TY - JOUR
T1 - Conformal Li3PO4-coating synergized epitaxial Mn-doping consolidating chemical and structural stability of Ni-rich LiNi0.9Co0.1O2 cathode
AU - Yang, Mohan
AU - Li, Danhua
AU - Yuan, Yue
AU - Zhao, Zenan
AU - Wang, Jing
AU - Li, Quan
AU - Guo, Jingze
AU - Wang, Meng
AU - Jiang, Chenglong
AU - Yang, Weiyou
AU - Wu, Feng
AU - Wang, Fang
AU - Tan, Guoqiang
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/8
Y1 - 2026/8
N2 - Poor safety and cycle-life of Ni-rich layered oxides caused by the interfacial side reactions and bulk structural degradation seriously encumber their commercialization. Herein, a one-pot hetero-precursor transformation approach has been developed to simultaneously achieve surface-coating and subsurface-doping of Ni-rich layered oxides, and a highly stable heterogeneous interface architecture, integrating an outer Li3PO4 coating layer and a surficial Mn-doping layer, is well designed to enhance chemical and structural stability and eliminate surface impurity. The cathode architectural design exploits advantages of both surface-coating and elemental-doping, where the superficial Mn-doping induces a nanoscale anchoring layer, suppressing transition-metal-ion migration and ameliorating phase transition reversibility, and conformal surface Li3PO4 coating with three-dimensional channels promotes Li-ion transport and suppresses electrolyte decomposition. Due to the improvement in chemical and structural stability and electrical properties, the modified LiNi0.9Co0.1O2 cathode enables much enhanced electrochemical performance, especially high-voltage tolerance and long-cycle stability. The optimal cathode demonstrates a high capacity retention of 90.5% after 100 cycles at 0.2 C in half-cell within 2.80−4.35 V, while its pouch full-cell coupled with graphite enables excellent capacity retention of 86.8% after 900 cycles at 1 C. This work provides a straightforward and economical surface modification strategy for boosting chemical and structural stability of Ni-rich cathode materials.
AB - Poor safety and cycle-life of Ni-rich layered oxides caused by the interfacial side reactions and bulk structural degradation seriously encumber their commercialization. Herein, a one-pot hetero-precursor transformation approach has been developed to simultaneously achieve surface-coating and subsurface-doping of Ni-rich layered oxides, and a highly stable heterogeneous interface architecture, integrating an outer Li3PO4 coating layer and a surficial Mn-doping layer, is well designed to enhance chemical and structural stability and eliminate surface impurity. The cathode architectural design exploits advantages of both surface-coating and elemental-doping, where the superficial Mn-doping induces a nanoscale anchoring layer, suppressing transition-metal-ion migration and ameliorating phase transition reversibility, and conformal surface Li3PO4 coating with three-dimensional channels promotes Li-ion transport and suppresses electrolyte decomposition. Due to the improvement in chemical and structural stability and electrical properties, the modified LiNi0.9Co0.1O2 cathode enables much enhanced electrochemical performance, especially high-voltage tolerance and long-cycle stability. The optimal cathode demonstrates a high capacity retention of 90.5% after 100 cycles at 0.2 C in half-cell within 2.80−4.35 V, while its pouch full-cell coupled with graphite enables excellent capacity retention of 86.8% after 900 cycles at 1 C. This work provides a straightforward and economical surface modification strategy for boosting chemical and structural stability of Ni-rich cathode materials.
KW - Hetero-precursor transformation
KW - Li-ion battery
KW - Ni-rich layered cathode
KW - Subsurface-doping
KW - Surface-coating
KW - Synergistic effect
UR - https://www.scopus.com/pages/publications/105045282240
U2 - 10.1016/j.ensm.2026.105394
DO - 10.1016/j.ensm.2026.105394
M3 - Article
AN - SCOPUS:105045282240
SN - 2405-8297
VL - 90
JO - Energy Storage Materials
JF - Energy Storage Materials
M1 - 105394
ER -