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具有增强动力学的多功能界面自组装TiCT MXene基复合材料用于卓越的锂和钠存储

Versatile Interfacial Self-Assembly of TiCT MXene Based Composites with Enhanced Kinetics for Superior Lithium and Sodium Storage.

作者信息

Zou Zhengguang, Wang Qian, Yan Jun, Zhu Kai, Ye Ke, Wang Guiling, Cao Dianxue

机构信息

Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, China.

出版信息

ACS Nano. 2021 Jul 27;15(7):12140-12150. doi: 10.1021/acsnano.1c03516. Epub 2021 Jul 13.

Abstract

Exploring nanostructured transition-metal sulfide anode materials with excellent electrical conductivity is the key point for high-performance alkali metal ion storage devices. Herein, we propose a powerful bottom-up strategy for the construction of a series of sandwich-structured materials by a rapid interfacial self-assembly approach. Oleylamine could act as a functional reagent to guarantee that the nanomaterials self-assemble with MXene. Benefiting from the small size of Co-NiS nanorods, excellent conductivity of MXene, and sandwiched structure of the composite, the Co-NiS/MXene composite could deliver a high discharge capacity of 911 mAh g at 0.1 A g for lithium-ion storage. After 200 cycles at 0.1 A g, a high specific capacity of 1120 mAh g could be still remaining, indicating excellent cycling stability. For sodium-ion storage, the composite exhibits high specific capacity of 541 mAh g at 0.1 A g and excellent rate capability (263 mAh g at 5 A g). This work offers a straightforward strategy to design and construct MXene-based anode nanomaterials with sandwiched structure for high-performance alkali metal ion storage and even in other fields.

摘要

探索具有优异导电性的纳米结构过渡金属硫化物负极材料是高性能碱金属离子存储器件的关键所在。在此,我们提出了一种强大的自下而上的策略,通过快速界面自组装方法构建一系列三明治结构材料。油胺可作为功能试剂,确保纳米材料与MXene自组装。得益于Co-NiS纳米棒的小尺寸、MXene的优异导电性以及复合材料的三明治结构,Co-NiS/MXene复合材料在0.1 A g下用于锂离子存储时可提供911 mAh g的高放电容量。在0.1 A g下循环200次后,仍可保持1120 mAh g的高比容量,表明其具有优异的循环稳定性。对于钠离子存储,该复合材料在0.1 A g下表现出541 mAh g的高比容量和优异的倍率性能(在5 A g下为263 mAh g)。这项工作为设计和构建具有三明治结构的基于MXene的负极纳米材料提供了一种直接的策略,用于高性能碱金属离子存储乃至其他领域。

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