材料科学
阴极
掺杂剂
电化学
化学工程
金属
对偶(语法数字)
无机化学
兴奋剂
电极
冶金
化学
物理化学
工程类
艺术
文学类
光电子学
作者
Linqin Mu,Wang Hay Kan,Chunguang Kuai,Zhijie Yang,Luxi Li,Cheng‐Jun Sun,Sami Sainio,Maxim Avdeev,Dennis Nordlund,Feng Lin
标识
DOI:10.1021/acsami.0c00111
摘要
Doping chemistry has been regarded as an efficient strategy to overcome some fundamental challenges facing the "no-cobalt" LiNiO2 cathode materials. By utilizing the doping chemistry, we evaluate the battery performance and structural/chemical reversibility of a new no-cobalt cathode material (Mg/Mn-LiNiO2). The unique dual dopants drive Mg and Mn to occupy the Li site and Ni site, respectively. The Mg/Mn-LiNiO2 cathode delivers smooth voltage profiles, enhanced structural stability, elevated self-discharge resistance, and inhibited nickel dissolution. As a result, the Mg/Mn-LiNiO2 cathode enables improved cycling stability in lithium metal batteries with the conventional carbonate electrolyte: 80% capacity retention after 350 cycles at C/3, and 67% capacity retention after 500 cycles at 2C (22 °C). We then take the Mg/Mn-LiNiO2 as the platform to investigate the local structural and chemical reversibility, where we identify that the irreversibility takes place starting from the very first cycle. The highly reactive surface induces the surface oxygen loss, metal reduction reaching the subsurface, and metal dissolution. Our data demonstrate that the dual dopants can, to some degree, mitigate the irreversibility and improve the cycling stability of LiNiO2, but more efforts are needed to eliminate the key challenges of these materials for battery operation in the conventional carbonate electrolyte.
科研通智能强力驱动
Strongly Powered by AbleSci AI