MnS hollow microspheres combined with carbon nanotubes for enhanced performance sodium-ion battery anode

The electrochemical performance of the synthesized hollow MnS/CNTs composite is effectively enhanced. The enhanced performance benefits from the rational combination of the advantages of the hollow porous structure and the synergistic effect between MnS and CNTs, which can facilitate the transport o...

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Veröffentlicht in:Chinese chemical letters 2020-05, Vol.31 (5), p.1221-1225
Hauptverfasser: Zhang, Na, Li, Xin, Hou, Tianyi, Guo, Jinze, Fan, Anran, Jin, Shibo, Sun, Xiaohong, Cai, Shu, Zheng, Chunming
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Sprache:eng
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Zusammenfassung:The electrochemical performance of the synthesized hollow MnS/CNTs composite is effectively enhanced. The enhanced performance benefits from the rational combination of the advantages of the hollow porous structure and the synergistic effect between MnS and CNTs, which can facilitate the transport of electrons and Na+, accommodate the volume expansion, and improve the contact area between the electrode and electrolyte. [Display omitted] MnS as anode material for sodium-ion batteries (SIBs) has recently attracted great attention because of the high theoretical capacity, great natural abundance, and low cost. However, it suffers from inferior electrical conductivity and large volume expansion during the charge/discharge process, leading to tremendous damage of electrodes and subsequently fast capacity fading. To mitigate these issues, herein, a three-dimensional (3D) interlaced carbon nanotubes (CNTs) threaded into or between MnS hollow microspheres (hollow MnS/CNTs composite) has been designed and synthesized as an enhanced anode material. It can effectively improve the electrical conductivity, buffer the volume change, and maintain the integrity of the electrode during the charging and discharging process based on the synergistic interaction and the integrative structure. Therefore, when evaluated as anode for SIBs, the hollow MnS/CNTs electrode displays enhanced reversible capacity (275 mAh/g at 100 mA/g after 100 cycles), which is much better than that of pure MnS electrode (25mAh/g at 100 mA/g after 100 cycles) prepared without the addition of CNTs. Even increasing the current density to 500 mA/g, the hollow MnS/CNTs electrode still delivers a five times higher reversible capacity than that of the pure MnS electrode. The rate performance of the hollow MnS/CNTs electrode is also superior to that of pure MnS electrode at various current densities from 50 mA/g to 1000 mA/g.
ISSN:1001-8417
1878-5964
DOI:10.1016/j.cclet.2019.09.050