Marine biodegradable polyols, marine biodegradable polymer compounds, and marine biodegradable resin compositions

A marine biodegradable polyol and polymer compounds enhance biodegradation in seawater by introducing cleavage sites and microbial growth, addressing the inefficiency of biodegradable resins in low microbial environments.

JP7848809B2Active Publication Date: 2026-04-21NISSHINBO IND INC
View PDF 7 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
NISSHINBO IND INC
Filing Date
2021-11-30
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Biodegradable resins face challenges in decomposing efficiently in seawater environments with low microbial concentrations, and there is a need for materials that can accelerate decomposition in various types of seawater.

Method used

A marine biodegradable polyol is developed by bonding organic anions with metal cations via ionic bonding, introducing cleavage sites in polymers to promote biodegradation, and combining it with biodegradable resins to enhance decomposition in seawater through pore formation and microbial growth.

Benefits of technology

The marine biodegradable polyol and polymer compounds accelerate the biodegradation of resins in seawater, ensuring effective decomposition and reducing marine pollution.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007848809000001
    Figure 0007848809000001
  • Figure 0007848809000002
    Figure 0007848809000002
  • Figure 0007848809000003
    Figure 0007848809000003
Patent Text Reader

Abstract

Provided is a marine biodegradable polyol that is a compound which: includes at least two organic anions having a molecular weight of 100-5000; has a structure in which said organic anions are bonded by ionic bonds formed by a metal cation having a valence of two or higher; and includes at least two hydroxyl groups in each molecule.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] This invention relates to marine biodegradable polyols, marine biodegradable polymer compounds, and marine biodegradable resin compositions. [Background technology]

[0002] In recent years, environmental pollution (marine pollution) and adverse effects on ecosystems caused by microplastics have become a serious problem, and various initiatives to reduce the environmental burden have begun. Among these, the development and widespread use of biodegradable resins are attracting attention.

[0003] On the other hand, while general biodegradable resins exhibit high biodegradability in environments with many microorganisms responsible for decomposition, such as soil and sludge, they have the drawback of being difficult to decompose in environments with extremely low microbial concentrations, such as in the ocean (Non-Patent Literature 1). Furthermore, even for resins that have been reported to be biodegradable in the ocean, such as polycaprolactone (PCL) and polyhydroxyalkanoic acid (PHA), it has been found that the rate of decomposition varies greatly depending on the type of seawater. It has been reported that various factors such as the presence and number of decomposing bacteria in the seawater, salt concentration, pH, water temperature, dissolved oxygen concentration, and dissolved organic carbon content are influencing this (Non-Patent Literature 2).

[0004] Therefore, there is a need to develop materials that can be reliably decomposed in any type of seawater, and materials that can act as decomposition accelerators for resins that do not biodegrade easily in seawater. [Prior art documents] [Non-patent literature]

[0005] [Non-Patent Document 1] Hideki Takada, "Current Status, International Trends, and Countermeasures Regarding Microplastic Pollution," Journal of the Japan Society of Waste Management and Resource Recycling, Vol. 29, No. 4, pp. 261-269, 2018. [Non-Patent Document 2] Akira Ebisu et al., "Decomposition of Biodegradable Plastics in Seawater," *Fisheries Engineering*, Vol. 40 No. 2, pp. 143-149, 2003. [Overview of the Initiative] [Problems that the invention aims to solve]

[0006] This invention has been made in view of the above circumstances, and aims to provide a biodegradation accelerator that promotes the decomposition of biodegradable resins and the like in the ocean and accelerates biodegradation. [Means for solving the problem]

[0007] As a result of diligent research to solve the aforementioned problems, the present inventors have found that a marine biodegradable polyol obtained by bonding two or more organic anions with a molecular weight of 100 to 5,000, each having at least one hydroxyl group, with one or more divalent or greater metal cations via ionic bonding, is cleaved when the divalent or greater metal cations constituting the polyol undergo ion exchange with monovalent cations such as sodium and potassium in seawater, thereby promoting marine biodegradation.

[0008] The aforementioned marine biodegradable polyol can be used as a binder. By substituting a portion of the polyol with the marine biodegradable polyol in a polymer made from polyol, ionic bond-triggered cleavage sites can be introduced into the polymer, thereby imparting marine biodegradability. Furthermore, a marine biodegradable polymer compound can be obtained by reacting and bonding a single polyol with a polyfunctional reactive compound. In addition, by using the marine biodegradable polymer in combination with a resin, particularly a biodegradable resin, it has been found that the material undergoes primary decomposition in seawater, resulting in (1) the formation of pores in the resin material, increasing the specific surface area of ​​the resin and promoting the growth of microorganisms responsible for decomposition, and (2) the primary decomposition promotes secondary decomposition, i.e., biodegradation by microorganisms. As a result, the biodegradation of the resin material in the ocean can be promoted, thus completing the present invention.

[0009] In other words, the present invention provides the following marine biodegradable polyols, marine biodegradable polymer compounds, and marine biodegradable resin compositions. 1. A marine biodegradable polyol that contains two or more organic anions with a molecular weight of 100 to 5,000, the organic anions being bonded by ionic bonds with metal cations of 2 or higher valence, and the molecule containing two or more hydroxyl groups. 2. A marine biodegradable polyol having a repeating unit in which the organic anion comprises at least one bond selected from ether bonds, ester bonds, amide bonds, and carbonate bonds. 3. A marine biodegradable polyol of type 2, wherein the repeating units are derived from polyalkylene glycol, polyester, polycaprolactone, polycarbonate, or polyamide. 4. Two or three marine biodegradable polyols, wherein the repeating unit contains at least one bond of an ether bond and an ester bond. 5. The organic anion is a carboxylic acid anion (-COO - ), sulfonate anion (-SO3 - ), sulfate anion (-O-SO3 - ) and phosphate anion (-P(=O)(OH)-O - A marine biodegradable polyol of any of 1 to 4 having an anionic substituent selected from ). 6. A marine biodegradable polyol of any of 1 to 5, wherein the organic anion has a carboxylic acid anion. 7. A marine biodegradable polyol of any of 1 to 6, wherein the divalent or higher metal cation is a calcium ion, a magnesium ion, or an aluminum ion. 8. A marine biodegradable polyol of any of 1 to 7 having one or more hydroxyl groups at the end of the main chain. 9. A marine biodegradable polyol, one of 1-8, which is a linear polymer compound. 10. A marine biodegradable polyol from 1 to 9 that does not contain a ring structure within the molecule. 11. A marine biodegradable polyol of any of the 1 to 10 types, with a molecular weight of 500 to 10,000. 12.1 Any one of marine biodegradable polyols having two or more divalent or higher metal cations in the molecule, ranging from 1 to 11. 13. Any one of marine biodegradable polyols having a relative degree of cellulose degradation of 60% or more, ranging from 1 to 12. 14. A linking agent that imparts marine biodegradability using any one of marine biodegradable polyols ranging from 1 to 13. 15. A marine biodegradable polymer compound obtained by sequentially polymerizing any one of marine biodegradable polyols ranging from 1 to 13 and a compound having two or more reactive groups that react with hydroxy groups. 16. The marine biodegradable polymer compound of 15, which is polyurethane or polyester. 17. A marine biodegradable resin composition containing the marine biodegradable polymer compound of 15 or 16 and a resin. 18. The marine biodegradable resin composition of 17, wherein the resin is a biodegradable resin. 19. The marine biodegradable resin composition of 17 or 18, wherein the content of the marine biodegradable polymer is 3 to 50% by mass and the content of the biodegradable resin is 50 to 97% by mass. 20. A molded article obtained from any one of the marine biodegradable resin compositions of 17 to 19.

Advantages of the Invention

[0010] The marine biodegradable polyol of the present invention has marine biodegradability, and by using it in combination with other polyol raw materials as a raw material, marine biodegradability can be imparted to the polymer compound. By performing sequential polymerization using this polyol as a raw material, a marine biodegradable polymer compound can be obtained. Since the marine biodegradable polymer compound has marine biodegradability, the composition and molded article containing it are promoted to biodegrade in the ocean and are useful for preventing marine pollution. By using the marine biodegradation promoter composed of the marine biodegradable polymer of the present invention, an environmentally friendly composition and molded article can be obtained.

Modes for Carrying Out the Invention

[0011] [Marine Biodegradable Polyol] The marine biodegradable polyol of the present invention contains two or more organic anions having a molecular weight of 100 to 5,000, and has a structure in which the organic anions are bonded by ionic bonds with divalent or higher metal cations, and is a compound containing two or more hydroxy groups in the molecule.

[0012] The molecular weight of the organic anion is 100 to 5,000, but considering cleavage in seawater and biodegradability, those having a molecular weight of 500 to 4,000 are preferred, those having a molecular weight of 700 to 3,000 are more preferred, and those having a molecular weight of 900 to 2,500 are most preferred. When the molecular weight exceeds 5,000, biodegradation is difficult, and when it is less than 100, the proportion of ions in the resin increases, and there is concern about a decrease in mechanical properties, so it is not preferred. In the present invention, the molecular weight means the absolute molecular weight measured using the static light scattering method.

[0013] The organic anion preferably has a repeating unit containing at least one bond selected from an ether bond, an ester bond, an amide bond, and a carbonate bond. From the viewpoint of imparting physical properties such as flexibility, strength, hydrophobicity, heat resistance, and chemical resistance to the marine biodegradable polymer compound using the marine biodegradable polyol of the present invention, it is more preferable that there are 3 or more of the repeating units, further preferably 4 or more, and most preferably 5 or more.

[0014] From the viewpoints of both biodegradability and mechanical properties, the repeating unit is preferably derived from a polyalkylene glycol, a polyester, a polycaprolactone, a polycarbonate, or a polyamide, more preferably derived from a polyalkylene glycol, a polyester, or a polycaprolactone, and still more preferably derived from a polyester or a polycaprolactone.

[0015] The organic anion is a carboxylic acid anion (-COO - ), a sulfonic acid anion (-SO3 - ), a sulfuric acid anion (-O-SO3 - ), and a phosphoric acid anion (-P(=O)(OH)-O -Those having an anionic substituent selected from - are more preferred.

[0016] Examples of the divalent or higher-valent metal cations include those derived from alkaline earth metals, earth metals, transition metals, etc. Considering safety, calcium ions, magnesium ions, and aluminum ions are preferred. Considering the environment in seawater, calcium ions and magnesium ions are more preferred, and calcium ions are most preferred.

[0017] The marine biodegradable polyol preferably has a hydroxy group at the end of the main chain.

[0018] From the perspective of biodegradability, the marine biodegradable polyol is preferably linear. However, in order to adjust the biodegradation rate, it can be made into a branched structure or a crosslinked structure with a polyfunctional component as appropriate. For example, the marine biodegradable polyol can improve heat resistance by mixing an appropriate amount of polyfunctional groups such as glycerin skeletons and trimethylolpropane skeletons and forming ionic bonds with divalent or higher-valent metal cations. Specific components having a polyfunctional skeleton include glycerin, trimethylolpropane, polypropylene glycol triol type 300, triol type 1500 (manufactured by Fujifilm Wako Pure Chemical Corporation), Kuraray Polyol F-1010, F-510 (manufactured by Kuraray Co., Ltd.), Placcel 308 (manufactured by Daicel Corporation), and compounds in which one or more monovalent anionic substituents are introduced through a linking group described below to the hydroxy groups at the ends of polyol compounds.

[0019] From the perspective of promoting biodegradability, the marine biodegradable polyol preferably does not contain a ring structure. However, from the perspective of imparting physical properties, a ring structure may be introduced within a range that does not impair biodegradability and its control.

[0020] The molecular weight of the marine biodegradable polyol is preferably 500 to 10,000, more preferably 1,000 to 5,000, and even more preferably 2,000 to 4,000, considering handling properties and mechanical properties. Good handling properties and mechanical properties are obtained when the molecular weight is within the above range. When used as a chain lengthening agent in polyurethanes, etc., or as an aid for decomposition (molecular fragmentation) in seawater, the molecular weight is preferably 500 to 3,000, and more preferably 600 to 2,000. Good reactivity and control of the overall biodegradation rate are obtained within the above range.

[0021] Specific structures of the marine biodegradable polyol include a structure in which two or more monovalent organic anions, each having at least one hydroxyl group and one anionic substituent, are bonded by one metal cation of divalent or higher (hereinafter also referred to as polyol A), and a structure in which a polyvalent organic anion having two or more anionic substituents is bonded by a metal cation of divalent or higher, and its end is sealed with a monovalent organic anion having at least one hydroxyl group and one anionic substituent via a metal cation of divalent or higher (hereinafter also referred to as polyol B). In other words, polyol B contains one or more repeating units consisting of polyvalent organic anions having two or more anionic substituents, each bonded via a metal cation of divalent or higher, and its end is sealed with the monovalent organic anion via a metal cation of divalent or higher. That is, polyol A has only one metal cation per molecule, while polyol B has two or more metal cations per molecule.

[0022] As the number of repeating units consisting of polyvalent organic anions increases, the ionic bonding properties become stronger and marine biodegradability improves, but this also causes a decrease in mechanical properties. Therefore, as the marine biodegradable polyol, polyol A or polyol B with 1 to 10 repeating units consisting of polyvalent organic anions is preferred, polyol A or polyol B with 1 to 5 repeating units consisting of polyvalent organic anions is more preferred, and polyol B with 1 to 4 repeating units consisting of polyvalent organic anions is even more preferred.

[0023] The marine biodegradable polyol of the present invention preferably exhibits a relative cellulose degradation rate of 60% or more after a culture period of 56 days (2 months). If the relative cellulose degradation rate is 60% or more, it can be determined that the material possesses intrinsic biodegradability, at least in the ocean. A relative cellulose degradation rate of 70% or more is more preferable, and 80% or more is even more preferable. The relative cellulose degradation rate can be measured by methods such as the marine biodegradation test method using BOD based on ASTM D6691 or a modified version thereof.

[0024] [Method for producing marine biodegradable polyols] Polyol A is obtained from a salt compound (hereinafter also referred to as salt compound A) consisting of a monovalent organic anion and a monovalent cation having at least one hydroxyl group and one anionic substituent. Polyol B is obtained from salt compound A and a salt compound (hereinafter also referred to as salt compound B) consisting of a polyvalent organic anion and a monovalent cation having two or more monovalent anionic substituents.

[0025] An example of salt compound A is a salt compound having a structure in which one of the aforementioned monovalent anionic substituents is introduced via a linking group to a compound having two hydroxyl groups. An example of salt compound B is a salt compound having a structure in which two or more of the aforementioned monovalent anionic substituents are introduced via linking groups to a compound having two hydroxyl groups.

[0026] Compounds having two or more hydroxyl groups include polyalkylene glycols, polycaprolactone polyols, polyester polyols, and polycarbonate polyols. Commercially available products can be used, such as polypropylene glycol, diol type 1000, diol type 2000, triol type 300, triol type 1500 (manufactured by Fujifilm Wako Pure Chemical Industries Ltd.), Praxel 210B, 220N, 308 (Daicel Corporation), and Kuraray polyols P-1010, P-2010, P-2050, P-520, C-590, F-1010 (Kuraray Co., Ltd.).

[0027] A method for introducing a monovalent anionic substituent to a compound having two or more hydroxyl groups is, for example, -COO - When introducing the active functional group, methods include esterifying the compound having the active functional group with a divalent carboxylic acid anhydride in the presence of a monovalent metal salt, or reacting these with a monovalent metal to form a metal alkoxide, and then esterifying it with a divalent carboxylic acid anhydride. Examples of the divalent carboxylic acid anhydride include phthalic acid, trimellitic anhydride (this compound has one acid anhydride group and one carboxyl group), pyromellitic anhydride, 5-norbornene-endo-2,3-dicarboxylic acid anhydride, naphthic anhydride, naphthalenetetracarboxylic dianhydride, maleic anhydride, succinic anhydride, and chloride anhydride. Of these, succinic anhydride, maleic anhydride, and phthalic anhydride are preferred, and succinic anhydride and maleic anhydride are more preferred when considering biodegradability. Also, for example, -SO3 - When introducing the active functional group, one method involves reacting a compound having a hydroxyl group or an amino group as the active functional group with SO3 or an SO3-Lewis base complex in an aprotic polar solvent. Examples of Lewis bases include tertiary amines, pyridine, and DMF. Acetonitrile is preferred as the aprotic polar solvent. These reactions can be carried out by known methods.

[0028] Specific methods for producing the marine biodegradable polyol of the present invention include the following methods (1) and (2). (1) A method comprising the steps of forming a W / O emulsion containing salt compound A or salt compounds A and B in a water droplet, and performing a bonding treatment with a polyvalent metal salt (Method 1). (2) A method of adding a powder or solution of a polyvalent metal salt dropwise to a medium in which salt compound A or salt compounds A and B are dissolved, and allowing precipitation or sedimentation while performing a bonding treatment, or a method of adding a powder of a polyvalent metal salt or a solution in which salt compound A or salt compounds A and B are dissolved dropwise to a medium in which a polyvalent metal salt is dissolved, and allowing precipitation or sedimentation while performing a bonding treatment (Method 2). (3) A method of thermally melting the polymer compound A, adding a powder or solution of a polyvalent metal salt to the molten polymer compound A, and performing a bonding treatment.

[0029] Method 1 is a method comprising the steps of including salt compound A or salt compounds A and B in a water droplet and performing an ionic bonding treatment using a polyvalent metal salt.

[0030] An example of a method for forming a W / O emulsion is described below. First, a solution is prepared by dissolving one or more salt compounds A or B in water or a mixed solvent of water and a hydrophilic organic solvent. Heating may be performed at this time if necessary. Next, the solution is mixed with a hydrophobic organic solvent and emulsified using a stirrer or homogenizer. When mixing, the solution may be added to the hydrophobic organic solvent, or the hydrophobic organic solvent may be added to the solution. At this time, surfactants or polymer stabilizers may be dissolved in the hydrophobic organic solvent and used to control the particle size of water droplets in the W / O emulsion.

[0031] Another example of a method for forming a W / O emulsion is to put one or more salt compounds A or B, a hydrophobic agent, water, a surfactant, a hydrophobic organic solvent, and other necessary components into a container and emulsify them using a stirrer or homogenizer.

[0032] Heating may be performed when forming the W / O emulsion. Heating can increase the solubility, thereby homogenizing salt compound A or salt compounds A and B, and stabilizing the W / O emulsion. The heating temperature is preferably 15 to 100°C, and more preferably 40 to 80°C.

[0033] After forming the W / O emulsion, an ionic bonding treatment is performed. The bonding treatment can be carried out by adding a solution containing a polyvalent metal salt to the W / O emulsion and stirring. Alternatively, the W / O emulsion may be added to the solution containing the polyvalent metal salt and stirred.

[0034] Examples of the aforementioned polyvalent metal salts include calcium salts, strontium salts, magnesium salts, barium salts, radium salts, lead salts, zinc salts, nickel salts, iron salts, copper salts, cadmium salts, cobalt salts, manganese salts, aluminum salts, gallium salts, indium salts, and thallium salts. However, calcium salts, magnesium salts, and aluminum salts are preferred due to their presence in seawater, environmental impact, safety, and versatility. Calcium salts and magnesium salts are even more preferred when considering the environmental conditions of seawater. Specific examples of the aforementioned polyvalent metal salts include calcium chloride, calcium sulfate, calcium carbonate, calcium hydroxide, calcium oxide, magnesium chloride, magnesium sulfate, magnesium carbonate, magnesium hydroxide, magnesium oxide, aluminum sulfate, and potassium aluminum sulfate (potassium alum). However, calcium chloride, magnesium chloride, and aluminum sulfate are preferred due to their solubility in water, ease of handling, and cost.

[0035] The concentration of the polyvalent metal salt in the solution containing the polyvalent metal salt is preferably 1 to 40% by mass, and more preferably 10 to 30% by mass. The solvent of the solution is preferably water; a lower alcohol solvent such as methanol, ethanol, 1-propanol, 2-propanol, or a mixture thereof; however, a mixture of other organic solvents is also acceptable as long as the salt can be dissolved to the desired concentration without dissolving the particles.

[0036] The bonding treatment may be carried out with heating as needed. Heating may be performed when adding the solution containing the polyvalent metal salt to the dispersion, when stirring after addition, or both. The heating temperature is preferably 10 to 100°C, and more preferably 40 to 80°C. The treatment time is preferably 0.5 to 24 hours, and more preferably 1 to 12 hours. Heating can increase the solubility of the hydrophobic agent.

[0037] After the bonding treatment, marine biodegradable polyols can be obtained by washing and drying the particles as needed. Washing can be carried out by conventional methods, such as removing the solvent after the bonding treatment, adding water, and centrifuging. Drying can be carried out by conventional methods, such as spray drying, vacuum drying, or freeze-drying. The obtained marine biodegradable polyols may be subjected to surface treatment or pulverization to adjust the particle size using known equipment as needed.

[0038] Method 2 is a method in which a powder or solution of a polyvalent metal salt is added dropwise to a medium in which salt compound A or salt compounds A and B are dissolved, and precipitates or settles while performing a binding treatment, or a method in which a powder of a polyvalent metal salt or a medium in which a polyvalent metal salt is dissolved is added dropwise, and precipitates or settles while performing a binding treatment.

[0039] An example of Method 2 is described below. First, solution A is prepared by dissolving one or more salt compounds A or B in water or a mixed solvent of water and a hydrophilic organic solvent. At this time, heating may be done as necessary to improve solubility. Next, solution B containing the polyvalent metal salt is added and stirred. Alternatively, a solution containing one or more salt compounds A or B may be added to the solution containing the polyvalent metal salt and stirred. The solution containing the polyvalent metal salt can be the same as that described in the explanation of Method 1.

[0040] Furthermore, if the polyvalent metal salt has good reactivity and reacts even in a solid state, it may be used in powder form without a medium, or dispersed in a small amount of a medium.

[0041] This process allows for bonding, and the target polyol A or B, which gradually becomes insoluble, precipitates or settles. The processing time is preferably 0.5 to 24 hours, and more preferably 1 to 12 hours.

[0042] In this case, a surfactant or polymer stabilizer may be dissolved in at least one of solutions A and B for the purpose of controlling the particle size of the precipitate or sediment.

[0043] Heating may be performed when precipitating or precipitation the target polyol A or B. Heating may be performed when mixing solution A and solution B, when stirring after mixing, or both. Heating can increase the solubility of salt compound A or salt compounds A and B, thereby enabling polymerization by bonding and homogenizing the molecular weight distribution, and stabilizing the bonds. The heating temperature is preferably 15 to 100°C, and more preferably 40 to 80°C.

[0044] After processing, marine biodegradable polyols can be obtained by washing and drying the particles as needed. Washing can be carried out by conventional methods, such as removing the solvent after the bonding treatment and adding water and centrifuging. Drying can be carried out by conventional methods, such as spray drying, vacuum drying, or freeze-drying. The obtained marine biodegradable polyols may be subjected to surface treatment or pulverization to adjust the particle size using known equipment as needed.

[0045] Method 3 involves thermally melting the polymer compound A, adding a powder or solution of a polyvalent metal salt to the molten polymer compound A, and performing a bonding treatment.

[0046] An example of Method 3 is described below. First, polymer compound A is heated to prepare a molten polymer compound A. The heating temperature for polymer compound A is preferably above its melting point and above 100°C. Next, a powder of the polyvalent metal salt, or a polyvalent metal salt dispersed or dissolved in a suitable solvent such as water or a lower alcohol, is added to the molten polymer compound A while stirring. The same polyvalent metal salt as described in Method 1 can be used.

[0047] This process allows for bonding, gradually increasing the viscosity of the molten liquid and yielding polymer compound B as a bulk product. The processing time is preferably 0.5 to 24 hours, and more preferably 1 to 12 hours.

[0048] After processing, hydrophobic compound particles can be obtained by washing and drying the particles as needed. Washing can be carried out by conventional methods, such as removing the solvent after the bonding treatment and adding water and centrifuging. Drying can be carried out by conventional methods, such as spray drying, vacuum drying, or freeze-drying. The obtained group of hydrophobic compound particles may be subjected to surface treatment or pulverization to adjust the particle size using known equipment as needed.

[0049] Furthermore, when producing marine-degradable polyol B, for the purpose of adjusting its physical properties, a partial bridging structure or the like can be imparted by using salt compound A or a salt consisting of an anion and a monovalent cation having three or more monovalent anionic substituents together with salt compounds A and B. As such salts, polyhydric aliphatic carboxylates with a valency of three or more, such as aconitates, or polyhydric aromatic carboxylates, such as mellitic acid may be used.

[0050] The marine biodegradable polyol can be used as a binder to impart marine biodegradability. That is, marine biodegradability can be imparted to a compound obtained by reacting the marine biodegradable polyol with a compound having two or more reactive groups that react with hydroxyl groups. It may also be used in mixture with other polyols for the purpose of imparting marine biodegradability to polymer compounds obtained using other polyols. When used in mixture, it can be used in a proportion of 10 to 90% by mass of the total polyol, but from the viewpoint of the influence on the physical properties of the polymer composition consisting of the original polyol and marine biodegradability, it is preferable to use it in a proportion of 10 to 50% by mass, and more preferably 10 to 30% by mass.

[0051] [Marine biodegradable polymer compounds] The marine biodegradable polymer compound is obtained by sequentially polymerizing the marine biodegradable polyol and a compound having two or more reactive groups that react with hydroxyl groups. Examples of compounds having two or more reactive groups that react with hydroxyl groups include dicarboxylic acids or their acid chlorides, diisocyanates, and the like.

[0052] Examples of the dicarboxylic acids include aromatic dicarboxylic acids such as terephthalic acid, 2,6-naphthalenedicarboxylic acid, diphenyldicarboxylic acid, and isophthalic acid; and aliphatic carboxylic acids such as adipic acid and sebacic acid. These carboxylic acids may be used as is, or they may be used in the form of acid chlorides or activated esters to increase their reactivity as needed. Considering biodegradability in the environment, dicarboxylic acids that do not contain cyclic structures are preferred.

[0053] The step polymerization method for the marine biodegradable polyol and dicarboxylic acid is not particularly limited, and known step polymerization methods for polyesters can be used as a reference. For example, the method described in Textiles and Industry, Vol. 40, No. 4.5, pp. 259-261, 1984 can be used as a reference.

[0054] The reaction between the marine biodegradable polyol and the dicarboxylic acid may, if necessary, use polycondensation catalysts such as antimony trioxide, germanium catalysts, or titanium catalysts to accelerate the reaction; or catalysts commonly used in transesterification, such as magnesium acetate or manganese acetate. Considering the environmental impact, metal-free catalysts are preferred. The amount of catalyst used is preferably about 0.01 to 5 parts by mass per 100 parts by mass of marine biodegradable polyol.

[0055] Examples of the aforementioned diisocyanates include aliphatic isocyanates such as hexamethylene diisocyanate (HDI), pentamethylene diisocyanate (PDI), isophorone diisocyanate (IPDI), cyclohexane-1,4-diisocyanate, and methylenebis(4-cyclohexyl isocyanate), as well as aromatic isocyanates such as toluene diisocyanate (TDI), diphenylmethane-4,4-diisocyanate (MDI), xylene diisocyanate, and 1,4-phenylenedi diisocyanate. Considering biodegradability in the environment, isocyanates that do not contain cyclic structures are preferred, and linear aliphatic isocyanates such as HDI and PDI are more preferred.

[0056] The step polymerization method for the marine biodegradable polyol and diisocyanate is not particularly limited, and known step polymerization methods for polyurethanes can be used as a reference. For example, the method described in the Network Polymer Papers, Vol. 39, No. 1, pp. 10-19, 2018 can be used as a reference.

[0057] The reaction between the aforementioned marine biodegradable polyol and diisocyanate is carried out using amine catalysts such as 1,4-diazabicyclo[2.2.2]-octane (DABCO), 1,8-diazabicyclo-[5.4.0]-undeca-7-ene (DBU), N,N-dimethylcyclohexylamine (DMCA), and triethylamine, in order to shorten the reaction time and lower the reaction temperature by improving reactivity; dibutyltin dilaurate, tetramethyltin, tetramethyltin, and tetramethyltin. Tin catalysts such as labutyltin, tetraoctyltin, tributyltin chloride, dibutyltin dichloride, dimethyltin oxide, trimethyltin chloride, dimethyltin dichloride, trioctyltin chloride, dibutyltin oxide, dibutyltin diacetate, butyltin trichloride, dioctyltin dichloride, dioctyltin oxide, dioctyltin dilaurate, and dioctyltin diacetate may be used. Zinc complexes, iron complexes, bismuth complexes, and zirconium complexes similar to the tin complexes are also useful as catalysts. Considering the environmental impact, metal-free catalysts are preferred. The amount of catalyst used is preferably about 0.01 to 5 parts by mass per 100 parts by mass of marine biodegradable polyol.

[0058] [Marine biodegradable resin composition] The marine biodegradable polymer compound of the present invention can function as a marine biodegradation accelerator. That is, by using the marine biodegradable polymer compound of the present invention in combination with a resin, particularly a biodegradable resin, a resin composition that promotes biodegradation in the ocean can be obtained. Furthermore, multiple types of resins can be used in combination to adjust the physical properties and handling characteristics of the resin composition. Here, a biodegradable resin refers to a resin that is decomposed by the action of microorganisms in nature and ultimately broken down into inorganic substances such as water and carbon dioxide.

[0059] Resins that can be combined with the marine biodegradation accelerator of the present invention include polyethylene, polyester, polypropylene, polyethylene terephthalate, vinyl chloride, polystyrene, polyurethane, epoxy resin, chlorinated polyethylene resin, chlorinated polypropylene resin, modified nylon resin, phenolic resin, silicone resin, polyvinyl acetate, ethylene-vinyl acetate copolymer, polyvinyl chloride, polyvinylidene chloride, styrene-maleic acid resin, styrene-butadiene resin, butadiene resin, acrylonitrile-butadiene resin, poly(meth)acrylonitrile resin, (meth)acrylamide resin, bioPET, biopolyamide, biopolycarbonate, biopolyurethane, polyvinyl alcohol, polybutylene adipate / terephthalate, polyethylene terephthalate succinate, biopolybutylene succinate, polylactic acid blend, starch blend, polyester resin, polybutylene terephthalate succinate, polylactic acid, polyhydroxyalkanoic acid, etc. However, considering the reduction of environmental impact, resins with particularly high biodegradability are preferred.

[0060] Furthermore, the biodegradable resins include polycaprolactone, poly(caprolactone / butylene succinate), polybutylene succinate (PBS), poly(butylene succinate / adipate) (PBSA), poly(butylene adipate / terephthalate) (PBAT), poly(butylene succinate / carbonate), polyethylene terephthalate copolymer, poly(ethylene terephthalate / succinate), and poly(tetramethylene adipate / terephthalate). The raw materials include polyethylene succinate, polyvinyl alcohol, polyglycolic acid, glycolic acid / caprolactone copolymer, etc., which are petroleum-derived resins; (polylactic acid / polybutylene succinate) block copolymer, (polylactic acid / polycaprolactone) copolymer, (polylactic acid / polyether) copolymer, polylactic acid blend PBAT, lactic acid / glycolic acid copolymer, biopolybutylene succinate, poly(butylene succinate / adipate), starch blend Examples include resins made from partially biomass-derived raw materials such as polyester resin and poly(butylene terephthalate succinate); polyhydroxyalkanoates such as polyhydroxybutyrate, polyhydroxyvaleric acid, polyhydroxycaprylic acid, poly(hydroxybutyrate / hydroxyhexanoate) (PHBH), poly(3-hydroxybutyrate / 4-hydroxybutyrate) (P3HB4HB), and poly(hydroxybutyrate / hydroxyvaleric acid) (PHBV); and resins made from 100% biomass-derived raw materials such as polylactic acid (PLA); and resins made from natural polymers such as cellulose, cellulose acetate, cellulose ester resin, starch, esterified starch, and chitosan.

[0061] Of these, it is preferable to combine a biodegradable resin component selected from resins that are biodegradable in soil or compost but have poor biodegradability in the ocean, such as polycaprolactone, (bio)PBS, PBSA, PBAT, poly(tetramethylene adipate / terephthalate), poly(butylene succinate / carbonate), PHBH, PHBV and other polyhydroxyalkanoates, PLA, cellulose, starch, chitosan and other resins derived from natural polymers, with the marine biodegradation accelerator. Among these, PBSA, PBS, PBAT, PLA and starch-derived resins are particularly preferred as the biodegradable resin.

[0062] Furthermore, considering the reduction of environmental impact, the raw materials for the resin used in the combination are preferably biomass-derived, and most preferably 100% biomass-derived.

[0063] The resin composition of the present invention may contain a solvent. The solvent may dissolve the resin matrix while leaving the marine biodegradable polymer compound as particles, or it may dissolve both the resin and the marine biodegradable polymer compound. By adjusting these as appropriate, the composition can be used as a molded product formed into a film by casting, or as a paint, ink, surface treatment agent, etc. Preferred solvents include, for example, water, hexane, heptane, N-methylpyrrolidone, dimethylformamide, dimethylacetamide, dimethyl sulfoxide, dimethyl sulfone, acetone, methyl ethyl ketone, diethyl ketone, acetophenone, dimethyl ether, dipropyl ether, tetrahydrofuran, chloroform, methylene chloride, trichloroethylene, dichloroethylene, dichloroethane, tetrachloroethane, chlorobenzene, methanol, ethanol, n-propanol, isopropanol, butanol, pentanol, methyl glycol, methyl triglyceride, hexyl glycol, phenyl glycol, ethylene glycol, propylene glycol, phenol, cresol, polyethylene glycol, benzene, toluene, xylene, and the like. These may be used individually or in combination of two or more.

[0064] When a solvent is used, the total concentration of the resin and marine biodegradable polymer compound in the resin composition is preferably 0.5 to 90% by mass, more preferably 1 to 80% by mass, even more preferably 5 to 60% by mass, and most preferably 10 to 50% by mass. Furthermore, the ratio of the marine biodegradable polymer compound to the resin is preferably 99:1 to 10:90 by mass ratio, more preferably 97:3 to 40:60, even more preferably 95:5 to 50:50, and most preferably 90:10 to 60:40.

[0065] Furthermore, the resin composition of the present invention does not need to contain a solvent. In this case, the resin may be heated and melted, and a non-melting marine biodegradation accelerator may be added and mixed thereto, or the resin and the marine biodegradable polymer compound may be melted together and mixed.

[0066] In the resin composition of the present invention, the content of the marine biodegradable polymer compound is preferably 1 to 50% by mass, more preferably 3 to 50% by mass, even more preferably 5 to 45% by mass, still more preferably 7 to 40% by mass, and most preferably 10 to 35% by mass. On the other hand, the resin content is preferably 50 to 99% by mass, more preferably 50 to 97% by mass, even more preferably 55 to 95% by mass, still more preferably 60 to 93% by mass, and most preferably 65 to 90% by mass. By including the marine biodegradable polymer compound within the above range, it can be used as a marine biodegradation accelerator that promotes biodegradation in seawater while maintaining the physical properties of the biodegradable resin.

[0067] The resin composition of the present invention may optionally contain additives such as antioxidants, mold release agents, release agents, surface modifiers, hydrophobic agents, water-repellent agents, hydrophilic agents, dyes and pigments, colorants, heat stabilizers, light stabilizers, weather resistance improvers, antistatic agents, antifogging agents, lubricants, antiblocking agents, hardening agents, softening agents, compatibilizers, flame retardants, flow improvers, plasticizers, dispersants, antibacterial agents, fillers, and metal deactivators. The content of these additives is not particularly limited as long as it does not impair the effects of the present invention, but it is preferably about 0.1 to 50 parts by mass per 100 parts by mass of resin.

[0068] If the resin composition contains a solvent, it can be prepared, for example, by adding the resin, the marine biodegradable polymer compound, and the additives as needed to the solvent simultaneously or in any order and mixing them. If the resin composition does not contain a solvent, for example, the resin may be melted, and the marine biodegradation accelerator and the additives as needed may be added simultaneously or in any order and mixed; or the resin and the marine biodegradation accelerator may be heated to melt them together and mixed, and the additives as needed may be added and mixed.

[0069] [Molded body] By molding using the aforementioned resin composition, a molded article can be obtained in which the marine biodegradation accelerator is dispersed or dissolved in the resin. If the resin composition contains a solvent, the resin composition can be used as is for molding; if the resin composition does not contain a solvent, the resin in the resin composition, or the resin and marine biodegradation accelerator, can be melted by heat before molding.

[0070] Examples of the shape of the molded article include film-like, fibrous, plate-like, foamed molded article-like, and other shapes depending on the application. The molding method is not particularly limited, and various conventionally known molding methods can be used. Specific examples include blow molding, injection molding, extrusion molding, compression molding, melt extrusion molding, solution casting molding, and calendering. [Examples]

[0071] The present invention will be described in more detail below with reference to manufacturing examples, embodiments, and comparative examples, but the present invention is not limited to the embodiments described below.

[0072] In the following examples and comparative examples, the volume-average particle size (MV) was measured using a MICROTRACK MT3000 (manufactured by Nikkiso Co., Ltd.). The molecular weight was measured as absolute molecular weight using static light scattering. Specifically, a nanoparticle analyzer (nano Partica SZ-100, manufactured by Horiba, Ltd.) was used to measure the scattered light intensity of four or more samples with different concentrations, and the result was obtained using a Debye plot. The refractive index increment (dn / dc) used to calculate the absolute molecular weight was measured using a differential refractometer (DRM-3000, manufactured by Otsuka Electronics Co., Ltd.). Measurements were performed using solvents in which each polymer compound could dissolve.

[0073] [1] Synthesis of marine biodegradable polyols [Example 1-1] Synthesis of marine biodegradable polyol A1 In a 5L flask, 1,000.0g of polypropylene glycol diol type 1000 (Mn1000) (manufactured by Fujifilm Wako Pure Chemical Industries, Ltd.) and 100.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 127.2g of sodium carbonate was added and the mixture was stirred at 60°C for 3 hours. Subsequently, the reaction mixture was cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to produce polymer compounds containing polypropylene glycol substituted with -COONa at one or both ends. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of methanol, and 550.0 g of a 20.0% by mass aqueous calcium chloride solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as droplets, which were recovered by decantation, concentrated, and then the solvent was removed under reduced pressure to produce marine biodegradable polyol A1, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A1 was dissolved in chloroform and its molecular weight was measured to be 3,800, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 2.2.

[0074] [Examples 1-2] Synthesis of marine biodegradable polyol A2 200.0 g of acetonitrile and 100.0 g of marine biodegradable polyol A1 were placed in a 1 L flask and dissolved with a stirrer. Next, 100.0 g of methanol was slowly added to reprecipitation. After removing the precipitate by filtration, the resulting solution was concentrated, and the solvent was further removed under reduced pressure to produce marine biodegradable polyol A2, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The molecular weight of the obtained marine biodegradable polyol A2 was measured by dissolving it in chloroform and found to be 2,600, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 1.3.

[0075] [Examples 1-3] Synthesis of marine biodegradable polyol A3 In a 5L flask, 1,000.0g of polyester diol (MW1000) (P-1010, manufactured by Kuraray Co., Ltd.) and 100.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 165.8g of potassium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to produce polymer compounds containing polyester diols with one or both ends substituted with -COOK. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 550.0 g of a 20.0% by mass aqueous calcium chloride solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was collected by removing the supernatant, and after washing with water, the remaining solvent was removed under reduced pressure to produce marine biodegradable polyol A3, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A3 was dissolved in chloroform and its molecular weight was measured to be 4,100, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 2.5.

[0076] [Examples 1-4] Synthesis of marine biodegradable polyol A4 In a 5L flask, 1,000.0g of polyester diol (MW2000) (P-2010, manufactured by Kuraray Co., Ltd.) and 50.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 63.6g of sodium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to obtain a compound with -COO at one or both ends. Na Polymer compounds containing polyester diols substituted with [substituted] were prepared. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 275.0 g of a 20.0% by mass aqueous calcium chloride solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was recovered by removing the supernatant, and after washing with water, the remaining solvent was removed under reduced pressure to prepare marine biodegradable polyol A4, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A4 was dissolved in chloroform and its molecular weight was measured to be 7,000, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 2.2.

[0077] [Examples 1-5] Synthesis of marine biodegradable polyol A5 200.0 g of acetonitrile and 100.0 g of marine biodegradable polyol A3 were placed in a 1 L flask and dissolved with a stirrer. Next, 100.0 g of methanol was slowly added to reprecipitation. After removing the precipitate by filtration, the resulting solution was concentrated, and the solvent was further removed under reduced pressure to produce marine biodegradable polyol A5, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A5 was dissolved in chloroform and its molecular weight was measured to be 2800, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 1.4.

[0078] [Examples 1-6] Synthesis of marine biodegradable polyol A6 In a 5L flask, 1,000.0g of polycaprolactone diol (Mn1000) (Praxel 210B, manufactured by Daicel Corporation) and 100.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 127.2g of sodium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to obtain a compound with -COO at one or both ends. Na Polymer compounds containing polycaprolactone diol substituted with were prepared. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 550.0 g of a 20.0% by mass aqueous calcium chloride solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was recovered by removing the supernatant, and after washing with water, the remaining solvent was removed under reduced pressure to produce marine biodegradable polyol A6, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A6 was dissolved in chloroform and its molecular weight was measured to be 3,600, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 2.1.

[0079] [Examples 1-7] Synthesis of marine biodegradable polyol A7 In a 5L flask, 1,000.0g of polycaprolactone diol (Mn2000) (Praxel 220N, manufactured by Daicel Corporation) and 50.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 70.5g of potassium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to produce polymer compounds containing polycaprolactone diol with one or both ends substituted with -COOK. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 240.0 g of a 20.0% by mass magnesium chloride aqueous solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was recovered by removing the supernatant liquid, and after washing with water, the remaining solvent was removed under reduced pressure to prepare marine biodegradable polyol A7, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A7 was dissolved in chloroform and its molecular weight was measured to be 7,500, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Mg was 2.4.

[0080] [Examples 1-8] Synthesis of marine biodegradable polyol A8 200.0 g of acetonitrile and 100.0 g of marine biodegradable polyol A6 were placed in a 2 L flask and dissolved with a stirrer. Next, 100.0 g of methanol was slowly added to reprecipitation. After removing the precipitate by filtration, the resulting solution was concentrated, and the solvent was further removed under reduced pressure to produce marine biodegradable polyol A8, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A8 was dissolved in chloroform and its molecular weight was measured to be 2,600, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 1.2.

[0081] [Examples 1-9] Synthesis of marine biodegradable polyol A9 In a 5L flask, 1,000.0g of polycarbonate diol (MW500) (C-590, manufactured by Kuraray Co., Ltd.) and 200.0g of succinic anhydride were dissolved in 1,000.0g of acetonitrile. Then, 300.0g of potassium carbonate was added and the mixture was stirred at 60°C for 30 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to obtain a polycarbonate diol with one or both ends replaced with -COOK. Carbonate We prepared polymer compounds containing diols. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 1,000.0 g of 20.0% by mass calcium chloride aqueous solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was recovered by removing the supernatant, and after washing with water, the remaining solvent was removed under reduced pressure to prepare marine biodegradable polyol A9, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A9 was dissolved in chloroform and its molecular weight was measured to be 2,200, and the theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 2.3.

[0082] [Examples 1-10] Synthesis of marine biodegradable polyol A10 In a 5L flask, 1,000.0g of trifunctional polyester polyol (MW500) (F-590, manufactured by Kuraray Co., Ltd.) and 320.0g of succinic anhydride were dissolved in 1,000.0g of acetonitrile. Then, 440.0g of potassium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to obtain a polyol with -COOK substituted at the ends. ester We prepared polymer compounds containing diols. 50.0 g of the prepared polymer compound and 450.0 g of polyol A3 were weighed into a 2 L flask and dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile. 250.0 g of 20.0% by mass aqueous calcium chloride solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was collected by removing the supernatant, washed with water, and the remaining solvent was removed under reduced pressure to produce marine biodegradable polyol A10, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A10 was dissolved in chloroform and its molecular weight was measured to be 7,800. The theoretical number of repeating units consisting of divalent anions derived from the polymer compound due to Ca was 5.8.

[0083] [Examples 1-11] Synthesis of marine biodegradable polyol A11 In a 5L flask, 500.0g of polycaprolactone diol (NM1000) (Praxel 210B, manufactured by Daicel Corporation) and 50.0g of succinic anhydride were dissolved in 500.0g of acetonitrile. Then, 84.4g of potassium carbonate was added and the mixture was stirred at 60°C for 3 hours. The reaction mixture was then cooled to room temperature, and the precipitate was removed by filtration. The resulting filtrate was concentrated, and the solvent was further removed under reduced pressure to produce polymer compounds containing polycaprolactone diol with one or both ends substituted with -COOK. The prepared polymer compound was dissolved in a mixed solvent of 500.0 g of deionized water and 500.0 g of acetonitrile, and 580.0 g of 20.0% by mass aqueous aluminum sulfate solution was added and the mixture was thoroughly stirred. The marine biodegradable polyol containing ionic bonds separated as a white precipitate. The precipitate was recovered by removing the supernatant, and after washing with water, the remaining solvent was removed under reduced pressure to produce marine biodegradable polyol A11, which contains ionic bonds in its molecule and has hydroxyl groups at both ends. The obtained marine biodegradable polyol A11 was a crosslinked structure that was poorly soluble in the medium.

[0084] Table 1 summarizes the marine biodegradable polyols A1 to A11.

[0085] [Table 1]

[0086] [2] Biodegradation tests of marine biodegradable polyols A1-A11 [Examples 2-1 to 2-11] The following seawater biodegradation tests were conducted on marine biodegradable polyols A1-A11) using the method described below. Microcrystalline cellulose (Sigma-Aldrich Avicel PH-101) was used as a control material, and the relative biodegradation rate of cellulose was evaluated. The results are shown in Table 2. <Testing methods and conditions> Method for measuring biodegradability: Measurement of oxygen consumption using a closed-loop respirator (refer to ASTM D6691). Test equipment: OxiTop IDS (manufactured by WTW) Culture temperature: 30±1℃, dark place Biodegradation degree (%)=(BOD O -BOD B ) / ThOD×100 BOD O : Biochemical oxygen demand for testing or confirmation of plant source activity (measured value: mg) BOD B : Average biochemical oxygen demand of a blank test (measured value: mg) ThOD: Required when the test material or control material is completely oxidized. Theoretical oxygen demand (calculated value: mg) Relative biodegradability of cellulose (%) = (Maximum biodegradability of test particles / Maximum biodegradability of cellulose) × 100 Seawater (collected from Tokyo Bay [Chiba Prefecture: Chiba Port]) The collected seawater was filtered to remove impurities using a 10 μm filter, and then aerated at room temperature (25°C). In addition, ammonium chloride (0.05 g / L) and potassium dihydrogen phosphate (0.1 g / L) were added as inorganic nutrients.

[0087] [Table 2]

[0088] As shown in Table 2, the marine biodegradable polyol of the present invention exhibited biodegradability, with a relative degradation rate of cellulose of 60% or more up to 56 days of cultivation.

[0089] [3] Synthesis of marine biodegradable polymer compounds [Examples 3-1 to 3-13, Comparative Examples 1-1 to 1-3] The marine biodegradable polyols shown in the following examples were used after being stirred at 90°C under a nitrogen atmosphere for at least one hour to thoroughly remove moisture.

[0090] [Example 3-1] Production of marine biodegradable polymer particle group (particle group AP1) The following components were placed in a 300 mL flask, and the mixture was heated and mixed with a stirrer in an oil bath at a temperature of 90°C under a nitrogen stream for 30 minutes. Marine biodegradable polyol A1 100.00g HDI 5.31g DBU 0.25g

[0091] Afterward, the reaction resin in the flask was allowed to cool and removed from the flask into a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP1 with a particle size of 23 μm.

[0092] [Example 3-2] Production of marine biodegradable polymer particle group (particle group AP2) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere with the oil bath temperature set to 60°C using a stirrer. Marine biodegradable polyol A2 100.00g MDI 10.10g DBU 0.25g

[0093] Afterward, the reaction resin in the flask was allowed to cool and removed from the flask into a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP2 with an MV of 25 μm.

[0094] [Example 3-3] Production of marine biodegradable polymer particle group (particle group AP3) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 85°C under a nitrogen stream. The mixture was then heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A3 100.00g HDI 4.71g DBU 0.25g

[0095] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP3 with an MV of 18 μm.

[0096] [Examples 3-4] Production of marine biodegradable polymer particle group (particle group AP4) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A4 100.00g HDI 2.88g DBU 0.25g

[0097] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP4 with an MV of 20 μm.

[0098] [Examples 3-5] Production of marine biodegradable polymer particle group (particle group AP5) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere with the oil bath temperature set to 80°C using a stirrer. Marine biodegradable polyol A5 100.00g MDI 9.82g

[0099] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP5 with an MV of 20 μm.

[0100] [Examples 3-6] Production of marine biodegradable polymer particle group (particle group AP6) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere with the oil bath temperature set to 80°C using a stirrer. Marine biodegradable polyol A6 100.00g HDI 5.13g DBU 0.25g

[0101] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP6 with an MV of 16 μm.

[0102] [Examples 3-7] Production of marine biodegradable polymer particle group (particle group AP7) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A7 100.00g HDI 2.46g DBU 0.25g

[0103] Afterward, the reaction resin in the flask was allowed to cool and removed from the flask into a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP7 with an MV of 22 μm.

[0104] [Examples 3-8] Production of marine biodegradable polymer particle group (particle group AP8) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere with the oil bath temperature set to 70°C using a stirrer. Marine biodegradable polyol A8 100.00g MDI 10.58g DBU 0.25g

[0105] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP8 with an MV of 22 μm.

[0106] [Examples 3-9] Production of marine biodegradable polymer particle group (particle group AP9) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A7 80.00g Marine biodegradable polyol A9 10.05g HDI 2.82g DBU 0.25g

[0107] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce AP9 particle group with an MV of 23 μm.

[0108] [Examples 3-10] Production of marine biodegradable polymer particle group (particle group AP10) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A4 85.00g Marine biodegradable polyol A10 10.52g IPDI 3.59g DBU 0.25g

[0109] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP10 with an MV of 18 μm.

[0110] [Example 3-11] Production of marine biodegradable polymer particle group (particle group AP11) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 85°C under a nitrogen stream. The mixture was then heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A7 95.00g Marine biodegradable polyol A11 3.66g HDI 2.60g DBU 0.25g

[0111] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP11 with an MV of 20 μm.

[0112] [Example 3-12] Production of marine biodegradable polymer particle group (particle group AP12) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere with the oil bath temperature set to 80°C using a stirrer. Marine biodegradable polyol A2 45.00g Marine biodegradable polyol A3 70.96g HDI 6.40g DBU 0.25g

[0113] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh opening 26 μm) to produce particle group AP12 with an MV of 18 μm.

[0114] [Example 3-13] Production of marine biodegradable polymer particle group (particle group AP13) The following components were placed in a 300 mL flask, and the mixture was heated and mixed for 30 minutes under a nitrogen atmosphere in an oil bath at a temperature of 90°C using a stirrer. Marine biodegradable polyol A5 45.00g Marine biodegradable polyol A6 57.86g HDI 5.67g DBU 0.25g

[0115] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP13 with an MV of 21 μm.

[0116] [Example 3-14] Production of marine biodegradable polymer particle group (particle group AP14) The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Marine biodegradable polyol A1 35.00g Marine biodegradable polyol A3 37.76g Marine biodegradable polyol A8 23.95g Marine biodegradable polyol A9 6.75g HDI 5.67g DBU 0.25g

[0117] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group AP14 with an MV of 24 μm.

[0118] [Comparative Example 1-1] Production of particle group BP1 The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Polypropylene glycol 100.00g (Diol type 1000, manufactured by Fujifilm Wako Pure Chemical Corporation) MDI 26.25g DBU 0.25g

[0119] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group BP1 with an MV of 23 μm.

[0120] [Comparative Example 1-2] Production of particle group BP2 The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Polyester diol (P-2010, manufactured by Kuraray Co., Ltd.) 100.00g HDI 18.48g DBU 0.25g

[0121] Afterward, the reaction resin in the flask was allowed to cool and removed to a stainless steel tray with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.) and classified using a stainless steel sieve (mesh size 26 μm) to produce particle group BP2 with an MV of 21 μm.

[0122] [Comparative Examples 1-3] Production of particle group BP3 The following components were placed in a 300 mL flask, and the oil bath temperature was set to 90°C under a nitrogen stream. The mixture was heated and mixed with a stirrer for 30 minutes. Polycaprolactone diol 100.00g (Daicel Corporation's Praxel 220N) HDI 9.24g

[0123] Afterward, the reaction resin in the flask was allowed to cool and removed from the flask into a stainless steel tray lined with a Teflon® sheet. Next, it was aged at 80°C for 6 hours, cooled to room temperature, and the solid material was pulverized using a pulverizer (Wonder Blender WB-1 manufactured by Osaka Chemical Co., Ltd.). The material was then classified using a stainless steel sieve (mesh size 26 μm) to produce particle group BP3 with an MV of 16 μm.

[0124] Table 3 summarizes the particle groups AP1-AP14 and BP1-BP3.

[0125] [Table 3]

[0126] [4] Measurement of basic physical properties [Examples 4-1 to 4-14, Comparative Examples 2-1 to 2-3] The melting temperature, contact angle, and tensile strength were measured using the method described below. The results are shown in Table 4.

[0127] [Measurement of melting temperature] Measurements were performed using a differential scanning calorimeter (DSC6200, manufactured by Seiko Instruments Inc.). Specifically, 10 mg of the sample was accurately weighed, placed in an aluminum pan, and an empty aluminum pan was used as a reference. The sample was heated at a rate of 10°C / min within the measurement temperature range of 20 to 200°C under normal temperature and humidity conditions. The glass transition temperature (Tg) was calculated from the obtained reversing heat flow curve. In this process, the midpoint of the line connecting the intersection points of the baseline and the endothermic curve was determined and defined as Tg. The endothermic (melting) peak point of the obtained curve was calculated as the melting temperature.

[0128] [Measuring contact angle] Each particle group was melted at 150°C and press-molded to produce a film with a thickness of 150 μm. A water droplet was dropped onto the fabricated film in accordance with JIS R 3257, and the contact angle after 30 seconds was measured using a contact angle meter (Drop Master 300, manufactured by Kyowa Interface Science Co., Ltd.).

[0129] [Measurement of tensile stress] In accordance with JIS K 7139-A22, dumbbells were prepared from various films, and their tensile stress (yield point) was measured using a universal testing machine (MCT-2150, manufactured by A&D Co., Ltd.). Each sample was measured five times, and the average value was taken as the tensile stress.

[0130] [Table 4]

[0131] [5] Confirmation test in seawater 1 (weight loss) [Examples 5-1 to 5-14, Comparative Examples 3-1 to 3-3] Using particle groups AP1-AP14 and BP1-BP3, films with a thickness of 200 μm were fabricated by press molding at 150°C. The obtained film was processed into 20mm squares, sandwiched between stainless steel nets, and immersed in seawater (collected from Tokyo Bay [Chiba Prefecture: Chiba Port]) in a 15L tank. The weight loss after immersion was observed after 30, 60, and 90 days.

[0132] The results obtained are shown in Table 5.

[0133] [Table 5]

[0134] Based on the results shown in Table 5, it is considered that biodegradation is accelerated by both the disintegration caused by seawater and the presence of microorganisms in the seawater.

[0135] [6] Seawater solubility test for resin molded products [Examples 6-1 to 6-14, Comparative Examples 4-1 to 4-3] Biodegradable resin PBSA (FD-92, manufactured by Mitsubishi Chemical Corporation) was mixed with each particle group (particle groups AP1-AP14, particle groups BP1-BP3) at 140°C to a concentration of 20% by mass, and then press-molded at 150°C to produce a film with a thickness of 200 μm (Examples 5-1 to 5-14, Comparative Examples 5-1 to 5-3). In addition, PBSA itself (without the particle groups) was press-molded at 150°C to produce a film with a thickness of 150 μm (Comparative Example 5-4). Table 5 shows the presence or absence of the shape of each particle group within the film, and the measurement results of the contact angle of the fabricated film. The presence or absence of particle shape was observed visually, and the contact angle was measured using the method described in "[4] Measurement of Basic Physical Properties". Furthermore, the obtained films were processed into 10 mm squares and placed in 200 mL of deionized water and 200 mL of seawater (collected from Tokyo Bay [Chiba Prefecture: Chiba Port]), respectively. After standing at 25°C for 7 and 30 days, the films were removed and their surface and appearance were observed using a scanning electron microscope. The results are shown in Table 6.

[0136] [Table 6]

[0137] Based on the results shown in Table 6, it is considered that biodegradation is accelerated by both the disintegration caused by seawater and the presence of microorganisms in the seawater.

[0138] Based on the above results, the marine biodegradable polyol having ionic bonds and the marine biodegradable polymer compound having repeating ionic bond units in the main chain of the present invention maintain hydrophobicity in freshwater, while in seawater, they become more easily dissolved or hydrophilic by being reduced in molecular weight or salt-substituted by biodegradation prior to the biodegradable resin. Therefore, by adding the marine biodegradation accelerator of the present invention to resin compositions that are biodegradable in soil or compost, or to mixed compositions that have weak biodegradability in the ocean, it becomes possible to make them porous in seawater, facilitate the attachment of microorganisms, and promote biodegradation, thereby improving overall marine biodegradability and reducing environmental impact. By adding this compound, it is possible to obtain a material that can dramatically improve seawater biodegradability when combined with conventional soil and compost biodegradable resins. Furthermore, by appropriately changing the structure of the organic anion, multiple effects can be incorporated, such as adjusting the melting temperature and viscosity, adjusting the degree of crystallinity, adjusting microbial adhesion and biodegradability, adjusting physical properties such as resin tensile strength, flexural strength, and elasticity, improving compatibility with resins, adjusting the degree of hydrophobicity, adjusting hydrophobicity, and adjusting adhesion and plasticity. This allows for improvements in both the biodegradability and physical properties of mixed resin compositions. In addition to its use as a marine biodegradation accelerator, it is also useful as a polymer substitute material.

Claims

1. A marine biodegradable polyol is a compound that contains two or more organic anions with a molecular weight of 100 to 5,000, wherein the organic anions are bonded by ionic bonds with metal cations of 2 or higher valence, and which contains two or more hydroxyl groups in its molecule. The organic anion has repeating units derived from polyalkylene glycol, polyester, polycaprolactone, polycarbonate, or polyamide. A marine biodegradable polyol having a structure in which two or more monovalent organic anions, each having at least one hydroxyl group and one anionic substituent, are bonded by one metal cation of divalent or higher valence, or a structure in which two or more polyvalent organic anions, each having two or more anionic substituents, are bonded by a metal cation of divalent or higher valence, and the ends are sealed with a monovalent organic anion having at least one hydroxyl group and one anionic substituent via a metal cation of divalent or higher valence.

2. The marine biodegradable polyol according to claim 1, wherein the repeating unit comprises at least one bond of an ether bond and an ester bond.

3. The aforementioned organic anion is a carboxylic acid anion (-COO - ), sulfonate anion (-SO 3 - ), sulfate anion (-O-SO 3 - ) and phosphate anion (-P(=O)(OH)-O - The marine biodegradable polyol according to claim 1 or 2, having an anionic substituent selected from ).

4. The marine biodegradable polyol according to any one of claims 1 to 3, wherein the organic anion has a carboxylic acid anion.

5. The marine biodegradable polyol according to any one of claims 1 to 4, wherein the divalent or higher metal cation is a calcium ion, a magnesium ion, or an aluminum ion.

6. A marine biodegradable polyol according to any one of claims 1 to 5, having one or more hydroxyl groups at the end of the main chain.

7. A marine biodegradable polyol according to any one of claims 1 to 6, which is a linear polymer compound.

8. A marine biodegradable polyol according to any one of claims 1 to 7, which does not contain a ring structure within the molecule.

9. A marine biodegradable polyol according to any one of claims 1 to 8, wherein the molecular weight is 500 to 10,000.

10. A marine biodegradable polyol according to any one of claims 1 to 9, having two or more divalent or greater metal cations in one molecule.

11. A marine biodegradable polyol according to any one of claims 1 to 10, wherein the relative degree of cellulose degradation is 60% or more.

12. A binder that imparts marine biodegradability using a marine biodegradable polyol according to any one of claims 1 to 11.

13. A marine biodegradable polymer compound obtained by sequentially polymerizing a marine biodegradable polyol according to any one of claims 1 to 11 and a compound having two or more reactive groups that react with a hydroxyl group.

14. The marine biodegradable polymer compound according to claim 13, which is polyurethane or polyester.

15. A marine biodegradable resin composition comprising the marine biodegradable polymer compound and resin according to claim 13 or 14.

16. The marine biodegradable resin composition according to claim 15, wherein the resin is a biodegradable resin.

17. The marine biodegradable resin composition according to claim 15 or 16, wherein the content of the marine biodegradable polymer is 3 to 50% by mass, and the content of the biodegradable resin is 50 to 97% by mass.

18. A molded article obtained from a marine biodegradable resin composition according to any one of claims 15 to 17.

Citation Information

Patent Citations

  • Biodegradable cellulose ester composition and molded product therefrom

    JP1995076632A

  • Hydrolyzable polyester resin as antifouling coating compound

    JP1996176501A

  • Ion-crosslinking film and its production

    JP2000281805A

  • Polyester resin for antifouling coating material and antifouling coating material using the same

    JP2001146570A

  • Biodegradable resin, biodegradable resin composition, biodegradable molded article, and method for manufacturing biodegradable resin composition

    JP2004018680A