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A High-Rate V2O5 Hollow Microclew Cathode for an All-Vanadium-Based Lithium-Ion Full Cell

机译:适用于全钒基锂离子全电池的高速V2O5空心微线阴极

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摘要

V2O5 hollow microclews (V2O5-HMs) have been fabricated through a facile solvothermal method with subsequent calcination. The synthesized V2O5-HMs exhibit a 3D hierarchical structure constructed by intertangled nanowires, which could realize superior ion transport, good structural stability, and significantly improved tap density. When used as the cathodes for lithium-ion batteries (LIBs), the V2O5-HMs deliver a high capacity (145.3 mAh g(-1)) and a superior rate capability (94.8 mAh g(-1) at 65 C). When coupled with a lithiated Li3VO4 anode, the all-vanadium-based lithium-ion full cell exhibits remarkable cycling stability with a capacity retention of 71.7% over 1500 cycles at 6.7 C. The excellent electrochemical performance demonstrates that the V2O5-HM is a promising candidate for LIBs. The insight obtained from this work also provides a novel strategy for assembling 1D materials into hierarchical microarchitectures with anti-pulverization ability, excellent electrochemical kinetics, and enhanced tap density.
机译:V2O5空心微团簇(V2O5-HMs)已通过一种轻松的溶剂热法并随后进行煅烧而制成。合成的V2O5-HMs表现出由缠结的纳米线构成的3D层次结构,可以实现优异的离子传输,良好的结构稳定性和显着提高的振实密度。当用作锂离子电池(LIB)的阴极时,V2O5-HMs具有高容量(145.3 mAh g(-1))和出色的倍率能力(在65 C时为94.8 mAh g(-1))。当与锂化的Li3VO4阳​​极结合使用时,全钒基锂离子全电池表现出出色的循环稳定性,在6.7 C下经过1500次循环后的容量保持率为71.7%。出色的电化学性能表明V2O5-HM是有前途的LIB的候选人。从这项工作中获得的见识还提供了一种将一维材料组装到具有抗粉化能力,出色的电化学动力学和增强的振实密度的分层微体系结构中的新颖策略。

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