枝晶抑制锂金属阳极的功能有机7,7,8,8-四氰喹二甲烷人工层

Electron Pub Date : 2024-10-26 DOI:10.1002/elt2.72
Qing Liu, Zhiyong Zheng, Peixun Xiong, Chun Huang, Shengyang Huang, Baohuai Zhao, Yongan Wu, Yi Zhang, Bo-Kyong Kim, Xu Yu, Ho Seok Park
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引用次数: 0

摘要

作为高能量密度储能系统的潜在阳极,金属锂的大规模产业化一直受到枝晶生长的阻碍。构建具有高离子低电子导电性的人工固体电解质界面层是限制枝晶生长和提高锂阳极稳定性的一种高性能策略。因此,通过四氰喹诺二甲烷(TCNQ)与锂的原位化学反应,在锂阳极表面均匀沉积了一层功能有机保护层。合成的Lin-TCNQ有机薄膜能有效捕获不均匀的锂沉积,抑制枝晶的生长。特别是,具有Lin-TCNQ层的非对称M-TCNQ-Li|Cu电池在1.0 mA cm−2下循环100次后,库仑效率高达91.15%。M-TCNQ-Li|NCM622电池在0.2℃下提供了143.40 mAh g−1的高容量,并且在160次循环后保持了110.44 mAh g−1的良好循环稳定性。光谱分析结果进一步表明,吸收能增强的Lin-TCNQ有利于亲锂性,降低了锂沉积的过电位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Functional organic 7,7,8,8-tetracyanoquinodimethane artificial layers for the dendrite suppressed lithium metal anodes

Functional organic 7,7,8,8-tetracyanoquinodimethane artificial layers for the dendrite suppressed lithium metal anodes

The large-scale industrialization of lithium metal (Li), as a potential anode for a high energy density energy storage system, has been hindered by dendrite growth. The construction of an artificial solid electrolyte interphase layer featuring high ionic and low electronic conductivity has been verified to be a high-performance strategy to confine the dendrite growth and promote the Li anode stability. Therefore, a functional organic protective layer is homogeneously deposited on the Li anode surface via an in situ chemical reaction between tetracyanoquinodimethane (TCNQ) and Li. The as-synthesized Lin-TCNQ organic film could efficiently trap non-uniform Li deposition and restrain dendrite propagation. Particularly, an asymmetric M-TCNQ-Li|Cu cell with the Lin-TCNQ layer breezed through a high Coulombic efficiency of 91.15% after 100 cycles at 1.0 mA cm−2. The M-TCNQ-Li|NCM622 cell delivered a high capacity of 143.40 mAh g−1 at 0.2 C and maintained a good cyclic stability of 110.44 mAh g−1 after 160 cycles. The analysis results of spectroscopic tests further demonstrate that the Lin-TCNQ with the enhanced absorption energy is conducive to lithiophilicity and decreases the overpotential of Li deposition.

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