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通过隔膜工程设计坚固、亲锂且柔性的无机聚合物保护层可实现具有LiNiMnCoO阴极的无枝晶锂金属电池。

Design of Robust, Lithiophilic, and Flexible Inorganic-Polymer Protective Layer by Separator Engineering Enables Dendrite-Free Lithium Metal Batteries with LiNi Mn Co O Cathode.

作者信息

Tan Liwen, Sun Yue, Wei Chuanliang, Tao Yuan, Tian Yuan, An Yongling, Zhang Yuchan, Xiong Shenglin, Feng Jinkui

机构信息

Research Center for Carbon Nanomaterials, Key Laboratory for Liquid-Solid Structural Evolution & Processing of Materials (Ministry of Education), School of Materials Science and Engineering, Shandong University, Jinan, 250061, P. R. China.

School of Chemistry, Shandong University, Jinan, 250061, P. R. China.

出版信息

Small. 2021 Apr;17(13):e2007717. doi: 10.1002/smll.202007717. Epub 2021 Mar 10.

Abstract

As a promising candidate for the high energy density cells, the practical application of lithium-metal batteries (LMBs) is still extremely hindered by the uncontrolled growth of lithium (Li) dendrites. Herein, a facile strategy is developed that enables dendrite-free Li deposition by coating highly-lithiophilic amorphous SiO microparticles combined with high-binding polyacrylate acid (SiO@PAA) on polyethylene separators. A lithiated SiO and PAA (lithiated-SiO/PAA) protective layer with synergistic flexible and robust features is formed on the Li metal anode via the in situ reaction to offer outstanding interfacial stability during long-term cycles. By suppressing the formation of dead Li and random Li deposition, reducing the side reaction, and buffering the volume changes during the lithium deposition and dissolution, such a protective layer realizes a dendrite-free morphology of Li metal anode. Furthermore, sufficient ionic conductivity, uniform lithium-ion flux, and interface adaptability is guaranteed by the lithiated-SiO and Li polyacrylate acid. As a result, Li metal anodes display significantly enhanced cycling stability and coulombic efficiency in Li||Li and Cu||Li cells. When the composite separator is applied in a full cell with a carbonate-based electrolyte and LiNi Mn Co O cathode, it exhibits three times longer lifespan than control cell at current density of 5 C.

摘要

作为高能量密度电池的一个有前景的候选者,锂金属电池(LMBs)的实际应用仍然受到锂(Li)枝晶不受控制生长的极大阻碍。在此,开发了一种简便的策略,通过在聚乙烯隔膜上涂覆高亲锂性非晶态SiO微粒与高结合性聚丙烯酸(SiO@PAA)相结合,实现无枝晶锂沉积。通过原位反应在锂金属阳极上形成具有协同柔性和坚固特性的锂化SiO和PAA(锂化-SiO/PAA)保护层,以在长期循环过程中提供出色的界面稳定性。通过抑制死锂的形成和随机锂沉积、减少副反应以及缓冲锂沉积和溶解过程中的体积变化,这样的保护层实现了锂金属阳极的无枝晶形态。此外,锂化-SiO和锂化聚丙烯酸保证了足够的离子导电性、均匀的锂离子通量和界面适应性。结果,锂金属阳极在Li||Li和Cu||Li电池中显示出显著增强的循环稳定性和库仑效率。当复合隔膜应用于具有碳酸盐基电解质和LiNiMnCoO阴极的全电池时,在5C的电流密度下,其寿命比对照电池长三倍。

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