TY - JOUR
T1 - Compositionally complex doping for zero-strain zero-cobalt layered cathodes
AU - Zhang, Rui
AU - Wang, Chunyang
AU - Zou, Peichao
AU - Lin, Ruoqian
AU - Ma, Lu
AU - Yin, Liang
AU - Li, Tianyi
AU - Xu, Wenqian
AU - Jia, Hao
AU - Li, Qiuyan
AU - Sainio, Sami
AU - Kisslinger, Kim
AU - Trask, Stephen E.
AU - Ehrlich, Steven N.
AU - Yang, Yang
AU - Kiss, Andrew M.
AU - Ge, Mingyuan
AU - Polzin, Bryant J.
AU - Lee, Sang Jun
AU - Xu, Wu
AU - Ren, Yang
AU - Xin, Huolin L.
PY - 2022/10/6
Y1 - 2022/10/6
N2 - The high volatility of the price of cobalt and the geopolitical limitations of cobalt mining have made the elimination of Co a pressing need for the automotive industry1. Owing to their high energy density and low-cost advantages, high-Ni and low-Co or Co-free (zero-Co) layered cathodes have become the most promising cathodes for next-generation lithium-ion batteries2,3. However, current high-Ni cathode materials, without exception, suffer severely from their intrinsic thermal and chemo-mechanical instabilities and insufficient cycle life. Here, by using a new compositionally complex (high-entropy) doping strategy, we successfully fabricate a high-Ni, zero-Co layered cathode that has extremely high thermal and cycling stability. Combining X-ray diffraction, transmission electron microscopy and nanotomography, we find that the cathode exhibits nearly zero volumetric change over a wide electrochemical window, resulting in greatly reduced lattice defects and local strain-induced cracks. In-situ heating experiments reveal that the thermal stability of the new cathode is significantly improved, reaching the level of the ultra-stable NMC-532. Owing to the considerably increased thermal stability and the zero volumetric change, it exhibits greatly improved capacity retention. This work, by resolving the long-standing safety and stability concerns for high-Ni, zero-Co cathode materials, offers a commercially viable cathode for safe, long-life lithium-ion batteries and a universal strategy for suppressing strain and phase transformation in intercalation electrodes.
AB - The high volatility of the price of cobalt and the geopolitical limitations of cobalt mining have made the elimination of Co a pressing need for the automotive industry1. Owing to their high energy density and low-cost advantages, high-Ni and low-Co or Co-free (zero-Co) layered cathodes have become the most promising cathodes for next-generation lithium-ion batteries2,3. However, current high-Ni cathode materials, without exception, suffer severely from their intrinsic thermal and chemo-mechanical instabilities and insufficient cycle life. Here, by using a new compositionally complex (high-entropy) doping strategy, we successfully fabricate a high-Ni, zero-Co layered cathode that has extremely high thermal and cycling stability. Combining X-ray diffraction, transmission electron microscopy and nanotomography, we find that the cathode exhibits nearly zero volumetric change over a wide electrochemical window, resulting in greatly reduced lattice defects and local strain-induced cracks. In-situ heating experiments reveal that the thermal stability of the new cathode is significantly improved, reaching the level of the ultra-stable NMC-532. Owing to the considerably increased thermal stability and the zero volumetric change, it exhibits greatly improved capacity retention. This work, by resolving the long-standing safety and stability concerns for high-Ni, zero-Co cathode materials, offers a commercially viable cathode for safe, long-life lithium-ion batteries and a universal strategy for suppressing strain and phase transformation in intercalation electrodes.
UR - http://www.scopus.com/inward/record.url?scp=85138363807&partnerID=8YFLogxK
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85138363807&origin=recordpage
U2 - 10.1038/s41586-022-05115-z
DO - 10.1038/s41586-022-05115-z
M3 - RGC 21 - Publication in refereed journal
C2 - 36131017
SN - 0028-0836
VL - 610
SP - 67
EP - 73
JO - Nature
JF - Nature
IS - 7930
ER -