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果胶用于环保型锂离子电池开发的振动和电化学研究

Vibrational and electrochemical studies of pectin-a candidate towards environmental friendly lithium-ion battery development.

作者信息

Wu Phillip M, Chung Ching Yi, Chen Yan Ruei, Su Yu Hsuan, Chang-Liao Kuei Shu, Chi Po Wei, Paul Tanmoy, Chen Yun Ju, Chen Yeng Long, Wang Sea Fue, Badgujar Pooja, Chen Bo-Nian, Cheng Chia Liang, Wu Maw Kuen

机构信息

Institute of Physics, Academia Sinica, 128, Section 2, Academia Road, Taipei 11529, Taiwan.

Department of Materials and Mineral Resources Engineering, National Taipei University of Technology (TAIPEI TECH), 1, Sec. 3, Zhong-Xiao E. Rd., Taipei 10608, Taiwan.

出版信息

PNAS Nexus. 2022 Jul 25;1(4):pgac127. doi: 10.1093/pnasnexus/pgac127. eCollection 2022 Sep.

Abstract

Pectin polymers are considered for lithium-ion battery electrodes. To understand the performance of pectin as an applied buffer layer, the electrical, magnetic, and optical properties of pectin films are investigated. This work describes a methodology for creating pectin films, including both pristine pectin and Fe-doped pectin, which are optically translucent, and explores their potential for lithium-ion battery application. The transmission response is found extended in optimally Fe-doped pectin, and prominent modes for cation bonding are identified. Fe doping enhances the conductivity observed in electrochemical impedance spectroscopy, and from the magnetic response of pectin evidence for Fe is identified. The Li-ion half-cell prepared with pectin as binder for anode materials such as graphite shows stable charge capacity over long cycle life, and with slightly higher specific capacity compare with the cell prepared using polyvinylidene fluoride (PVDF) as binder. A novel enhanced charging specific capacity at a high C-rate is observed in cells with pectin binder, suggesting that within a certain rate (∼5 C), pectin has higher capacity at faster charge rates. The pectin system is found as a viable base material for organic-inorganic synthesis studies.

摘要

果胶聚合物被用于锂离子电池电极。为了解果胶作为应用缓冲层的性能,对果胶薄膜的电学、磁学和光学性质进行了研究。这项工作描述了一种制备果胶薄膜的方法,包括原始果胶和铁掺杂果胶,它们是光学半透明的,并探索了它们在锂离子电池应用中的潜力。发现在最佳铁掺杂的果胶中传输响应得到扩展,并确定了阳离子键合的显著模式。铁掺杂提高了电化学阻抗谱中观察到的电导率,并且从果胶的磁响应中确定了铁的证据。用果胶作为阳极材料(如石墨)的粘合剂制备的锂离子半电池在长循环寿命中显示出稳定的充电容量,并且与使用聚偏二氟乙烯(PVDF)作为粘合剂制备的电池相比具有略高的比容量。在使用果胶粘合剂的电池中观察到一种在高C率下新型增强的充电比容量,这表明在一定速率(约5C)内,果胶在更快的充电速率下具有更高的容量。发现果胶体系是有机-无机合成研究的一种可行基础材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7cdc/9802330/a32f8c3d40d5/pgac127fig1.jpg

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