 50 to 200 moles relative to 1 equivalent of hydroxyl groups (OH groups) of the biomass.

[0182] The polymerization can be carried out at, for example, 25°C to 150°C or 25°C to 100°C.

[0183] Drying can be carried out at 25°C to 80°C.

[0184] On the other hand, the biomass and the PHA resin may each be in the form of a powder, granules, or pellets. Specifically, the biomass and the PHA resin may each be in the form of pellets, and the biodegradable resin composition containing the biomass and the PHA resin may also be in the form of pellets.

[0185] That is, since the biodegradable resin composition according to the present invention is used as a masterbatch when preparing a biodegradable film or a biodegradable mulching film, it is preferably in the form of pellets. The biodegradable resin composition in the form of pellets can be prepared by mixing and melting the components constituting the biodegradable resin composition, and then extruding these components using a twin-screw extruder or the like while pelletizing the extrudate.

[0186] The cutting step can be performed using a pellet cutter, without limitation, as long as it is commonly used in the art, and the pellets can have a variety of shapes.

[0187] Furthermore, a step of drying the pellets may be further carried out. Drying can be carried out at 60°C to 100°C for 2 to 12 hours. Specifically, drying can be carried out at 65°C to 95°C, 70°C to 90°C, or 75°C to 85°C for 3 to 12 hours or 4 to 10 hours. When the conditions for the pellet drying step satisfy the above ranges, the quality can be further improved.

[0188] Meanwhile, according to one embodiment of the present invention, the PHA resin may include a first PHA resin, a second PHA resin, or a mixed resin of the first PHA resin and the second PHA resin.

[0189] The types and specific properties of the first PHA resin and the second PHA resin are as described above.

[0190] Additionally, depending on the intended use and physical property design, the biodegradable resin composition comprising biomass and a PHA resin may further comprise physical property improvers, additives, and / or biodegradable resins.

[0191] The physical property improver, additive, and biodegradable resin are as described above.

[0192] Alternatively, biomass and PHA resin can be melt extruded to obtain biodegradable pellets.

[0193] According to one embodiment of the present invention, when the PHA resin comprises a mixed resin of a first PHA resin and a second PHA resin, the first PHA resin, the second PHA resin, and biomass can be melt-extruded to form pellets.

[0194] According to another embodiment of the present invention, when a physical property improver, an additive, and a biodegradable resin are further used, the PHA resin (first PHA resin and second PHA resin), biomass, the physical property improver, the additive, and / or the biodegradable resin can be melt extruded to form pellets.

[0195] The melt extrusion temperatures of the PHA resin and biomass can be controlled separately. Melt extrusion can be carried out at a temperature of 120°C to 200°C.

[0196] Specifically, the extrusion temperature of the PHA resin and the extrusion temperature of the biomass may be the same or different.

[0197] The extrusion temperature of the PHA resin can be, for example, 120°C to 200°C, for example, 120°C to 190°C, for example, 130°C to 180°C, for example, 140°C to 170°C.

[0198] The extrusion temperature of the biomass can be, for example, 120°C to 200°C, for example, 120°C to 190°C, for example, 130°C to 180°C, for example, 140°C to 170°C.

[0199] Furthermore, after melt extrusion, heat treatment (heat setting) and / or drying may be further performed. Processing conditions for these steps may be those used in the art as long as the desired effects of the present invention are not impaired.

[0200] Referring back to FIG. 1, the process for preparing a biodegradable film (S100) includes the step of forming biodegradable pellets (S120).

[0201] Molding can be accomplished by processing the biodegradable pellets into the desired shape and then cooling to harden the shape and induce crystallization. Shapes include, but are not limited to, fibers, filaments, films, sheets, rods, or other shapes. Molding can be accomplished by any method known in the art, such as extrusion, injection molding, compression molding, pressure molding, blowing or blow molding (e.g., blown film, blown foam), calendaring, rotational molding, casting (e.g., cast sheet, cast film), or thermoforming.

[0202] For example, the extrusion conditions may vary depending on the use of the biodegradable film, and extrusion can be performed by a commonly used method, such as using a twin-screw extruder at 100°C to 180°C.

[0203] For example, molding may include blow molding.

[0204] The blow molding conditions may vary depending on the use of the biodegradable film, and blow molding can be performed by a commonly used method. For example, biodegradable resin pellets can be blown at 100 to 180°C using a blown film extruder.

[0205] Biodegradable films are characterized by excellent mechanical properties, especially good strength and flexibility, and by biodegradability of more than 90% in soil and oceans.

[0206] Biodegradability indicates the rate of degradation compared to a standard material (e.g., cellulose) over the same period. The Korean Ministry of Environment defines a biodegradable material as one whose biodegradability is 90% or more compared to a standard material.

[0207] [Physical properties of biodegradable films] The biodegradable film of the present invention can be biodegraded by any of microorganisms, moisture, oxygen, light, and heat, and has excellent mechanical properties.

[0208] Specifically, the biodegradable film may have a tensile strength of, for example, 5 to 50 MPa, 10 to 45 MPa, for example, 10 to 40 MPa, for example, 15 to 40 MPa, or 15 to 35 MPa.

[0209] Furthermore, the tensile strength of the biodegradable film may be the same or different in the machine direction (MD) and the transverse direction (TD) of the biodegradable film.

[0210] For example, the biodegradable film may have a tensile strength in the machine direction (MD) of, for example, 5 to 50 MPa, 10 to 45 MPa, for example, 10 to 40 MPa, for example, 15 to 40 MPa, or 15 to 35 MPa.

[0211] The biodegradable film may have a tensile strength in the transverse direction (TD) of, for example, 5 to 50 MPa, 10 to 45 MPa, for example, 10 to 40 MPa, for example, 15 to 35 MPa, or 15 to 30 MPa.

[0212] The biodegradable film is cut to a length of 100 mm and a width of 15 mm and attached to an INSTRON universal testing machine (4206-001, manufacturer: UTM) with a chuck spacing of 50 mm in accordance with ASTM-D882. The test is carried out at a room temperature of 25°C and a tensile speed of 200 mm / min, and the tensile strength is measured using a program installed on the device. If the tensile strength satisfies the above range, it is possible to simultaneously improve the productivity, processability, and moldability of the biodegradable film.

[0213] Furthermore, the biodegradable film may have an elongation of, for example, 50% to 900%, for example, 100% to 900%, for example, 100% to 800%, for example, 100% to 700%, for example, 100% to 600%, for example, 100% to 500%, for example, 120% to 450%, or for example, 150% to 450%.

[0214] Furthermore, the elongation of the biodegradable film may be the same or different in the machine direction (MD) and the transverse direction (TD) of the biodegradable film.

[0215] For example, the biodegradable film may have a longitudinal direction (MD) elongation of, for example, 50% to 900%, for example, 100% to 900%, for example, 100% to 800%, for example, 100% to 700%, for example, 100% to 600%, for example, 100% to 400%, for example, 100% to 350%, for example, 120% to 320%, for example, 120% to 300%, or for example, 120% to 250%.

[0216] The biodegradable film may have a transverse direction (TD) elongation of, for example, 50% to 900%, for example, 100% to 900%, for example, 100% to 800%, for example, 100% to 700%, for example, 100% to 600%, for example, 100% to 500%, for example, 150% to 450%, for example, 200% to 450%, or for example, 250% to 450%. If the elongation satisfies the above range, this may be advantageous in terms of the flexibility of the film.

[0217] The biodegradable film is cut into a size of 4 cm in length and 1 cm in width, and measured for the maximum deformation just before breakage using an INSTRON universal testing machine (4206-001, manufacturer: UTM) at a tensile speed of 50 mm / min. The ratio of the maximum deformation to the initial length is calculated as the elongation.

[0218] On the other hand, the biodegradable film may have a tensile modulus of, for example, 50 to 400 MPa, for example, 80 to 350 MPa, for example, 100 to 350 MPa, or 100 to 300 MPa in a strain-stress curve. If the tensile modulus satisfies the above range, this may be advantageous in terms of flexibility of the film.

[0219] Furthermore, the tensile modulus of the biodegradable film may be the same or different in the machine direction (MD) and the transverse direction (TD) of the biodegradable film.

[0220] For example, the biodegradable film may have a tensile modulus in the machine direction (MD) of, for example, 100 to 400 MPa, 150 to 350 MPa, for example, 180 to 320 MPa, or for example, 200 to 300 MPa.

[0221] The biodegradable film may have a tensile modulus in the transverse direction (TD) of, for example, 50 to 300 MPa, 80 to 300 MPa, for example, 100 to 300 MPa, for example, 100 to 250 MPa, or 100 to 200 MPa.

[0222] The biodegradable film is cut to a length of 100 mm and a width of 15 mm and attached to an INSTRON universal testing machine (4206-001, manufacturer: UTM) with a chuck spacing of 50 mm in accordance with ASTM-D882. The test is carried out at a room temperature of 25°C and a tensile speed of 200 mm / min, and the tensile modulus is measured using a program installed on the device. If the tensile modulus satisfies the above range, it is possible to simultaneously improve the productivity, processability, and moldability of the biodegradable film.

[0223] Furthermore, biodegradable films are characterized by a biodegradability of 90% or more in soil and oceans. Biodegradability indicates the rate of decomposition compared to a standard material (e.g., cellulose) over the same period. The Korean Ministry of Environment defines a biodegradable material as one that is 90% or more biodegradable compared to a standard material.

[0224] [Biodegradable mulching film and method for preparing biodegradable mulching film] According to one embodiment of the present invention, there is provided a biodegradable mulching film formed from a biodegradable resin composition.

[0225] Specifically, the mulching film can be formed from a biodegradable resin composition that includes biomass and a polyhydroxyalkanoate (PHA) resin.

[0226] Specifically, the mulching film can be prepared by a method including melt-extruding biomass and polyhydroxyalkanoate (PHA) resin to prepare biodegradable pellets, and molding the biodegradable pellets.

[0227] Molding can be performed by any method known in the art, such as extrusion, injection molding, compression molding, pressure molding, blowing or blow molding (e.g., blown film, foam blowing), calendaring, rotational molding, casting (e.g., cast sheet, cast film), or thermoforming. Specifically, molding can include, for example, extrusion or blow molding at 100°C to 180°C.

[0228] According to one embodiment of the present invention, the biodegradable resin composition can be used to provide biodegradable films and mulching films that can be biodegraded in both soil and the ocean, and at the same time have excellent qualities such as improved flexibility and a moderate level of strength.

[0229] The physical properties of the mulching film can be similar to or the same as the physical properties of the biodegradable film.

[0230] In particular, since the mulching film uses a biodegradable resin composition, it is effective in blocking ultraviolet rays, thereby preventing the film itself from aging due to ultraviolet rays and resulting in improved life characteristics.

[0231] Furthermore, the mulching film can provide excellent effects such as inhibiting water evaporation, inhibiting weed growth, inhibiting the loss of fertilizer components in the soil, maintaining constant temperature and humidity, and retaining heat.

[0232] Aspects of the invention The present invention will be described in detail below with reference to examples. However, the following examples are intended to illustrate the present invention, and the scope of the present invention is not limited to these examples. [Example]

[0233] Example 1 As shown in Table 1 below, polybutylene adipate terephthalate (PBAT) resin (manufacturer: Ankor Bioplastics), PHA resin (3-HB-co-4-HB, aPHA) (manufacturer: CJ), coffee grounds (coffee waste) (manufacturer: CJ), and a diacid additive were melt extruded to obtain biodegradable pellets.

[0234] Melt extrusion was carried out at about 160°C, the extrudate was cooled to about 30°C and cut with a pellet cutter to prepare pellets.

[0235] The pellets were dried at about 80° C. for 4 hours and blown at about 150° C. to prepare biodegradable films.

[0236] Example 2 As shown in Table 1 below, a biodegradable film was prepared in the same manner as in Example 1, except that epoxidized coffee grounds were used instead of the coffee grounds in Example 1.

[0237] The epoxidized coffee grounds were obtained by polymerizing coffee grounds (coffee waste) as biomass with epichlorohydrin in an alkaline solution of 2% NaOH at about 80° C. for about 5 hours.

[0238] The epoxy polymerized coffee grounds were filtered using a filter and dried at about 50° C. for 5 hours.

[0239] Examples 3 and 4 Biodegradable films were prepared in the same manner as in Example 2, except that the composition of the biodegradable films was changed as shown in Table 1 below.

[0240] Examples 5 and 6 Biodegradable films were prepared in the same manner as in Example 2, except that epoxidized soybean hulls were used instead of epoxidized coffee grounds and the composition of the biodegradable films was changed as shown in Table 1 below.

[0241] Examples 7 and 8 Biodegradable films were prepared in the same manner as in Example 2, except that epoxidized corn cob was used instead of epoxidized coffee grounds, and the composition of the biodegradable films was changed as shown in Table 1 below.

[0242] Examples 9 and 10 Biodegradable films were prepared in the same manner as in Example 2, except that epoxidized cellulose was used instead of epoxidized coffee grounds and the composition of the biodegradable films was changed as shown in Table 1 below.

[0243] Example 11 Biodegradable films were prepared in the same manner as in Example 1, except that lignin was used instead of coffee grounds and the composition of the biodegradable films was changed as shown in Table 1 below.

[0244] Example 12 Biodegradable films were prepared in the same manner as in Example 11, except that epoxidized lignin was used instead of lignin, as shown in Table 1 below.

[0245] Comparative Example 1 As shown in Table 1 below, biodegradable films were prepared in the same manner as in Example 1, except that the biodegradable films contained only PBAT resin and thermoplastic starch (TPS) and did not contain PHA or biomass.

[0246] Comparative Example 2 As shown in Table 1 below, a biodegradable film was prepared in the same manner as in Example 1, except that the biodegradable film contained only PBAT resin and coffee grounds and no PHA resin.

[0247] Comparative Example 3 As shown in Table 1 below, a biodegradable film was prepared in the same manner as in Comparative Example 2, except that epoxidized coffee grounds were used instead of coffee grounds.

[0248] Test Example Test Example 1: Tensile strength The biodegradable films prepared in the examples and comparative examples were cut to a length of 100 mm and a width of 15 mm, respectively, and attached to an INSTRON universal testing machine (4206-001, manufacturer: UTM) with a chuck spacing of 50 mm in accordance with ASTM-D882. The test was carried out at a room temperature of 25°C and a tensile speed of 200 mm / min, and the tensile strength was measured using a program installed on the device.

[0249] Test Example 2: Elongation The biodegradable films prepared in the examples and comparative examples were cut into 4 cm long and 1 cm wide pieces, and the maximum deformation just before breakage was measured using an INSTRON universal testing machine (4206-001, manufacturer: UTM) at a tensile speed of 50 mm / min. The ratio of the maximum deformation to the initial length was calculated as the elongation.

[0250] The tensile strength and elongation of the biodegradable films obtained in the Examples and Comparative Examples are summarized in Table 1 below.

[0251] [Table 1]

[0252] As can be seen from Table 1 above, the biodegradable films of Examples 1 to 12 were significantly superior in tensile strength and elongation compared to the biodegradable films of Comparative Examples 1 to 3. Furthermore, the biodegradable films of Examples 1 to 12 were biodegradable in both soil and the ocean.

[0253] Specifically, the biodegradable films of Examples 1 to 12 contained PHA resin and biomass such as coffee grounds, soybean hulls, corncobs, cellulose, or lignin, and therefore exhibited excellent flexibility while maintaining moderate strength, with tensile strengths ranging from about 7.57 to about 24.57 MPa and elongations ranging from about 50.48% to about 778.00%. Furthermore, most of the biodegradable films of the Examples exhibited excellent elongations ranging from 100% to 900%.

[0254] In contrast, the film of Comparative Example 1, which contains only PBAT resin and TPS and does not contain biomass or PHA resin, has excellent tensile strength and elongation, but its biodegradability in soil and the ocean is expected to be significantly lower than that of the biodegradable films of Examples 1 to 12, or to require a longer period of time for biodegradation.

[0255] Furthermore, the tensile strength and elongation of the films of Comparative Examples 2 and 3, which contained only PBAT resin and coffee grounds and no PHA resin, were significantly reduced compared to the biodegradable films containing PHA resin and coffee grounds of Examples 3 and 4. Furthermore, it is expected that the biodegradability of the films of Comparative Examples 2 and 3, which did not contain PHA resin, in soil and ocean will be significantly lower than that of the biodegradable films of Examples 1 to 12, or that biodegradation may require a longer period of time.

[0256] On the other hand, it was confirmed that the tensile strength and elongation differ depending on whether the biomass is epoxidized or not.

[0257] Specifically, although the biodegradable film of Example 2 had the same composition as the biodegradable film of Example 1, when epoxidized biomass was used, the tensile strength was about 15.61 MPa and the elongation was about 277.60%, which indicated that the tensile strength and elongation were significantly increased compared to the biodegradable film of Example 1, which had a tensile strength of about 13.16 MPa and an elongation of about 56.92%.

[0258] Therefore, when a biodegradable film contains a PHA resin and epoxidized biomass, it is possible to improve the elongation while maintaining a moderate tensile strength, and since this biodegradable film is biodegradable in both soil and the ocean, an excellent film can be achieved.

Claims

1. A biodegradable resin composition comprising biomass and a polyhydroxyalkanoate (PHA) resin, the polyhydroxyalkanoate (PHA) resin is a copolymerized polyhydroxyalkanoate resin containing at least one repeating unit selected from the group consisting of 3-hydroxybutyrate (3-HB), 3-hydroxypropionate (3-HP), 3-hydroxyvalerate (3-HV), 3-hydroxyhexanoate (3-HH), 4-hydroxyvalerate (4-HV), 5-hydroxyvalerate (5-HV), 6-hydroxyhexanoate (6-HH), and 4-hydroxybutyrate (4-HB) repeating units; the biomass comprises epoxidized hydroxyl groups (OH groups); The biodegradable resin composition further contains polybutylene adipate terephthalate (PBAT), The biodegradable resin composition comprises the biomass in an amount of 10 to 50 wt % and the polyhydroxyalkanoate (PHA) resin in an amount of 10 to 80 wt %, based on the total weight of the biodegradable resin composition.

2. the polyhydroxyalkanoate (PHA) resin comprises a first PHA resin and a second PHA resin; the first PHA resin comprises 4-HB repeat units in an amount of 15% to 60% by weight, based on the total weight of the first PHA resin; the second PHA resin comprises 4-HB repeat units in an amount of 0.1 wt % to 30 wt %, based on the total weight of the second PHA resin; The biodegradable resin composition according to claim 1, wherein the content of the 4-HB repeating unit of the first PHA resin and the content of the 4-HB repeating unit of the second PHA resin are different from each other.

3. The biodegradable resin composition according to claim 1, wherein the biomass comprises at least one selected from the group consisting of natural substances derived from herbs, natural substances derived from wood, lignin, cellulose, and bio-by-products.

4. The biodegradable resin composition according to claim 2, comprising the first PHA resin in an amount of 5% by weight to 80% by weight and the second PHA resin in an amount of 5% by weight to 80% by weight, based on the total weight of the biodegradable resin composition.

5. The biodegradable resin composition according to claim 2, wherein the weight ratio of the first PHA resin to the second PHA resin to the biomass is 1:0.5-9:1-2.

6. the first PHA resin has a glass transition temperature (Tg) of −45° C. to −10° C.; The second PHA resin satisfies at least one characteristic selected from a glass transition temperature (Tg) of −30° C. to 80° C., a crystallization temperature (Tc) of 70° C. to 120° C., and a melting temperature (Tm) of 100° C. to 170° C.; and The biodegradable resin composition according to claim 2 , wherein the glass transition temperature (Tg) of the first PHA resin and the glass transition temperature (Tg) of the second PHA resin are different from each other.

7. 2. The biodegradable resin composition according to claim 1, further comprising at least one biodegradable resin selected from the group consisting of polylactic acid (PLA), polybutylene succinate (PBS), polybutylene adipate (PBA), polybutylene succinate adipate (PBSA), polybutylene succinate terephthalate (PBST), polycaprolactone (PCL), polybutylene succinate adipate terephthalate (PBSAT), and thermoplastic starch (TPS).

8. The biodegradable resin composition according to claim 1, further comprising a physical property improver, wherein the physical property improver comprises at least one selected from the group consisting of a diamine, a diacid, and an isocyanate.

9. 2. The biodegradable resin composition according to claim 1, further comprising at least one additive selected from the group consisting of pigments, colorant absorbers, light absorbers, antioxidants, compatibilizers, extenders, nucleating agents, melt strength enhancers, and slip agents.

10. A biodegradable film formed from a biodegradable resin composition comprising biomass and a polyhydroxyalkanoate (PHA) resin, the polyhydroxyalkanoate (PHA) resin is a copolymerized polyhydroxyalkanoate resin containing at least one repeating unit selected from the group consisting of 3-hydroxybutyrate (3-HB), 3-hydroxypropionate (3-HP), 3-hydroxyvalerate (3-HV), 3-hydroxyhexanoate (3-HH), 4-hydroxyvalerate (4-HV), 5-hydroxyvalerate (5-HV), 6-hydroxyhexanoate (6-HH), and 4-hydroxybutyrate (4-HB) repeating units; the biomass comprises epoxidized hydroxyl groups (OH groups); The biodegradable resin composition further contains polybutylene adipate terephthalate (PBAT), The biodegradable resin composition comprises 10 to 50% by weight of the biomass and 10 to 80% by weight of the polyhydroxyalkanoate (PHA) resin, based on the total weight of the biodegradable resin composition.

11. 11. The biodegradable film according to claim 10, having a tensile strength of 5 to 50 MPa and an elongation of 50% to 900%, as measured using a universal testing machine (UTM) according to ASTM D882.

12. A method for preparing the biodegradable film of claim 10 or 11, comprising: A method for preparing a biodegradable film, comprising the steps of: (1) melt-extruding a biodegradable resin composition comprising biomass and a polyhydroxyalkanoate (PHA) resin to prepare biodegradable pellets; and (2) molding the biodegradable pellets.

13. the biomass comprises epoxidized biomass; 13. The method for preparing a biodegradable film according to claim 12, wherein the epoxidation treatment comprises polymerizing biomass with epihalohydrin in an alkaline solution to obtain an epoxy-polymerized biomass, and filtering and drying the epoxy-polymerized biomass.

14. the polyhydroxyalkanoate (PHA) resin comprises a first PHA resin and a second PHA resin; the first PHA resin comprises 4-HB repeat units in an amount of 15% to 60% by weight, based on the total weight of the first PHA resin; the second PHA resin comprises 4-HB repeat units in an amount of 0.1 wt % to 30 wt %, based on the total weight of the second PHA resin; 13. The method for preparing a biodegradable film according to claim 12, wherein the content of the 4-HB repeating unit of the first PHA resin and the content of the 4-HB repeating unit of the second PHA resin are different from each other.

15. 13. The method for preparing a biodegradable film according to claim 12, wherein the melt extrusion is carried out at a temperature of 120°C to 200°C, and the molding is carried out at a temperature of 100°C to 180°C by extrusion molding or blow molding.

16. A biodegradable mulching film formed from the biodegradable resin composition according to any one of claims 1 to 9.

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