Hefei National Laboratory for Physical Sciences at the Microscale, CAS Centre for Excellence in Nanoscience, iCHEM, University of Science and Technology of China , Hefei, Anhui 230026, People's Republic of China.
Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials (AIIM), and School of Mechanical, Materials and Mechatronics Engineering, Faculty of Engineering and Information Sciences, University of Wollongong , North Wollongong, NSW 2500, Australia.
ACS Nano. 2017 Aug 22;11(8):8519-8526. doi: 10.1021/acsnano.7b04617. Epub 2017 Aug 2.
By scrutinizing the energy storage process in Li-ion batteries, tuning Li-ion migration behavior by atomic level tailoring will unlock great potential for pursuing higher electrochemical performance. Vacancy, which can effectively modulate the electrical ordering on the nanoscale, even in tiny concentrations, will provide tempting opportunities for manipulating Li-ion migratory behavior. Herein, taking CuGeO as a model, oxygen vacancies obtained by reducing the thickness dimension down to the atomic scale are introduced in this work. As the Li-ion storage progresses, the imbalanced charge distribution emerging around the oxygen vacancies could induce a local built-in electric field, which will accelerate the ions' migration rate by Coulomb forces and thus have benefits for high-rate performance. Furthermore, the thus-obtained CuGeO ultrathin nanosheets (CGOUNs)/graphene van der Waals heterojunctions are used as anodes in Li-ion batteries, which deliver a reversible specific capacity of 1295 mAh g at 100 mA g, with improved rate capability and cycling performance compared to their bulk counterpart. Our findings build a clear connection between the atomic/defect/electronic structure and intrinsic properties for designing high-efficiency electrode materials.
通过仔细研究锂离子电池的储能过程,通过原子级剪裁来调整锂离子的迁移行为,将为追求更高的电化学性能释放巨大的潜力。空位可以有效地调节纳米尺度上的电有序性,即使在微小的浓度下,也将为操纵锂离子迁移行为提供诱人的机会。在此,以 CuGeO 为例,通过将厚度尺寸减小到原子尺度,引入了氧空位。随着锂离子的存储过程的进行,在氧空位周围出现的不平衡电荷分布会引起局部内置电场,这将通过库仑力加速离子的迁移率,从而有利于高倍率性能。此外,所获得的 CuGeO 超薄纳米片(CGOUNs)/石墨烯范德华异质结被用作锂离子电池的阳极,在 100 mA g 的电流密度下,可逆比容量为 1295 mAh g,与体相比,其倍率性能和循环性能得到了提高。我们的发现为设计高效电极材料建立了原子/缺陷/电子结构与内在性质之间的明确联系。