State Key Lab of Fine Chemicals, School of Chemical Engineering, Liaoning Key Lab for Energy Materials and Chemical Engineering, Dalian University of Technology, Dalian, 116024, China.
Department of Mechanical and Materials Engineering, University of Western Ontario, London, ON, N6A 5B9, Canada.
Adv Mater. 2018 Feb;30(7). doi: 10.1002/adma.201702486. Epub 2018 Jan 8.
To achieve the high-power sodium-ion batteries, the solid-state ion diffusion in the electrode materials is a highly concerned issue and needs to be solved. In this study, a simple and effective strategy is reported to weaken and degrade this process by engineering the intensified surface and near-surface reactions, which is realized by making use of a sandwich-type nanoarchitecture composed of graphene as electron channels and few-layered MoS with expanded interlayer spacing. The unique 2D sheet-shaped hierarchical structure is capable of shortening the ion diffusion length, while the few-layered MoS with expanded interlayer spacing has more accessible surface area and the decreased ion diffusion resistance, evidenced by the smaller energy barriers revealed by the density functional theory calculations. Benefiting from the shortened ion diffusion distance and enhanced electron transfer capability, a high ratio of surface or near-surface reactions is dominated at a high discharge/charge rate. As such, the composites exhibit the high capacities of 152 and 93 mA h g at 30 and 50 A g , respectively. Moreover, a high reversible capacity of 684 mA h g and an excellent cycling stability up to 4500 cycles can be delivered. The outstanding performance is attributed to the engineered structure with increased contribution of surface or near-surface reactions.
为了实现高功率钠离子电池,电极材料中的固态离子扩散是一个备受关注的问题,需要加以解决。在这项研究中,报告了一种通过工程化强化表面和近表面反应来减弱和降解这一过程的简单而有效的策略,这是通过利用由作为电子通道的石墨烯和具有扩展层间距的少层 MoS 组成的三明治型纳米结构来实现的。独特的二维片状分层结构能够缩短离子扩散长度,而具有扩展层间距的少层 MoS 具有更多可及的表面积和降低的离子扩散阻力,这一点可以通过密度泛函理论计算揭示的较小能量势垒得到证明。得益于缩短的离子扩散距离和增强的电子转移能力,在高放电/充电速率下,表面或近表面反应占据主导地位。因此,该复合材料在 30 和 50 A g 时分别表现出 152 和 93 mA h g 的高容量。此外,还可以提供 684 mA h g 的高可逆容量和高达 4500 次循环的出色循环稳定性。优异的性能归因于具有增加的表面或近表面反应贡献的工程化结构。