Microporous Polyethylene and Cellulose Composite Separators for Reversible Lithium Electrode in Lithium Rechargeable Batteries

IF 5.1 4区 材料科学 Q2 ELECTROCHEMISTRY Batteries & Supercaps Pub Date : 2024-09-20 DOI:10.1002/batt.202400472
Yuna Hirai, Rio Ohnishi, Sou Taminato, Daisuke Mori, Hiroki Eimura, Kei Ikoma, Atsushi Sawamoto, Osamu Yamamoto, Yasuo Takeda, Nobuyuki Imanishi
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Abstract

The lithium metal anode is the best candidate for high energy density batteries because of its high specific capacity and low negative potential. Rechargeable lithium metal batteries (RLMB) have not yet been commercialized. The key factors that limit the practical use of RLMB are the formation and growth of lithium dendrites during the lithium deposition process and the reaction of the lithium anode with the organic solvent of the electrolyte, quantified by the Columbic efficiency (CE). To suppress the lithium dendrite formation and to improve CE, many approaches such as the formation of a protective layer on the lithium electrode and the use of additives to the electrolyte have been proposed. In this study, the effect of a thin cellulose film to improve CE of lithium deposition and stripping on the lithium electrode was examined. The cycle performance of a Li/Li symmetrical cell with a cellulose and polyethylene composite separator was examined for a carbonate electrolyte and an ether electrolyte. The improvements of CE were observed for both electrolytes with the cellulose film separator. The improvement could be explained by the good wettability of the cellulose film separator with the electrolyte.

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用于锂充电电池中可逆锂电极的微孔聚乙烯和纤维素复合分离器
锂金属负极因其高比容量和低负电位而成为高能量密度电池的最佳选择。可充电锂金属电池(RLMB)尚未实现商业化。限制RLMB实际应用的关键因素是锂沉积过程中锂枝晶的形成和生长,以及锂阳极与电解质有机溶剂的反应,用哥伦比亚效率(CE)来量化。为了抑制锂枝晶的形成和提高CE,人们提出了许多方法,如在锂电极上形成保护层和在电解质中使用添加剂。在本研究中,考察了薄纤维素膜对锂电极上锂沉积和剥离CE的影响。研究了采用纤维素和聚乙烯复合隔膜制备的锂/锂对称电池在碳酸盐电解质和醚电解质下的循环性能。纤维素膜分离器对两种电解质的CE均有改善。纤维素膜分离器与电解质的良好润湿性可以解释这种改善。
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来源期刊
CiteScore
8.60
自引率
5.30%
发文量
223
期刊介绍: Electrochemical energy storage devices play a transformative role in our societies. They have allowed the emergence of portable electronics devices, have triggered the resurgence of electric transportation and constitute key components in smart power grids. Batteries & Supercaps publishes international high-impact experimental and theoretical research on the fundamentals and applications of electrochemical energy storage. We support the scientific community to advance energy efficiency and sustainability.
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