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缺陷钴纳米片上的异常赝电容锂离子存储

Unusual pseudocapacitive lithium-ion storage on defective CoOnanosheets.

作者信息

Avvaru Venkata Sai, Vincent Mewin, Fernandez Ivan Jimenez, Hinder Steven J, Etacheri Vinodkumar

机构信息

Electrochemistry Division, IMDEA Materials Institute, Calle Eric Kandel 2, Getafe, E-28906 Madrid, Spain.

Faculty of Science, Autonoma University of Madrid, C/Francisco Tomás y Valiente, 7, E-28049 Madrid, Spain.

出版信息

Nanotechnology. 2022 Mar 8;33(22). doi: 10.1088/1361-6528/ac54de.

Abstract

Secondary lithium-ion batteries are restricted in large-scale applications including power grids and long driving electric vehicles owing to the low specific capacity of conventional intercalation anodes possessing sluggish Li-ion diffusion kinetics. Herein, we demonstrate an unusual pseudocapacitive lithium-ion storage on defective CoOnanosheet anodes for high-performance rechargeable batteries. Cobalt-oxide nanosheets presented here composed of various defects including vacancies, dislocations and grain boundaries. Unique 2D holey microstructure enabled efficient charge transport as well as provided room for volume expansions associated with lithiation-delithiation process. These defective anodes exhibited outstanding pseudocapacitance (up to 87%), reversible capacities (1490 mAh g@ 25 mA g), rate capability (592 mAh g@ 30 A g), stable cycling (85% after 500 cycles @ 1 A g) and columbic efficiency (∼100%). Exceptional Li-ion storage phenomena in defective CoOnanosheets is accredited to the pseudocapacitive nature of conversion reaction resulting from ultrafast Li-ion diffusion through various crystal defects. The demonstrated approach of defect-induced pseudocapacitance can also be protracted for various low-cost and/or eco-friendly transition metal-oxides for next-generation rechargeable batteries.

摘要

由于具有缓慢锂离子扩散动力学的传统嵌入阳极的比容量较低,二次锂离子电池在包括电网和长续航电动汽车在内的大规模应用中受到限制。在此,我们展示了一种在有缺陷的氧化钴纳米片阳极上实现的异常赝电容锂离子存储,用于高性能可充电电池。本文所呈现的氧化钴纳米片由包括空位、位错和晶界在内的各种缺陷组成。独特的二维多孔微结构实现了高效的电荷传输,并为与锂化 - 脱锂过程相关的体积膨胀提供了空间。这些有缺陷的阳极表现出出色的赝电容(高达87%)、可逆容量(在25 mA g下为1490 mAh g)、倍率性能(在30 A g下为592 mAh g)、稳定的循环性能(在1 A g下500次循环后为85%)和库仑效率(约100%)。有缺陷的氧化钴纳米片中异常的锂离子存储现象归因于超快锂离子通过各种晶体缺陷扩散导致的转化反应的赝电容性质。所展示的缺陷诱导赝电容方法也可以推广到用于下一代可充电电池的各种低成本和/或环保型过渡金属氧化物。

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