CN102226001A - Fully biodegradable nano-starch graft polylactic acid - Google Patents

Fully biodegradable nano-starch graft polylactic acid Download PDF

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CN102226001A
CN102226001A CN2011101046206A CN201110104620A CN102226001A CN 102226001 A CN102226001 A CN 102226001A CN 2011101046206 A CN2011101046206 A CN 2011101046206A CN 201110104620 A CN201110104620 A CN 201110104620A CN 102226001 A CN102226001 A CN 102226001A
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starch
nano
substance
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polylactic acid
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CN102226001B (en
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陈莉
单红玲
张喆
孙静茹
庄秀丽
陈学思
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Northeast Normal University
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Northeast Normal University
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Abstract

Belonging to the technological field of preparation of fully biodegradable nano-starch based graft copolymer, the invention provides a method for preparing completely biodegradable nano-starch graft polylactic acid copolymer by a click chemistry method. The nano-starch based graft copolymer is prepared by the steps of: subjecting hydroxy functional groups with reactivity in nano-starch to a chemical reaction and introducing azide groups, and performing an azide-alkynyl Husigen cycloaddition reaction with polylactic acid of a triplebond end group. The nano-starch-polylactic acid graft copolymer is prepared through the click chemistry method, and is characterized by high-efficient and controllable reaction, clear and controllable polylactic acid molecular weight and grafting rate, clear copolymer structure, reduced hydrophily of starch, and excellent plasticity and processability.

Description

The nano-starch grafted polylactic acid of fully biodegradable
Technical field:
The invention belongs to the preparing technical field of the nano-starch based polyalcohol of fully biodegradable.
Technical background:
Click chemistry is that Americanized scholar Sharpless proposes, and is a kind of novel method of fast synthetic a large amount of compounds, and purport is the splicing by junior unit, finishes the chemosynthesis of varied molecule fast and reliablely.Can obtain molecular diversity simply efficiently in this way.The notion of click chemistry has very big contribution to the field of chemical synthesis, and in the numerous areas of drug development and bio-medical material etc., it has become one of the most useful at present and attracting synthetic theory.
Starch is a kind of important reproducible and biodegradable natural macromolecular material, in foodstuffs industry and other practical application in extremely important, usage quantity is big.Starch source is abundant, and is cheap, but because starch has very strong water-absorbent, can not stablize use for a long time, and its mechanical property and workability are poor simultaneously.After starch reached nano level, its specific surface area increased, and had excellent performance.With the nano-starch modification, its performance improves a lot.Poly(lactic acid) is a kind of material with good biocompatibility, biodegradable and Bioabsorbable.Poly(lactic acid) is a kind of real biological plastics, and its nontoxic, nonirritant has excellent biological compatibility, and biodegradable absorption does not pollute the environment, and plasticity-is good, easily machine-shaping.But simultaneously the shortcoming that exists of poly(lactic acid) has: wetting ability is relatively poor, has reduced the biocompatibility of it and other material.Therefore, people to have opened up one be that raw material comes synthesising biological matrix material frontier with starch and poly(lactic acid).Be that two kinds of materials are carried out blend on the one hand, but two kinds of materials are difficult to mix, then in this intermingling material, added various solubilizing agent, as maleic anhydride, ammonium polyphosphate microcapsule, glycerine etc.Biomacromolecules 5 (2004) 1446-1451 have reported with maleic anhydride and have done solubilizing agent that starch and poly(lactic acid) are carried out blend.Also have the binary tertiary blending, poly(lactic acid), polycaprolactone and thermoplastic starch are carried out blend as Polymer 49 (2008) 599-609.Also have with after the starch acetylize with polylactic acid blend.The 2nd, cause the lactic acid ring-opening polymerization with starch, Carbohydrate Polymers 77 (2009) 32-40 have reported hydroxylic moiety methyl alkylization in the starch, cause the lactic acid ring-opening polymerization, then deprotection.Also useful electrostatic spinning technique, Materials Letters 65 (2011) 985-987 are fused with starch and poly(lactic acid) with electrostatic spinning technique.At present, click chemistry method synthesis of nano starch-grafting polylactic acid also of no use, the advantage of this method is that reaction is efficient, and the poly(lactic acid) percentage of grafting is controlled, and copolymer structure is clear and definite.
Up to the present, about not appearing in the newspapers with click chemistry method synthesis of nano starch-g-poly(lactic acid).
Summary of the invention:
In order to solve starch and poly(lactic acid) is raw material synthesising biological problems of composite, the invention provides a kind of preparation method of nano-starch base grafted polylactic acid of fully biodegradable.Thereby make the nano-starch base polylactic acid fully biodegradable that adopts the inventive method preparation, have excellent mechanical property, workability, improved the biocompatibility and the wetting ability of polymkeric substance simultaneously.
Preparation process is as follows:
(1) preparation of Terminal Acetylenes base polylactic acid
Rac-Lactide is dissolved in the toluene (wherein, the volume of toluene (ml): the quality of rac-Lactide (g) is 10~20: 1), add stannous octoate, the amount of substance of stannous octoate is the thousandth of the amount of substance of monomer rac-Lactide, add the propiolic alcohol monomer, the amount of substance of propiolic alcohol is identical with the amount of substance of desiring synthetic certain molecular weight poly(lactic acid), 120 ℃ of oil baths, reaction 24~48h, the ethanol sedimentation is filtered, washing, vacuum-drying 24h obtains the Terminal Acetylenes base polylactic acid.
(2) preparation of nitrine modified Nano starch
The preparation of nitrine modified Nano starch is divided into following two steps:
A. the preparation of methyl sulphonyl nano-starch
Nano-starch after at first will dewatering with methylbenzene azeotropic is dissolved in the dimethyl sulfoxide solvent (wherein; the quality of nano-starch (g): the volume of dimethyl sulfoxide (DMSO) (ml) is 1: 10~30); dropwise drip Methanesulfonyl chloride then; wherein; the amount of substance of Methanesulfonyl chloride (mol): the amount of substance of hydroxyl (mol) is 0.05~0.2: 1 in the nano-starch; add triethylamine after mixing again; wherein the amount of substance of triethylamine is identical with the amount of substance of Methanesulfonyl chloride; reaction 24h; the ethanol sedimentation is filtered, washing; vacuum-drying obtains the methyl sulphonyl nano-starch.
B. the preparation of nitrine modified Nano starch
The methyl sulphonyl nano-starch that a step is obtained is dissolved in the dimethyl sulfoxide (DMSO); wherein, the quality (g) of methyl sulphonyl nano-starch material: the volume of dimethyl sulfoxide (DMSO) (ml) is 1: 10~30, adds sodiumazide then; wherein; the amount of substance of sodiumazide (mol): the amount of substance of the methyl sulphonyl in the methyl sulphonyl nano-starch (mol) is 1~5: 1, reaction 24~72h, ethanol sedimentation; filter; washing, vacuum-drying obtains nitrine modified Nano starch.
(3) preparation of nano-starch-g-poly(lactic acid)
Be dissolved in nitrine modified Nano starch and Terminal Acetylenes base polylactic acid in the dimethyl sulfoxide (DMSO) respectively, wherein, the amount of substance of azido-is identical with the amount of substance of carbon-carbon triple bond in the Terminal Acetylenes base polylactic acid in the nitrine modified Nano starch, add cupric sulfate pentahydrate and sodium ascorbate, wherein, the amount of substance of cupric sulfate pentahydrate is identical with the amount of substance of azido-in the nitrine modified Nano starch, the amount of substance of sodium ascorbate (mol): the amount of substance of cupric sulfate pentahydrate (mol) is 1~5: 1, reaction 24~72h, add ion exchange resin, wherein, the quality of ion exchange resin (g): the quality of cupric sulfate pentahydrate (g) is 10~20: 1, reaction 24h, filter out insolubles, bubble goes in a water to dialyse 5-7 days, changes water every day at least three times, freeze-drying then obtains nano-starch-g-poly(lactic acid).
Starch involved in the present invention comprises W-Gum, tapioca (flour) and yam starch.
The present invention is a raw material with technical grade starch, and its structure comprises amylopectin and amylose starch.In the surface grafting poly(lactic acid), the wetting ability of starch is weakened, improved the biocompatibility of poly(lactic acid), the consistency of the two improves.
Can prepare the nano-starch based polyalcohol of the good fully biodegradable of consistency by method provided by the invention.Grafted aliphatic polyester makes the consistency of starch and aliphatic polyester improve, the nano-starch grafted polylactic acid material for preparing a series of different percentage of grafting has certain mechanical strength, have plasticity-and workability, acidproof, alkaline-resisting and water tolerance, can be used for buffet box and food product pack type, have wide practical use, provide way for solving white pollution and oil shortage problem.
Embodiment:
Further specify the present invention below by example, but the present invention is not limited to this.
Embodiment 1: the preparation of Terminal Acetylenes base polylactic acid
The 7.4930g rac-Lactide is dissolved in the 80ml toluene, adds the 0.2888ml propiolic alcohol, add the 1.3053ml stannous octoate, 120 ℃ of oil baths, reaction 24h with the sedimentation of 400ml ethanol, filters, washing with alcohol three times, vacuum-drying 24h obtains molecular weight and is 1500 Terminal Acetylenes base polylactic acid.
Embodiment 2: the preparation of Terminal Acetylenes base polylactic acid
The 6.1862g rac-Lactide is dissolved in the 70ml toluene, adds the 0.1191ml propiolic alcohol, add the 1.0776ml stannous octoate, 120 ℃ of oil baths, reaction 24h with the sedimentation of 400ml ethanol, filters, washing with alcohol three times, vacuum-drying 24h obtains molecular weight and is 3000 Terminal Acetylenes base polylactic acid.
Embodiment 3: the preparation of Terminal Acetylenes base polylactic acid
The 2.89g rac-Lactide is dissolved in the 10ml toluene, adds the 0.0167ml propiolic alcohol, add the 0.5034ml stannous octoate, 120 ℃ of oil baths, reaction 24h with the sedimentation of 100ml ethanol, filters, washing with alcohol three times, vacuum-drying 24h obtains molecular weight and is 10000 Terminal Acetylenes base polylactic acid.
Embodiment 4: the preparation of methyl sulphonyl nano-starch
Nano-starch 2.5g after will dewatering with methylbenzene azeotropic is dissolved in the 30ml dimethyl sulfoxide (DMSO); add the 0.3246ml triethylamine; dropwise drip the 0.1814ml Methanesulfonyl chloride again; room temperature reaction 24h; with the sedimentation of 300ml ethanol, filter, with ether washing three times; vacuum-drying 24h obtains percentage of grafting and is 5% methyl sulphonyl nano-starch.
Embodiment 5: the preparation of methyl sulphonyl nano-starch
Nano-starch 3g after will dewatering with methylbenzene azeotropic is dissolved in the 30ml dimethyl sulfoxide (DMSO); add the 1.1687ml triethylamine; dropwise drip the 0.6530ml Methanesulfonyl chloride again; room temperature reaction 24h; with the sedimentation of 300ml ethanol, filter, with ether washing three times; room temperature vacuum-drying 24h obtains percentage of grafting and is 15% methyl sulphonyl nano-starch.
Embodiment 6: the preparation of methyl sulphonyl nano-starch
Nano-starch 3g after will dewatering with methylbenzene azeotropic is dissolved in the 30ml dimethyl sulfoxide (DMSO); add the 1.5583ml triethylamine; dropwise drip the 0.8706ml Methanesulfonyl chloride again; room temperature reaction 24h; with the sedimentation of 300ml ethanol, filter, with ether washing three times; room temperature vacuum-drying 24h obtains percentage of grafting and is 20% methyl sulphonyl nano-starch.
Embodiment 7: the preparation of nitrine modified Nano starch
With percentage of grafting is that 5% methyl sulphonyl nano-starch 2g is dissolved in the 20ml dimethyl sulfoxide (DMSO), adds the 0.6057g sodiumazide, room temperature reaction 72h; with the sedimentation of 200ml ethanol, filter, with ether washing three times; vacuum-drying 24h obtains percentage of grafting and is 5% nitrine modified Nano starch.
Embodiment 8: the preparation of nitrine modified Nano starch
With percentage of grafting is that 15% methyl sulphonyl nano-starch 3.614g is dissolved in the 40ml dimethyl sulfoxide (DMSO), adds the 3.2834g sodiumazide, room temperature reaction 72h; with the sedimentation of 400ml ethanol, filter, with ether washing three times; vacuum-drying 24h obtains percentage of grafting and is 15% nitrine modified Nano starch.
Embodiment 9: the preparation of nitrine modified Nano starch
With percentage of grafting is that 20% methyl sulphonyl nano-starch 2.5g is dissolved in the 30ml dimethyl sulfoxide (DMSO), adds the 3.0284g sodiumazide, room temperature reaction 72h; with the sedimentation of 300ml ethanol, filter, with ether washing three times; vacuum-drying 24h obtains percentage of grafting and is 20% nitrine modified Nano starch.
Embodiment 10: the preparation of nano-starch-g-poly(lactic acid)
With percentage of grafting is that 5% nitrine modified Nano starch 0.3g and molecular weight are that 3000 Terminal Acetylenes base polylactic acid 0.8385g is dissolved in the 20ml dimethyl sulfoxide (DMSO), add the 0.0698g cupric sulfate pentahydrate, add sodium ascorbate 0.2769g, 40 ℃ of reactions of oil bath 72h adds ion exchange resin 1g again, room temperature reaction 24h, filter out insolubles, water was changed three times in the dialysis of water in one day, freeze-drying after five days obtains percentage of grafting and is 5%, molecular weight is the nano-starch-g-poly(lactic acid) of 3000 Terminal Acetylenes base polylactic acids.
Embodiment 11: the preparation of nano-starch-g-poly(lactic acid)
With percentage of grafting is that 15% nitrine modified Nano starch 0.3g and molecular weight are that 3000 Terminal Acetylenes base polylactic acid 2.5155g is dissolved in the 30ml dimethyl sulfoxide (DMSO), add the 0.2094g cupric sulfate pentahydrate, add sodium ascorbate 0.8306g, 40 ℃ of reactions of oil bath 72h adds ion exchange resin 2g again, room temperature reaction 24h, filter out insolubles, water was changed three times in the dialysis of water in one day, freeze-drying after five days obtains percentage of grafting and is 15%, molecular weight is the nano-starch-g-poly(lactic acid) of 3000 Terminal Acetylenes base polylactic acids.
Embodiment 12: the preparation of nano-starch-g-poly(lactic acid)
With percentage of grafting is that 20% nitrine modified Nano starch 0.1g and molecular weight are that 1500 Terminal Acetylenes base polylactic acid 0.559g is dissolved in the 20ml dimethyl sulfoxide (DMSO), add the 0.093g cupric sulfate pentahydrate, add sodium ascorbate 0.3691g, 40 ℃ of reactions of oil bath 72h adds ion exchange resin 1g again, room temperature reaction 24h, filter out insolubles, water was changed three times in the dialysis of water in one day, freeze-drying after five days obtains percentage of grafting and is 20%, molecular weight is the nano-starch-g-poly(lactic acid) of 1500 Terminal Acetylenes base polylactic acids.

Claims (2)

1. the nano-starch base graft copolymer of a fully biodegradable, this nano-starch base graft copolymer is the nano-starch grafted polylactic acid; The percentage of grafting of poly(lactic acid) is 5%~20% in the described nano-starch graft copolymer; The molecular weight of poly(lactic acid) is 1500~10000.
2. a kind of preparation method of nano-starch grafted polylactic acid is provided, and its step and condition are as follows:
(1) preparation of Terminal Acetylenes base polylactic acid
Rac-Lactide is dissolved in the toluene (wherein, the volume of toluene (ml): the quality of rac-Lactide (g) is 10~20: 1), add stannous octoate, the amount of substance of stannous octoate is the thousandth of the amount of substance of monomer rac-Lactide, add the propiolic alcohol monomer, the amount of substance of propiolic alcohol is identical with the amount of substance of desiring synthetic certain molecular weight poly(lactic acid), 120 ℃ of oil baths, reaction 24~48h, the ethanol sedimentation is filtered, washing, vacuum-drying 24h obtains the Terminal Acetylenes base polylactic acid.
(2) preparation of nitrine modified Nano starch
The preparation of nitrine modified Nano starch is divided into following two steps:
A. the preparation of methyl sulphonyl nano-starch
Nano-starch after at first will dewatering with methylbenzene azeotropic is dissolved in the dimethyl sulfoxide solvent (wherein; the quality of nano-starch (g): the volume of dimethyl sulfoxide (DMSO) (ml) is 1: 10~30); dropwise drip Methanesulfonyl chloride then; wherein; the amount of substance of Methanesulfonyl chloride (mol): the amount of substance of hydroxyl (mol) is 0.05~0.2: 1 in the nano-starch; add triethylamine after mixing again; wherein the amount of substance of triethylamine is identical with the amount of substance of Methanesulfonyl chloride; reaction 24h; the ethanol sedimentation is filtered, washing; vacuum-drying obtains the methyl sulphonyl nano-starch.
B. the preparation of nitrine modified Nano starch
The methyl sulphonyl nano-starch that a step is obtained is dissolved in the dimethyl sulfoxide (DMSO); wherein, the quality (g) of methyl sulphonyl nano-starch material: the volume of dimethyl sulfoxide (DMSO) (ml) is 1: 10~30, adds sodiumazide then; wherein; the amount of substance of sodiumazide (mol): the amount of substance of the methyl sulphonyl in the methyl sulphonyl nano-starch (mol) is 1~5: 1, reaction 24~72h, ethanol sedimentation; filter; washing, vacuum-drying obtains nitrine modified Nano starch.
(3) preparation of nano-starch-g-poly(lactic acid)
Be dissolved in nitrine modified Nano starch and Terminal Acetylenes base polylactic acid in the dimethyl sulfoxide (DMSO) respectively, wherein, the amount of substance of azido-is identical with the amount of substance of carbon-carbon triple bond in the Terminal Acetylenes base polylactic acid in the nitrine modified Nano starch, add cupric sulfate pentahydrate and sodium ascorbate, wherein, the amount of substance of cupric sulfate pentahydrate is identical with the amount of substance of azido-in the nitrine modified Nano starch, the amount of substance of sodium ascorbate (mol): the amount of substance of cupric sulfate pentahydrate (mol) is 1~5: 1, reaction 24~72h, add ion exchange resin, wherein, the quality of ion exchange resin (g): the quality of cupric sulfate pentahydrate (g) is 10~20: 1, reaction 24h, filter out insolubles, bubble goes in a water to dialyse 5-7 days, changes water every day at least three times, freeze-drying then obtains nano-starch-g-poly(lactic acid).
CN2011101046206A 2011-04-26 2011-04-26 Fully biodegradable nano-starch graft polylactic acid Expired - Fee Related CN102226001B (en)

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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106046183A (en) * 2016-05-05 2016-10-26 中国科学院烟台海岸带研究所 Iodomethyltriazole starch containing a nicotinamide group, and a preparing method and applications thereof
CN108410435A (en) * 2018-03-12 2018-08-17 中国石油大学(华东) A kind of drilling fluid nano-starch fluid loss additive and preparation method thereof
CN110734553A (en) * 2019-10-10 2020-01-31 山东顺通环保材料有限公司徐州分公司 Preparation method of degradable super absorbent resins
CN114672055A (en) * 2022-04-25 2022-06-28 江南大学 Preparation of degradable hydrophobic film with terminal cationic starch as base material
WO2022173073A1 (en) * 2021-02-15 2022-08-18 대상 주식회사 Thermoplastic starch composition, method for preparing same, and uses thereof

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1693341A (en) * 2005-04-30 2005-11-09 中国科学院长春应用化学研究所 Process for preparing surface lactic acid graft modified starch and aliphatic polyester graft copolymer
CN101942118A (en) * 2010-10-25 2011-01-12 曾广胜 Plant fiber starch fully-biodegradable material and preparation method thereof

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1693341A (en) * 2005-04-30 2005-11-09 中国科学院长春应用化学研究所 Process for preparing surface lactic acid graft modified starch and aliphatic polyester graft copolymer
CN101942118A (en) * 2010-10-25 2011-01-12 曾广胜 Plant fiber starch fully-biodegradable material and preparation method thereof

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106046183A (en) * 2016-05-05 2016-10-26 中国科学院烟台海岸带研究所 Iodomethyltriazole starch containing a nicotinamide group, and a preparing method and applications thereof
CN106046183B (en) * 2016-05-05 2018-04-06 中国科学院烟台海岸带研究所 A kind of iodo-methyl triazole starch of niacinamide-containing base and its preparation method and application
CN108410435A (en) * 2018-03-12 2018-08-17 中国石油大学(华东) A kind of drilling fluid nano-starch fluid loss additive and preparation method thereof
CN108410435B (en) * 2018-03-12 2019-09-24 中国石油大学(华东) A kind of drilling fluid nano-starch fluid loss additive and preparation method thereof
CN110734553A (en) * 2019-10-10 2020-01-31 山东顺通环保材料有限公司徐州分公司 Preparation method of degradable super absorbent resins
WO2022173073A1 (en) * 2021-02-15 2022-08-18 대상 주식회사 Thermoplastic starch composition, method for preparing same, and uses thereof
CN114672055A (en) * 2022-04-25 2022-06-28 江南大学 Preparation of degradable hydrophobic film with terminal cationic starch as base material

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