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α-FeO纳米颗粒修饰的C@MoS纳米片阵列,其(002)面间距扩大,用于超快和高锂/钠离子存储。

α-Fe O Nanoparticles Decorated C@MoS Nanosheet Arrays with Expanded Spacing of (002) Plane for Ultrafast and High Li/Na-Ion Storage.

作者信息

Zhan Jing, Wu Kuan, Yu Xue, Yang Mengjia, Cao Xu, Lei Bo, Pan Dengyu, Jiang Hu, Wu Minghong

机构信息

School of Environmental and Chemical Engineering, Shanghai University, 99 Shangda Road, Shanghai, 200444, P. R. China.

NUS Graduate School for Integrative Sciences and Engineering, National University of Singapore, Singapore, 117583, Singapore.

出版信息

Small. 2019 May;15(21):e1901083. doi: 10.1002/smll.201901083. Epub 2019 Apr 16.

Abstract

MoS nanosheets as a promising 2D nanomaterial have extensive applications in energy storage and conversion, but their electrochemical performance is still unsatisfactory as an anode for efficient Li /Na storage. In this work, the design and synthesis of vertically grown MoS nanosheet arrays, decorated with graphite carbon and Fe O nanoparticles, on flexible carbon fiber cloth (denoted as Fe O @C@MoS /CFC) is reported. When evaluated as an anode for lithium-ion batteries, the Fe O @C@MoS /CFC electrode manifests an outstanding electrochemical performance with a high discharge capacity of 1541.2 mAh g at 0.1 A g and a good capacity retention of 80.1% at 1.0 A g after 500 cycles. As for sodium-ion batteries, it retains a high reversible capacity of 889.4 mAh g at 0.5 A g over 200 cycles. The superior electrochemical performance mainly results from the unique 3D ordered Fe O @C@MoS array-type nanostructures and the synergistic effect between the C@MoS nanosheet arrays and Fe O nanoparticles. The Fe O nanoparticles act as spacers to steady the structure, and the graphite carbon could be incorporated into MoS nanosheets to improve the conductivity of the whole electrode and strengthen the integration of MoS nanosheets and CFC by the adhesive role, together ensuring high conductivity and mechanical stability.

摘要

作为一种有前景的二维纳米材料,二硫化钼纳米片在能量存储和转换方面有广泛应用,但其作为高效锂/钠存储的阳极,电化学性能仍不尽人意。在这项工作中,报道了在柔性碳纤维布上垂直生长的、装饰有石墨碳和氧化铁纳米颗粒的二硫化钼纳米片阵列(表示为FeO@C@MoS/CFC)的设计与合成。当作为锂离子电池的阳极进行评估时,FeO@C@MoS/CFC电极表现出优异的电化学性能,在0.1 A g时具有1541.2 mAh g的高放电容量,在1.0 A g下500次循环后容量保持率为80.1%。对于钠离子电池,在0.5 A g下200次循环中保持889.4 mAh g的高可逆容量。优异的电化学性能主要源于独特的三维有序FeO@C@MoS阵列型纳米结构以及C@MoS纳米片阵列与FeO纳米颗粒之间的协同效应。FeO纳米颗粒起到间隔物的作用以稳定结构,石墨碳可掺入二硫化钼纳米片中以提高整个电极的导电性,并通过粘附作用加强二硫化钼纳米片与碳纤维布的整合,共同确保高导电性和机械稳定性。

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