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通过碳纳米管互连的双金属氧化物用于高容量锂离子和钠离子电池。

Dual metal oxides interconnected by carbon nanotubes for high-capacity Li- and Na-ion batteries.

作者信息

Chai Yujun, Du Yongheng, Li Ling, Wang Ning

机构信息

College of Chemistry and Material Science, Hebei Normal University, Hebei, Shijiazhuang 050024, People's Republic of China. Hebei Key Laboratory of Inorganic Nanomaterials, Hebei, Shijiazhuang 050024, People's Republic of China.

出版信息

Nanotechnology. 2020 May 22;31(21):215402. doi: 10.1088/1361-6528/ab7049. Epub 2020 Jan 27.

Abstract

SbO and CoO as potential anode materials for Li- and Na-ion batteries exhibit high theoretical capacities and excellent electrochemical stability; however, volume expansion, exfoliation and poor electronic conductivity affect the electrochemical performance to some extent. Here, we design dual metal oxide hybrid composites by one- and two-step solvothermal processes, in which CoO with SbO traps Li ions and carbon nanotubes (CNTs) as a network guarantee for electron transport. SbO/CNTs/CoO and SbO/CoO/CNTs composites exhibit different morphologies, particles sizes and Li/Na storage performance. The SbO/CNTs/CoO composite showes initial capacities of 1790 and 1450 mAh g after 100 cycles as the anode for a Li-ion battery. The capacity retention of the SbO/CoO/CNTs composite is better than the SbO/CNTs/CoO composite for Na-ion storage. With charge/discharge cycles, the transition reaction of SbO and CoO to Sb and Co repeats, leading to a homogenous distribution in CNTs and further growth of the nanoparticles. This work provides new insights into the design of high-capacity anodes for Li- and Na-ion storage by adjusting their composition and morphology.

摘要

SbO和CoO作为锂离子和钠离子电池的潜在负极材料,具有较高的理论容量和出色的电化学稳定性;然而,体积膨胀、剥落以及较差的电子导电性在一定程度上影响了其电化学性能。在此,我们通过一步和两步溶剂热法设计了双金属氧化物混合复合材料,其中带有SbO的CoO捕获锂离子,而碳纳米管(CNT)作为电子传输的网络保障。SbO/CNTs/CoO和SbO/CoO/CNTs复合材料呈现出不同的形态、颗粒尺寸以及锂/钠存储性能。作为锂离子电池负极,SbO/CNTs/CoO复合材料在100次循环后首次容量分别为1790和1450 mAh g。对于钠离子存储,SbO/CoO/CNTs复合材料的容量保持率优于SbO/CNTs/CoO复合材料。随着充放电循环,SbO和CoO向Sb和Co的转变反应不断重复,导致在碳纳米管中均匀分布并使纳米颗粒进一步生长。这项工作通过调整其组成和形态,为设计用于锂和钠存储的高容量负极提供了新的见解。

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