Huang Jianhua, Yao Yongsheng, Huang Ming, Zhang Yufei, Xie Yunfei, Li Mingliang, Yang Liuli, Wei Xiaolin, Li Ziwei
College of Materials Science and Engineering, Hunan University, Changsha, Hunan, 410082, China.
Department of Physics and Laboratory for Quantum Engineering and Micro-Nano Energy Technology, Xiangtan University, Xiangtan, Hunan, 411105, China.
Small. 2022 May;18(18):e2200782. doi: 10.1002/smll.202200782. Epub 2022 Apr 3.
Exploring novel electrode composites and their unique interface physics plays a significant role in tuning electrochemical properties for boosting the performance of sodium-ion batteries (SIBs). Herein, mixed-dimensional G/NiS -MoS heterostructures are synthesized in a low-cost meteorological vulcanization process. The stable graphene supporting layer and nanowire heterostructure guarantee an outstanding structural stability to tolerate certain volume changes during the charge/discharge process. The rational construction of NiS -MoS heterostructures induces abundant interfaces and unique ion diffusion channels, which render fast electrochemical kinetics and superior reversible capacities for high-performance SIBs. Interestingly, theoretical studies reveal that the anisotropic diffusion barriers create unidirectional "high-speed" channels, which can lead to ordered and fast Na insertion/extraction in designed heterostructures. G/NiS -MoS anode exhibits a high capacity of 509.6 mA h g after 500 cycles and a coulombic efficiency >99% at 0.5 A g , which also displays excellent cycling performance with the capacity of 383.8 mA h g after the 1000 cycles at 5 A g . Furthermore, full cells are constructed exhibiting a high capacity of 70 mA h g at 0.1 A g after 150 cycles and applied to light LEDs. This study provides a feasible strategy of constructing mixed-dimensional heterostructures for SIBs with excellent performance and a long service lifetime.
探索新型电极复合材料及其独特的界面物理性质对于调节电化学性能以提高钠离子电池(SIBs)的性能具有重要作用。在此,通过低成本的气象硫化过程合成了混合维度的G/NiS -MoS异质结构。稳定的石墨烯支撑层和纳米线异质结构保证了出色的结构稳定性,以耐受充放电过程中的一定体积变化。NiS -MoS异质结构的合理构建诱导了丰富的界面和独特的离子扩散通道,这为高性能SIBs带来了快速的电化学动力学和优异的可逆容量。有趣的是,理论研究表明各向异性扩散势垒产生单向“高速”通道,这可导致在设计的异质结构中实现有序且快速的Na嵌入/脱出。G/NiS -MoS负极在500次循环后表现出509.6 mA h g的高容量,在0.5 A g时库仑效率>99%,在5 A g下1000次循环后容量为383.8 mA h g,也显示出优异的循环性能。此外,构建的全电池在150次循环后在0.1 A g时表现出70 mA h g的高容量,并应用于点亮发光二极管。这项研究为构建具有优异性能和长使用寿命的SIBs混合维度异质结构提供了一种可行的策略。