TY - JOUR
T1 - Breaking the voltage-dependent degradation paradigm
T2 - high cut-off voltage enables stable cycling of single-crystal lithium-rich cathodes
AU - Hao, Jianan
AU - Dong, Jinyang
AU - Guan, Yibiao
AU - Lu, Yun
AU - Wu, Yujia
AU - Che, Huiquan
AU - Yang, Teng
AU - Wang, Yiya
AU - Li, Ning
AU - Zhang, Bin
AU - Su, Yuefeng
AU - Wu, Feng
AU - Chen, Lai
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/8
Y1 - 2026/8
N2 - Single-crystal lithium-rich manganese-based oxides (SC-LRM) are promising cathodes for high-energy lithium-ion batteries owing to their structural robustness and suitability for high-voltage operation. However, their stability under elevated cut-off voltages remains insufficiently understood. In this study, SC-LRM was cycled at 4.6 V and 4.8 V using a commercial multi-component electrolyte designed for high-voltage applications. Pre-cycling characterization confirmed that both samples shared similar morphologies and slightly different crystal structures. Unexpectedly, SC-LRM exhibited improved capacity retention, reduced polarization, and enhanced structural stability at 4.8 V. Through a multi-scale analysis combined with a differential capacity-based coupling strategy, it was revealed that this behavior originated from voltage-dependent interfacial reconstruction. At 4.8 V, selective decomposition of fluorinated and boron-based electrolyte components promoted the formation of a uniform, inorganic-rich CEI. This interphase effectively suppressed oxygen release, transition metal dissolution, and harmful phase transitions during cycling. In contrast, the CEI formed at 4.6 V was less uniform and less protective. These findings challenge the conventional view that higher cut-off voltages necessarily worsen stability in lithium-rich systems and underscore the importance of electrolyte-voltage synergy in enabling favorable interfacial evolution. This work provides broadly applicable insights for the interfacial engineering and voltage protocol design of SC-LRM and other high-voltage cathode systems.
AB - Single-crystal lithium-rich manganese-based oxides (SC-LRM) are promising cathodes for high-energy lithium-ion batteries owing to their structural robustness and suitability for high-voltage operation. However, their stability under elevated cut-off voltages remains insufficiently understood. In this study, SC-LRM was cycled at 4.6 V and 4.8 V using a commercial multi-component electrolyte designed for high-voltage applications. Pre-cycling characterization confirmed that both samples shared similar morphologies and slightly different crystal structures. Unexpectedly, SC-LRM exhibited improved capacity retention, reduced polarization, and enhanced structural stability at 4.8 V. Through a multi-scale analysis combined with a differential capacity-based coupling strategy, it was revealed that this behavior originated from voltage-dependent interfacial reconstruction. At 4.8 V, selective decomposition of fluorinated and boron-based electrolyte components promoted the formation of a uniform, inorganic-rich CEI. This interphase effectively suppressed oxygen release, transition metal dissolution, and harmful phase transitions during cycling. In contrast, the CEI formed at 4.6 V was less uniform and less protective. These findings challenge the conventional view that higher cut-off voltages necessarily worsen stability in lithium-rich systems and underscore the importance of electrolyte-voltage synergy in enabling favorable interfacial evolution. This work provides broadly applicable insights for the interfacial engineering and voltage protocol design of SC-LRM and other high-voltage cathode systems.
KW - Interfacial stability
KW - Multi-component electrolyte
KW - Multiscale failure analysis
KW - Single-crystal lithium-rich manganese oxide
KW - Voltage-dependent degradation mechanism
UR - https://www.scopus.com/pages/publications/105042440411
U2 - 10.1016/j.ensm.2026.105278
DO - 10.1016/j.ensm.2026.105278
M3 - Article
AN - SCOPUS:105042440411
SN - 2405-8297
VL - 90
JO - Energy Storage Materials
JF - Energy Storage Materials
M1 - 105278
ER -