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分层石墨烯的 C 等离子体可在 SnS 束中存活,实现超稳定和高体积钠离子存储。

C-Plasma of Hierarchical Graphene Survives SnS Bundles for Ultrastable and High Volumetric Na-Ion Storage.

机构信息

School of Physical and Mathematical Sciences, Nanyang Technological University, 637371, Singapore.

National Institute of Education, Nanyang Technological University, 637616, Singapore.

出版信息

Adv Mater. 2018 Dec;30(49):e1804833. doi: 10.1002/adma.201804833. Epub 2018 Oct 9.

Abstract

Tin and its derivatives have provoked tremendous progress of high-capacity sodium-ion anode materials. However, achieving high areal and volumetric capability with maintained long-term stability in a single electrode remains challenging. Here, an elegant and versatile strategy is developed to significantly extend the lifespan and rate capability of tin sulfide nanobelt electrodes while maintaining high areal and volumetric capacities. In this strategy, in situ bundles of robust hierarchical graphene (hG) are grown uniformly on tin sulfide nanobelt networks through a rapid (5 min) carbon-plasma method with sustainable oil as the carbon source and the partially reduced Sn as the catalyst. The nucleation of graphene, CN (with size N ranging from 1 to 24), on the Sn(111) surface is systematically explored using density functional theory calculations. It is demonstrated that this chemical-bonded hG strategy is powerful in enhancing overall electrochemical performance.

摘要

锡及其衍生物引发了高能钠离子阳极材料的巨大进展。然而,在单个电极中实现高面积和体积容量并保持长期稳定性仍然具有挑战性。在这里,开发了一种优雅且通用的策略,可以在保持高面积和体积容量的同时,显著延长硫化锡纳米带电极的寿命和倍率性能。在该策略中,通过快速(5 分钟)碳等离子体方法,以可持续的油作为碳源,部分还原的 Sn 作为催化剂,在硫化锡纳米带网络上均匀生长出稳健的分级石墨烯(hG)的原位束。使用密度泛函理论计算系统地研究了石墨烯(CN,尺寸 N 从 1 到 24)在 Sn(111)表面上的成核。结果表明,这种化学结合的 hG 策略在提高整体电化学性能方面非常有效。

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