TY - JOUR
T1 - The nature of irreversible phase transformation propagation in nickel-rich layered cathode for lithium-ion batteries
AU - Wu, Feng
AU - Liu, Na
AU - Chen, Lai
AU - Li, Ning
AU - Dong, Jinyang
AU - Lu, Yun
AU - Tan, Guoqiang
AU - Xu, Mingzhe
AU - Cao, Duanyun
AU - Liu, Yafei
AU - Chen, Yanbin
AU - Su, Yuefeng
N1 - Publisher Copyright:
© 2021
PY - 2021/11
Y1 - 2021/11
N2 - Ni-rich layered cathode is regarded as one of the most promising candidates to achieve lithium-ion batteries (LIBs) with high energy density. However, due to the irreversible phase transformation (IPT) and its eventual propagation from surface to the bulk of the material, Ni-rich layered cathode typically suffers from severe capacity fading, structure failure, and thermal instability, which greatly hinders its mass adoption. Hence, achieving an in-depth understanding of the IPT propagation mechanism in Ni-rich layered cathode is crucial in addressing these issues. Herein, the triggering factor of IPT propagation in Ni-rich cathode is verified to be the initial surface disordered cation mixing domain covered by a thin rock-salt phase, instead of the rock-salt phase itself. According to the density functional theory (DFT) results, it is further illustrated that the metastable cation mixing domain possesses a lower Ni migration energy barrier, which facilitates the migration of Ni ions towards the Li slab, and thus driving the propagation of IPT from surface to the bulk of the material. This finding clarifies a prevailing debate regarding the surface impurity phases of Ni-rich cathode material and reveals the origin of IPT propagation, which implies the principle and its effectiveness of tuning the surface microstructure to address the structural and thermal instability issue of Ni-rich layered cathode materials.
AB - Ni-rich layered cathode is regarded as one of the most promising candidates to achieve lithium-ion batteries (LIBs) with high energy density. However, due to the irreversible phase transformation (IPT) and its eventual propagation from surface to the bulk of the material, Ni-rich layered cathode typically suffers from severe capacity fading, structure failure, and thermal instability, which greatly hinders its mass adoption. Hence, achieving an in-depth understanding of the IPT propagation mechanism in Ni-rich layered cathode is crucial in addressing these issues. Herein, the triggering factor of IPT propagation in Ni-rich cathode is verified to be the initial surface disordered cation mixing domain covered by a thin rock-salt phase, instead of the rock-salt phase itself. According to the density functional theory (DFT) results, it is further illustrated that the metastable cation mixing domain possesses a lower Ni migration energy barrier, which facilitates the migration of Ni ions towards the Li slab, and thus driving the propagation of IPT from surface to the bulk of the material. This finding clarifies a prevailing debate regarding the surface impurity phases of Ni-rich cathode material and reveals the origin of IPT propagation, which implies the principle and its effectiveness of tuning the surface microstructure to address the structural and thermal instability issue of Ni-rich layered cathode materials.
KW - Cation-mixing domain
KW - Lithium-ion battery
KW - Nickel-rich layered cathode
KW - Phase transformation propagation
KW - Rock-salt phase
UR - http://www.scopus.com/inward/record.url?scp=85105896775&partnerID=8YFLogxK
U2 - 10.1016/j.jechem.2021.03.035
DO - 10.1016/j.jechem.2021.03.035
M3 - Article
AN - SCOPUS:85105896775
SN - 2095-4956
VL - 62
SP - 351
EP - 358
JO - Journal of Energy Chemistry
JF - Journal of Energy Chemistry
ER -