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一种用于锂离子电池高性能硅阳极的具有螺旋交联网络的新型明胶粘结剂。

A Novel Gelatin Binder with Helical Crosslinked Network for High-Performance Si Anodes in Lithium-Ion Batteries.

作者信息

Zeng Xuejian, Dai Shiyuan, Huang Fei, Chen Chao, Liu LiChun, Hong Soon Hyung

机构信息

Nanotechnology Research Institute, Jiaxing University, Jiaxing, 314001, P. R. China.

School of Materials Science and Engineering, Zhejiang Sci-Tech University, Hangzhou, 310018, P. R. China.

出版信息

Small. 2024 Nov;20(45):e2403754. doi: 10.1002/smll.202403754. Epub 2024 Jul 19.

DOI:10.1002/smll.202403754
PMID:39032013
Abstract

Silicon (Si) is a promising anode material for lithium-ion batteries, but its large volume expansion during cycling poses a challenge for the binder design. In this study, a novel gelatin binder is designed and prepared with a helical crosslinked network structure. This gelatin binder is prepared by enzymatic crosslinking and immersion in Hofmeister salt solution, which induces the formation of network and helical secondary structures. The helical crosslinked network structure can be analogous to a spring group system to effectively dissipate the stress and strain caused by the Si expansion. The gelatin binder is further partially carbonized by low-temperature pyrolysis, which improves its conductivity and stability. The Si anode with the optimized gelatin binder exhibits high initial coulombic efficiency, excellent rate performance, and long-term cycling stability. This study provides an innovative approach for the preparation of high-performance Si anodes, namely by controlling the molecular configuration of the binder to significantly improve the cycle stability, which can also be applied to other high-capacity anode materials that suffer from large volume changes during cycling.

摘要

硅(Si)是一种很有前景的锂离子电池负极材料,但其在循环过程中的大幅体积膨胀对粘结剂设计构成了挑战。在本研究中,设计并制备了一种具有螺旋交联网络结构的新型明胶粘结剂。这种明胶粘结剂通过酶交联和浸入霍夫迈斯特盐溶液制备,这会诱导网络和螺旋二级结构的形成。螺旋交联网络结构可类似于弹簧组系统,以有效消散由硅膨胀引起的应力和应变。通过低温热解进一步使明胶粘结剂部分碳化,这提高了其导电性和稳定性。具有优化明胶粘结剂的硅负极表现出高初始库仑效率、优异的倍率性能和长期循环稳定性。本研究为制备高性能硅负极提供了一种创新方法,即通过控制粘结剂的分子构型来显著提高循环稳定性,这也可应用于其他在循环过程中会发生大幅体积变化的高容量负极材料。

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