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首页> 外文期刊>Annual review of chemical and biomolecular engineering >Multiscale Lithium-Battery Modeling from Materials to Cells
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Multiscale Lithium-Battery Modeling from Materials to Cells

机译:从材料到细胞的MultiScale锂电池

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摘要

New experimental technology and theoretical approaches have advanced battery research across length scales ranging from the molecular to the macroscopic. Direct observations of nanoscale phenomena and atomistic simulations have enhanced the understanding of the fundamental electrochemical processes that occur in battery materials. This vast and ever-growing pool of microscopic data brings with it the challenge of isolating crucial performance-decisive physical parameters, an effort that often requires the consideration of intricate interactions across very different length scales and timescales. Effective physics-based battery modeling emphasizes the cross-scale perspective, with the aim of showing how nanoscale physicochemical phenomena affect device performance. This review surveys the methods researchers have used to bridge the gap between the nanoscale and the macroscale. We highlight the modeling of properties or phenomena that have direct and considerable impact on battery performance metrics, such as open-circuit voltage and charge/discharge overpotentials. Particular emphasis is given to thermodynamically rigorous multiphysics models that incorporate coupling between materials’ mechanical and electrochemical states.
机译:新的实验技术和理论方法具有跨长度尺度的先进电池研究,从分子到宏观。纳米级现象和原子模拟的直接观察提高了对电池材料中发生的基本电化学过程的理解。这种巨大而不断增长的微观数据池会带来隔离关键绩效决定性物理参数的挑战,这往往需要考虑跨越非常不同的长度尺度和时间尺度的错综复相的相互作用。基于有效的物理基础电池造型强调了横级视角,目的是展示纳米级物理化学现象如何影响器件性能。此述评调查研究人员习惯于弥合纳米级和宏观尺寸之间的间隙的方法。我们突出了对电池性能指标具有直接和相当大的影响的性质或现象的建模,例如开路电压和充电/放电超势。特别强调热力学上严格的多体型模型,其包含材料在机械和电化学状态之间的耦合。

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