材料科学
碳化
阳极
聚偏氟乙烯
石墨
电池(电)
锂(药物)
电解质
电极
锂离子电池
化学工程
纳米技术
复合材料
化学
聚合物
内分泌学
物理化学
量子力学
功率(物理)
工程类
扫描电子显微镜
物理
医学
作者
Junsu Park,Seokho Suh,Sigitas Tamulevičius,Daesoo Kim,Dongin Choi,Sungho Jeong,Hyeong-Jin Kim
出处
期刊:Nanomaterials
[Multidisciplinary Digital Publishing Institute]
日期:2022-07-29
卷期号:12 (15): 2625-2625
被引量:12
摘要
Lithium-ion batteries with ultra-thick electrodes have high energy density and low manufacturing costs because of the reduction of the inactive materials in the same battery volume. However, the partial usage of the full capacity and the low rate capability are caused by poor ionic and electronic conduction. In this work, the effects of two approaches, such as electrode binder carbonization by heat treatment and 3-dimensionalization by the laser structuring of ultra-thick graphite anodes to lithium-ion batteries for high energy density, are investigated. During the heat treatment, the polyvinylidene fluoride (PVDF) binder is carbonized to form fluorinated graphitic carbons, thereby increasing the number of lithium-ion storage sites and the improvement of the electrode capacity by 14% (420 mAh g−1 and 20 mAh cm−2). Further, the carbonization improves the rate capability by 31% at 0.1 C by simultaneously reducing the ionic and electronic resistances. Furthermore, after the laser structuring of the carbonized electrode, the areal discharge capacity increases to 50% at the increasing current rates, resulting from drastically improved ionic conduction. In addition to the electrochemical characteristics, these two approaches contribute considerably to the fast wetting of the electrolyte into the ultra-thick electrode. The carbonization and laser structuring of the ultra-thick graphite anodes are practical approaches for high-energy batteries to overcome the thickness limitation.
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