All-solid-state Li-ion battery: A study on the charge/discharge mechanism of an LMO-BCD-MgC system

Energy Storage Pub Date : 2024-06-06 DOI:10.1002/est2.664
Po-Ting Wu, Jun-Ren Zhao, Fei-Yi Hung, Hsin Kuan
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Abstract

This study presents the fabrication of an all-solid-state lithium-ion battery using lithium manganese oxide (LiMn2O4; LMO) as the cathode, graphite (C), and carbon-coated magnesium (MgC) as the anode, along with a silicate-based solid electrolyte. To assess the charge/discharge mechanism, three polymeric membranes with varying weight percentages (5%, 30%, and 50%) of magnesium silicate are produced through battery-cloth deposition (BCD) for use as the solid electrolyte. The findings reveal that enhancing the magnesium silicate content in the solid electrolyte (particularly at 50%) results in an increased specific capacity of the battery. The MgC anode exhibits a peak capacity of approximately 780 mAh/g during the third cycle, maintaining capacity retention of 100% over 26 cycles, addressing the issues of low specific capacity and self-discharge in the solid-state Li-ion battery. Nevertheless, prolonged charge/discharge testing leads to an escalation in the surface roughness and porosity of the carbon coating on the MgC anode, resulting in a decline in capacity. These results demonstrate that the LMO-BCD-MgC battery system proposed in this study is a secure, eco-friendly, and cost-effective option with potential applications in energy storage.

全固态锂离子电池:LMO-BCD-MgC 系统的充放电机制研究
本研究介绍了一种全固态锂离子电池的制造方法,该电池采用锂锰氧化物(LiMn2O4;LMO)作为阴极,石墨(C)和碳包覆镁(MgC)作为阳极,并使用硅酸盐基固体电解质。为了评估充电/放电机制,通过电池布沉积(BCD)生产了三种不同重量百分比(5%、30% 和 50%)的硅酸镁聚合物膜,用作固体电解质。研究结果表明,提高固态电解质中的硅酸镁含量(尤其是 50%)可提高电池的比容量。MgC 阳极在第三个循环中显示出约 780 mAh/g 的峰值容量,并在 26 个循环中保持 100% 的容量,从而解决了固态锂离子电池中低比容量和自放电的问题。然而,长时间的充放电测试会导致 MgC 阳极碳涂层的表面粗糙度和孔隙率增加,从而导致容量下降。这些结果表明,本研究中提出的 LMO-BCD-MgC 电池系统是一种安全、环保、经济高效的选择,在能源存储领域具有潜在的应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.90
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