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首页> 外文期刊>Materials science & engineering, C. Materials for Biogical applications >One pot biocatalytic synthesis of a biodegradable electroactive macromonomer based on 3,4-ethylenedioxytiophene and poly( l-lactic acid)
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One pot biocatalytic synthesis of a biodegradable electroactive macromonomer based on 3,4-ethylenedioxytiophene and poly( l-lactic acid)

机译:一种基于3,4-亚乙基二辛烯和聚( L - 乳酸)生物降解电活性大分子单体的一种锅生物催化合成

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AbstractA novel electroactive macromonomer based on poly(l-lactic acid) (PLLA) with (3,4-ethylenedioxythiophene) (EDOT) functional end groups, was prepared by a traditional approach of organometallic polymerization with stannous octanoate [Sn(oct2)] and enzymatic polymerization using immobilizedCandida antarcticaLipase B (CAL-B) and Amano lipasePseudomonas cepacia(PS-IM), as catalysts. In the synthetic strategy, (2,3-dihydrothieno[3,4-b] dioxin-2-yl)methanol (EDOT-OH) was used to initiate the ring opening polymerization of lactide to yield PLLA with EDOT end group. All macromonomers (EDOT-PLLA) were characterized by1H and13C RMN, MALDI-TOF, GPC and EDX. Moreover, ICP-OES analysis showed the presence of Sn traces in the material synthesized by the traditional approach, but that pathway led to macromonomers with higher molecular weight while the enzymatic route led to completely metal-free macromonomers with medium and lower molecular weights. Also, electrochemical and chemical polymerization of EDOT-PLLA were tested showing that it is possible to prepare degradable conducting polymers based on poly(3,4-ethylenedioxythiphene) (PEDOT). The biocatalytic synthesis is a very promising and environmental friendly pathway for the preparation of biodegradable materials for short time applications.
机译:<![cdata [ 抽象 基于Poly的新型电活性大分子单体( L 2使用固定化的酶促聚合念珠菌antarctica 脂肪酶b(cal-b)和氨茉莉脂肪酶假单胞菌cepacia ( PS-IM),作为催化剂。在合成策略中,使用(2,3-二氢噻吩[3,4-B]二恶英-2-基)甲醇(eDOT-OH)引发丙交酯的开环聚合,得到具有原因末端基团的PLLA。所有大分子单体(EDOT-PLLA)的特征在于 1 h和 13 c rmn,maldi -TOF,GPC和EDX。此外,ICP-OES分析显示通过传统方法合成的材料中的Sn迹线,但是途径导致分子量较高的大分子单体,而酶促途径导致具有培养基和较低分子量的完全无金属的大分子单体。此外,测试了EDOT-PLLA的电化学和化学聚合,表明可以基于聚(3,4-亚乙基氧噻烯)(PEDOT)制备可降解的导电聚合物。生物催化合成是一种非常有前途和环保的途径,用于制备短时间应用的可生物降解材料。

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