电流(流体)
材料科学
电流密度
极限(数学)
能量密度
体积热力学
能量(信号处理)
透视图(图形)
能源消耗
机械工程
剥离(纤维)
平面的
计算机科学
毯子
工程物理
钥匙(锁)
电镀(地质)
工艺工程
集电器
电解质
方向(向量空间)
电化学
可靠性(半导体)
可靠性工程
电池(电)
期限(时间)
纳米技术
系统工程
作者
Di Wang,Il Jeon,Jinkwang Hwang
摘要
ABSTRACT This review provides a practical and in‐depth discussion of current collector engineering for Li‐metal batteries, emphasizing how the mass and volume introduced by modifications, together with the changes in Li inventory accompanying electrochemical processes, affect achievable energy metrics in realistic cell configurations. We compare major engineering approaches, including alloying and coating, crystallographic orientation control, and transitions from planar to three‐dimensional architectures, examining their impact on both initial energy density and long‐term retention. From these comparisons, we clarify key failure mechanisms and identify the stack‐level constraints that limit anode‐free Li‐metal batteries, including mass loading, volume occupation, electrolyte demand, and restricted Li inventory. To determine practical relevance, we introduce a quantitative energy density evaluation that benchmarks representative modification strategies against restricted Li inventory batteries. The analysis shows that although recent strategies enhance local plating and stripping behavior, they often reduce achievable energy density once realistic penalties related to volume, mass, and Li consumption are considered. These results establish clear criteria for identifying modifications that provide genuine practical benefit. Finally, we propose research directions that reduce geometric and material burdens while enhancing Li inventory retention, offering a perspective that supports the development of practical current collector designs for anode‐free Li‐metal batteries.
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