| Literature DB >> 35449218 |
Hyeokjun Park1,2,3, Hayoung Park2,4, Kyung Song5, Seok Hyun Song6, Sungsu Kang2,4, Kun-Hee Ko1, Donggun Eum1, Yonggoon Jeon2,4, Jihoon Kim2,4, Won Mo Seong1, Hyungsub Kim6, Jungwon Park7,8,9,10, Kisuk Kang11,12,13,14.
Abstract
Nickel-rich layered oxides are envisaged as key near-future cathode materials for high-energy lithium-ion batteries. However, their practical application has been hindered by their inferior cycle stability, which originates from chemo-mechanical failures. Here we probe the solid-state synthesis of LiNi0.6Co0.2Mn0.2O2 in real time to better understand the structural and/or morphological changes during phase evolution. Multi-length-scale observations-using aberration-corrected transmission electron microscopy, in situ heating transmission electron microscopy and in situ X-ray diffraction-reveal that the overall synthesis is governed by the kinetic competition between the intrinsic thermal decomposition of the precursor at the core and the topotactic lithiation near the interface, which results in spatially heterogeneous intermediates. The thermal decomposition leads to the formation of intergranular voids and intragranular nanopores that are detrimental to cycling stability. Furthermore, we demonstrate that promoting topotactic lithiation during synthesis can mitigate the generation of defective structures and effectively suppress the chemo-mechanical failures.Entities:
Year: 2022 PMID: 35449218 DOI: 10.1038/s41557-022-00915-2
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427