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单晶硫属化物中的热化学结构相变用于长寿命锂离子电池。

Hot-Chemistry Structural Phase Transformation in Single-Crystal Chalcogenides for Long-Life Lithium Ion Batteries.

机构信息

Department of Chemical Engineering, Waterloo Institute for Nanotechnology, and Waterloo Institute for Sustainable Energy, University of Waterloo , Waterloo, Ontario N2L 3G1, Canada.

Chemical and Materials Systems, General Motors Global Research and Development Center , Warren, Michigan 48090, United States.

出版信息

ACS Appl Mater Interfaces. 2017 Jun 21;9(24):20603-20612. doi: 10.1021/acsami.7b04483. Epub 2017 Jun 9.

Abstract

Tuned chalcogenide single crystals rooted in sulfur-doped graphene were prepared by high-temperature solution chemistry. We present a facile route to synthesize a rod-on-sheet-like nanohybrid as an active anode material and demonstrate its superior performance in lithium ion batteries (LIBs). This nanohybrid contains a nanoassembly of one-dimensional (1D) single-crystalline, orthorhombic SnS onto two-dimensional (2D) sulfur-doped graphene. The 1D nanoscaled SnS with the rodlike single-crystalline structure possesses improved transport properties compared to its 2D hexagonal platelike SnS. Furthermore, we blend this hybrid chalcogenide with biodegradable polymer composite using water as a solvent. Upon drying, the electrodes were subjected to heating in vacuum at 150 °C to induce polymer condensation via formation of carboxylate groups to produce a mechanically robust anode. The LIB using the as-developed anode material can deliver a high volumetric capacity of ∼2350 mA h cm and exhibit superior cycle stability over 1500 cycles as well as a high capacity retention of 85% at a 1 C rate. The excellent battery performance combined with the simplistic, scalable, and green chemistry approach renders this anode material as a very promising candidate for LIB applications.

摘要

通过高温溶液化学方法制备了扎根于硫掺杂石墨烯的调谐硫属化物单晶。我们提出了一种简便的方法来合成一种棒状-片状纳米杂化材料作为活性阳极材料,并展示了其在锂离子电池(LIBs)中的优异性能。这种纳米杂化材料包含一维(1D)单晶正交相 SnS 纳米组装体到二维(2D)硫掺杂石墨烯上。与二维六方片状 SnS 相比,具有棒状单晶结构的 1D 纳米 SnS 具有改善的传输性能。此外,我们将这种混合硫属化物与可生物降解聚合物复合材料混合,使用水作为溶剂。在干燥过程中,将电极在 150°C 的真空中加热,通过形成羧酸盐来诱导聚合物缩合,从而产生机械坚固的阳极。使用所开发的阳极材料的 LIB 可以提供约 2350 mA h cm 的高体积容量,并在 1 C 速率下具有超过 1500 次循环的优异循环稳定性和 85%的高容量保持率。出色的电池性能结合简单、可扩展和绿色化学方法,使这种阳极材料成为 LIB 应用的非常有前途的候选材料。

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