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Strong and electrically conductive nanopaper from cellulose nanofibers and polypyrrole

机译:由纤维素纳米纤维和聚吡咯制成的坚固而导电的纳米纸

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In this work, we prepare cellulose nanopapers of high mechanical performance and with the electrical conductivity of a semiconductor. Cellulose nanofibers (CNF) from bleached softwood pulp were coated with polypyrrole (PPy) via in situ chemical polymerization, in presence of iron chloride (III) as oxidant agent. The structure and morphology of nanopapers were studied, as well as their thermal, mechanical and conductive properties. Nanopaper from pure CNF exhibited a very high tensile response (224 MPa tensile strength and 14.5 GPa elastic modulus). The addition of up to maximum 20% of polypyrrole gave CNF/PPy nanopapers of high flexibility and still good mechanical properties (94 MPa strength and 8.8 GPa modulus). The electrical conductivity of the resulting CNF/PPy nanopaper was of 5.2 10(-2) S cm(-1), with a specific capacitance of 7.4 F g(-1). The final materials are strong and conductive nanopapers that can find application as biodegradable flexible thin-film transistor (TFT) or as flexible biosensor. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项工作中,我们准备了具有较高机械性能并具有半导体导电性的纤维素纳米纸。在氯化铁(III)作为氧化剂存在的情况下,通过原位化学聚合将漂白的针叶木浆中的纤维素纳米纤维(CNF)涂上聚吡咯(PPy)。研究了纳米纸的结构和形态,以及它们的热,机械和导电性能。来自纯CNF的纳米纸表现出非常高的拉伸响应(224 MPa拉伸强度和14.5 GPa弹性模量)。最多添加20%的聚吡咯可以使CNF / PPy纳米纸具有较高的柔韧性和良好的机械性能(94 MPa强度和8.8 GPa模量)。所得CNF / PPy纳米纸的电导率为5.2 10(-2)S cm(-1),比电容为7.4 F g(-1)。最终材料是坚固且导电的纳米纸,可以用作可生物降解的柔性薄膜晶体管(TFT)或柔性生物传感器。 (C)2016 Elsevier Ltd.保留所有权利。

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