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低分子量木质素在开发具有平衡热机械性能和导电性能的硫醇-烯聚合物电解质中的可行性

Viability of Low Molecular Weight Lignin in Developing Thiol-Ene Polymer Electrolytes with Balanced Thermomechanical and Conductive Properties.

作者信息

Baroncini Elyse A, Rousseau Dominique M, Strekis Christopher A, Stanzione Joseph F

机构信息

Henry M. Rowan College of Engineering, Department of Chemical Engineering, Rowan University, 201 Mullica Hill Road, Glassboro, NJ, 08028, USA.

U.S. Army Combat Capabilities Development Command, C5ISR Center, Aberdeen Proving Ground, Aberdeen, MD, 21005, USA.

出版信息

Macromol Rapid Commun. 2021 Feb;42(3):e2000477. doi: 10.1002/marc.202000477. Epub 2020 Nov 16.

Abstract

Polymer electrolytes with high aromatic content are prepared through thiol-ene polymerization with functionalized, low molecular weight fractions of softwood pine Kraft lignin, and wheat straw/Sarkanda grass soda lignin. Differing solubility, functionality, and aromatic content of the lignin fractions vary the glass transition temperatures of the resulting polymers and the suitability for electrolyte applications. The softwood pine Kraft lignin is used as a precursor for a gel polymer electrolyte (GPE) with room temperature conductivity of 72 × 10 S cm , while the wheat straw/Sarkanda grass soda lignin is utilized in solid polymer electrolytes (SPEs) with room temperature conductivity values in the range of 5 × 10 - 7 × 10 S cm . The lignin-based GPE displays similar conductivity but improved thermal stability to a comparable, recently reported GPE containing an allylated, monophenolic, lignin-derived, vanillin-derived monomer. The lignin-based SPEs exhibit excellent cationic transport with ion transference values up to 0.90. The promising conductivity and ion transference results reveal the potential for use of functionalized, low molecular weight wheat straw/Sarkanda grass soda lignin in SPE applications as a way to improve thermal stability, electrochemical performance, and incorporate an abundant, sustainable resource in a high performance application.

摘要

通过硫醇-烯聚合反应,利用软木松木硫酸盐木质素以及小麦秸秆/荻草碱木质素的功能化低分子量级分,制备了具有高芳香族含量的聚合物电解质。木质素级分不同的溶解度、官能度和芳香族含量,会使所得聚合物的玻璃化转变温度以及电解质应用的适用性发生变化。软木松木硫酸盐木质素用作凝胶聚合物电解质(GPE)的前体,其室温电导率为72×10 S/cm,而小麦秸秆/荻草碱木质素则用于固体聚合物电解质(SPE),其室温电导率值在5×10 - 7×10 S/cm范围内。基于木质素的GPE显示出与一种近期报道的、含有烯丙基化单酚类木质素衍生香草醛衍生单体的类似GPE相当的电导率,但热稳定性有所提高。基于木质素的SPE表现出优异的阳离子传输性能,离子迁移值高达0.90。这些有前景的电导率和离子迁移结果揭示了在SPE应用中使用功能化低分子量小麦秸秆/荻草碱木质素的潜力,以此提高热稳定性、电化学性能,并在高性能应用中纳入一种丰富的可持续资源。

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