Spinodal Decomposition Method for Structuring Germanium–Carbon Li-Ion Battery Anodes

材料科学 阳极 旋节分解 电池(电) 锂(药物) 碳纤维 离子 锂离子电池 纳米颗粒 合金 电解质 化学工程 热扩散率 分析化学(期刊) 纳米技术 电极 相(物质) 复合材料 冶金 化学 物理化学 热力学 复合数 工程类 功率(物理) 色谱法 医学 物理 有机化学 内分泌学
作者
Changshin Jo,Bo Wen,Hyebin Jeong,Sul Ki Park,Yeonguk Son,Michaël De Volder
出处
期刊:ACS Nano [American Chemical Society]
卷期号:17 (9): 8403-8410 被引量:17
标识
DOI:10.1021/acsnano.2c12869
摘要

To increase the energy density of lithium-ion batteries (LIBs), high-capacity anodes which alloy with Li ions at a low voltage against Li/Li+ have been actively pursued. So far, Si has been studied the most extensively because of its high specific capacity and cost efficiency; however, Ge is an interesting alternative. While the theoretical specific capacity of Ge (1600 mAh g-1) is only half that of Si, its density is more than twice as high (Ge, 5.3 g cm-3; Si, 2.33 g cm-3), and therefore the charge stored per volume is better than that of Si. In addition, Ge has a 400 times higher ionic diffusivity and 4 orders of magnitude higher electronic conductivity compared to Si. However, similarly to Si, Ge needs to be structured in order to manage stresses induced during lithiation and many reports have achieved sufficient areal loadings to be commercially viable. In this work, spinodal decomposition is used to make secondary particles of about 2 μm in diameter that consist of a mixture of ∼30 nm Ge nanoparticles embedded in a carbon matrix. The secondary structure of these germanium-carbon particles allows for specific capacities of over 1100 mAh g-1 and a capacity retention of 91.8% after 100 cycles. Finally, high packing densities of ∼1.67 g cm-3 are achieved in blended electrodes by creating a bimodal size distribution with natural graphite.

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