Tsai Esther H R, Billaud Juliette, Sanchez Dario F, Ihli Johannes, Odstrčil Michal, Holler Mirko, Grolimund Daniel, Villevieille Claire, Guizar-Sicairos Manuel
Swiss Light Source, Paul Scherrer Institut (PSI), 5232 Villigen, Switzerland.
Electrochemistry Laboratory, Paul Scherer Institut (PSI), 5232 Villigen, Switzerland.
iScience. 2019 Jan 25;11:356-365. doi: 10.1016/j.isci.2018.12.028. Epub 2018 Dec 31.
The search for higher performance, improved safety, and lifetime of lithium-ion batteries relies on the understanding of degradation mechanisms. Complementary to methods and studies on primary particles or crystalline structure on bulk materials, here we use spatially correlated ptychographic X-ray computed nanotomography with a 35 nm resolution and scanning X-ray diffraction microscopy with 1 μm resolution to visualize in 3D the hidden morphological and structural degradation processes in individual secondary particles of lithium-rich nickel, cobalt, and manganese oxides. From comparative examination of pristine and cycled particles, we suggest that morphological degradation could have radial dependency and secondary particle size dependency. The same particles were examined to correlate the degradation to crystallinity, which shows surprising core-shell structures. This study reveals the inner 3D structure of the secondary particles while opening up questions on the unexpected crystalline structural distributions, which could offer clues for future studies on this promising cathode material for lithium-ion batteries.
对高性能、更高安全性和更长使用寿命的锂离子电池的探索依赖于对降解机制的理解。与对块状材料的一次颗粒或晶体结构的方法和研究相辅相成,在这里,我们使用具有35纳米分辨率的空间相关叠层X射线计算机纳米断层扫描和具有1微米分辨率的扫描X射线衍射显微镜,以三维方式可视化富锂镍钴锰氧化物单个二次颗粒中隐藏的形态和结构降解过程。通过对原始颗粒和循环颗粒的对比研究,我们认为形态降解可能具有径向依赖性和二次颗粒尺寸依赖性。对相同的颗粒进行了检查,以将降解与结晶度相关联,结果显示出令人惊讶的核壳结构。这项研究揭示了二次颗粒的内部三维结构,同时也引发了关于意外晶体结构分布的问题,这可能为未来对这种有前景的锂离子电池正极材料的研究提供线索。