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首页> 外文期刊>Journal of Materials Research >Large effect of structural variations in the columnar silicon electrode on energy storage capacity and electrode structural integrity in Li-ion cells
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Large effect of structural variations in the columnar silicon electrode on energy storage capacity and electrode structural integrity in Li-ion cells

机译:柱状硅电极结构变化对锂离子电池储能容量和电极结构完整性的大效果

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摘要

Silicon electrodes with the columnar macroporous structure were investigated to determine the effect of variations in the columnar pore morphology on lithiation and energy storage capacity in Li-ion cells. Several variants of macroporous Si columnar electrodes were electrochemically cycled against the Li reference electrode. The changes in macro-pore size and Si wall thickness of the columnar architecture greatly affected the cyclic Li storage and discharge capacities. A strong correlation of the Li-storage capacity with the ratio of Si wall thickness to pore diameter is found to exist. Specifically, one columnar Si electrode with an optimum macroporous structure exhibited a very high reversible specific capacity of ~1250 mAh/g (total capacity 1.2 mAh/cm~2) for over 200 cycles. Electron microscopy revealed that the high reversible Li-storage capacity is due to the macropores accommodating the change in volume of lithiation and providing nearly complete reconstruction of Si walls upon delithiation. The present observations can lead to practical, high-capacity, and damage-resistant Si electrodes for Li-ion batteries.
机译:研究了具有柱状大孔结构的硅电极,以确定柱状孔形态变异对锂离子细胞锂化和能量储存能力的影响。大孔Si柱状电极的几种变体被电化学循环抵靠Li参比电极。柱式架构的宏观尺寸和Si壁厚度的变化大大影响了循环锂储存和放电容量。发现Li储存容量与Si壁厚与孔径的比率的强烈相关。具体地,具有最佳大孔结构的一个柱状Si电极表现出〜1250mAh / g(总容量1.2mAh / cm〜2)的非常高的可逆特定容量,超过200次循环。电子显微镜透露,高可逆的锂储存能力是由于宏观,适应锂化体积的变化,并在脱轨时提供几乎完全重建的Si壁。本发明的观察可以导致锂离子电池的实用,高容量和耐损害的Si电极。

著录项

  • 来源
    《Journal of Materials Research》 |2020年第21期|2976-2988|共13页
  • 作者单位

    Department of Materials Science and Engineering The University of Utah Salt Lake City 84112 Utah USA;

    Department of Materials Science and Engineering The University of Utah Salt Lake City 84112 Utah USA;

    Department of Materials Science and Engineering The University of Utah Salt Lake City 84112 Utah USA;

    Department of Materials Science and Engineering The University of Utah Salt Lake City 84112 Utah USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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