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首页> 外文期刊>Journal of Applied Polymer Science >Biodegradable polymers based on renewable resources - VIII. Environmental and enzymatic degradability of copolycarbonates containing 1,4 : 3,6-dianhydrohexitols
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Biodegradable polymers based on renewable resources - VIII. Environmental and enzymatic degradability of copolycarbonates containing 1,4 : 3,6-dianhydrohexitols

机译:基于可再生资源的生物可降解聚合物-VIII。含有1,4:3,6-二脱水己糖醇的共聚碳酸酯的环境和酶促降解性

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摘要

Environmental and enzymatic degradations were investigated on a series of copolycarbonates consisting of equimolar amounts of 1,4: 3,6-dianhydrohexitols (1,4: 3,6-clianhydro-D-gluctiol (1a) and 1,4: 3,6-dianhydro-D-mannitol (1b)) and alkylene diols (1,4-butanediol, 1,6-hexanediol, 1,8-octanediol, and 1,10-decanediol) or oligo(ethylene glycol)s (di-, tri-, and tetraethylene glycols). Fourteen different copolycarbonates with number average molecular weights in the range of 1.1-4.2 x 10(4) were prepared by solution polycondensation as described in our previous article. Biodegradability of the copolycarbonates was assessed by soil burial degradation tests in composted soil at 27 degrees C and by enzymatic degradation tests in a phosphate buffer solution at 37 degrees C. In general, biodegradability of the copolycarbonates increased with increasing chain lengths of the methylene groups of alkylene diols or of the oxyethylene groups of the oligo(ethylene glycol)s. SEM observations of the film surfaces of polymers recovered from soil burial indicated that the copolycarbonates were degraded by microorganisms in soil. In enzymatic degradation, the copolycarbonates containing alkylene diol components showed high degradability with Pseudomonas sp. lipase, whereas the copolycarbonates containing oligo(ethylene glycol) components were not degraded at all. The enzymatic degradability of the copolycarbonates is discussed with reference to the geometrical structure around the carbonate linkages and the microstructure and hydrophobicity of the polymer chains. (c) 2005 Wiley Periodicals, Inc.
机译:在一系列由等摩尔量的1,4:3,6-双脱水己糖醇(1,4:3,6-双脱水-D-葡萄糖醇(1a)和1,4:3,6组成的共聚碳酸酯中研究了环境和酶促降解-双脱水-D-甘露醇(1b))和亚烷基二醇(1,4-丁二醇,1,6-己二醇,1,8-辛二醇和1,10-癸二醇)或低聚(乙二醇)s(di-,三乙二醇和四乙二醇)。如我们先前的文章所述,通过溶液缩聚制备了十四种不同的数均分子量为1.1-4.2 x 10(4)的共聚碳酸酯。共聚碳酸酯的生物降解性通过堆肥土壤中的土壤埋藏降解试验(在27摄氏度下)和酶降解试验(在磷酸盐缓冲液中,在37摄氏度下)进行评估。通常,共聚碳酸酯的生物降解能力会随着以下条件下亚甲基链长的增加而增加:亚烷基二醇或低聚(乙二醇)的氧乙烯基。 SEM对从土葬中回收的聚合物膜表面的观察表明,共聚碳酸酯被土壤中的微生物降解。在酶促降解中,含有亚烷基二醇组分的共聚碳酸酯显示出与假单胞菌属sp的高降解性。脂肪酶,而含有低聚(乙二醇)成分的共聚碳酸酯则完全不降解。参照碳酸酯键周围的几何结构以及聚合物链的微观结构和疏水性,讨论了共聚碳酸酯的酶促降解性。 (c)2005年Wiley Periodicals,Inc.

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