材料科学
碱金属
阳极
原子单位
锂(药物)
密度泛函理论
电池(电)
离子
多尺度建模
比例(比率)
钾离子电池
插层(化学)
纳米技术
工程物理
无机化学
计算化学
热力学
物理
电极
磷酸钒锂电池
化学
物理化学
医学
功率(物理)
量子力学
内分泌学
作者
Emilia Olsson,Jiale Yu,Haiyan Zhang,Hui‐Ming Cheng,Qiong Cai
标识
DOI:10.1002/aenm.202200662
摘要
Abstract The development and optimization of high‐performance anode materials for alkali metal ion batteries is crucial for the green energy evolution. Atomic scale computational modeling such as density functional theory and molecular dynamics allows for efficient and adventurous materials design from the nanoscale, and have emerged as invaluable tools. Computational modeling cannot only provide fundamental insight, but also present input for multiscale models and experimental synthesis, often where quantities cannot readily be obtained by other means. In this review, an overview of three main anode classes; alloying, conversion, and intercalation‐type anodes, is provided and how atomic scale modeling is used to understand and optimize these materials for applications in lithium‐, sodium‐, and potassium‐ion batteries. In the last part of this review, a novel type of anode materials that are largely predicted from density functional theory simulations is presented. These 2D materials are currently in their early stages of development and are only expected to gain in importance in the years to come, both within the battery field and beyond, highlighting the ability of atomic scale materials design.
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