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Enabling Rapid Charging Lithium Metal Batteries via Surface Acoustic Wave-Driven Electrolyte Flow

机译:通过表面声波驱动的电解质流实现对锂金属电池的快速充电

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摘要

Both powerful and unstable, practical lithium metal batteries have remained a difficult challenge for over 50 years. With severe ion depletion gradients in the electrolyte during charging, they rapidly develop porosity, dendrites, and dead Li that cause poor performance and, all too often, spectacular failure. Remarkably, incorporating a small, 100 MHz surface acoustic wave device (SAW) solves this problem. Providing acoustic streaming electrolyte flow during charging, the device enables dense Li plating and avoids porosity and dendrites. SAW-integrated Li cells can operate up to 6 mA cm(-2) in a commercial carbonate-based electrolyte; omitting the SAW leads to short circuiting at 2 mA cm(-2). The Li deposition is morphologically dendrite-free and close to theoretical density when cycling with the SAW. With a 245 mu m thick Li anode in a full Li||LFP (LiFePO4) cell, introducing the SAW increases the uncycled Li from 145 to 225 mu m, decreasing Li consumption from 41% to only 8%. A closed-form model is provided to explain the phenomena and serve as a design tool for integrating this chemistry-agnostic approach into batteries whatever the chemistry within.
机译:强大而不稳定的实用锂金属电池在过去50年来一直是一个艰巨的挑战。由于在充电过程中电解质中的离子消耗梯度严重,它们会迅速形成孔隙,枝晶和死锂,这会导致性能下降,并经常导致严重故障。值得注意的是,合并一个小型的100 MHz表面声波器件(SAW)可以解决此问题。该装置在充电过程中提供声速的电解液流动,可实现密集的锂电镀,并避免了孔隙和枝晶。与SAW集成的Li电池在市售的基于碳酸盐的电解质中可以运行高达6 mA cm(-2)的电流;省略SAW会导致2 mA cm(-2)处的短路。使用SAW循环时,Li沉积物没有形态树突,并且接近理论密度。在完整的Li || LFP(LiFePO4)电池中使用厚度为245μm的Li阳极时,引入SAW可使未循环的Li从145μm增至225μm,从而将Li消耗量从41%降低至仅8%。提供了一个封闭形式的模型来解释现象,并用作将这种与化学无关的方法集成到电池中的任何设计的设计工具。

著录项

  • 来源
    《Advanced Materials》 |2020年第14期|1907516.1-1907516.7|共7页
  • 作者

  • 作者单位

    Univ Calif San Diego Mat Sci & Engn Program 9500 Gilman Dr La Jolla CA 92093 USA|Univ Calif San Diego Dept Mech & Aerosp Engn 9500 Gilman Dr La Jolla CA 92093 USA;

    Univ Calif San Diego Mat Sci & Engn Program 9500 Gilman Dr La Jolla CA 92093 USA|Univ Calif San Diego Dept Nanoengn 9500 Gilman Dr La Jolla CA 92093 USA;

    Technion Israel Inst Technol Wolfson Dept Chem Engn IL-3200003 Haifa Israel;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    acoustofluidics; lithium metal batteries; nanofluidics; rechargeable batteries; surface acoustic waves;

    机译:声流体锂金属电池;纳米流体可充电电池;表面声波;

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