TY - JOUR
T1 - Nitrile-Additive-Enabled Solvation Regulation and Cathode Interphase Stabilization for High-Voltage Ni-Rich Layered Oxide Cathodes
AU - Yang, Ziyin
AU - Duan, Qiong
AU - Li, Yu
AU - Lu, Xueying
AU - Li, Huanyu
AU - Zhang, Ripeng
AU - Bai, Ying
AU - Wu, Chuan
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/13
Y1 - 2026/7/13
N2 - Ni-rich layered oxides, such as LiNi0.835Co0.113Mn0.052O2, are promising cathodes for high-energy-density lithium-ion batteries owing to their high theoretical specific capacity, elevated operating voltage, and reduced Co content. However, their practical application is hindered by severe interfacial instability, including continuous electrolyte decomposition, dissolution of transition-metal (TM) ions, and surface structural degradation during cycling. Meanwhile, conventional carbonate electrolytes exhibit limited oxidative stability at high voltages and tend to form an unstable cathode electrolyte interphase (CEI), which aggravates interfacial side reactions and capacity fading. Herein, 1,3,6-hexanetricarbonitrile (HTCN) is introduced as an electrolyte additive to regulate the cathode/electrolyte interphase of NCM cathodes. HTCN modifies the local solvation environment and promotes the formation of a thin, robust, and homogeneous CEI, thereby suppressing electrolyte decomposition and mitigating TM dissolution. As a result, the NCM||Li half-cell with 1.0 vol % HTCN exhibits the best electrochemical performance, delivering a capacity retention of 75.40% after 250 cycles at 1 C and a specific capacity of 207.1 mA h g−1 after 200 cycles at 0.2 C. This work clarifies the role of nitrile additives in interfacial stabilization and provides an effective electrolyte-design strategy for high-voltage Ni-rich cathodes.
AB - Ni-rich layered oxides, such as LiNi0.835Co0.113Mn0.052O2, are promising cathodes for high-energy-density lithium-ion batteries owing to their high theoretical specific capacity, elevated operating voltage, and reduced Co content. However, their practical application is hindered by severe interfacial instability, including continuous electrolyte decomposition, dissolution of transition-metal (TM) ions, and surface structural degradation during cycling. Meanwhile, conventional carbonate electrolytes exhibit limited oxidative stability at high voltages and tend to form an unstable cathode electrolyte interphase (CEI), which aggravates interfacial side reactions and capacity fading. Herein, 1,3,6-hexanetricarbonitrile (HTCN) is introduced as an electrolyte additive to regulate the cathode/electrolyte interphase of NCM cathodes. HTCN modifies the local solvation environment and promotes the formation of a thin, robust, and homogeneous CEI, thereby suppressing electrolyte decomposition and mitigating TM dissolution. As a result, the NCM||Li half-cell with 1.0 vol % HTCN exhibits the best electrochemical performance, delivering a capacity retention of 75.40% after 250 cycles at 1 C and a specific capacity of 207.1 mA h g−1 after 200 cycles at 0.2 C. This work clarifies the role of nitrile additives in interfacial stabilization and provides an effective electrolyte-design strategy for high-voltage Ni-rich cathodes.
KW - Ni-rich cathodes
KW - cathode/electrolyte interface
KW - electrolyte additives
KW - lithium-ion batteries
KW - nitrile compounds
UR - https://www.scopus.com/pages/publications/105045106051
U2 - 10.1021/acsaem.6c01391
DO - 10.1021/acsaem.6c01391
M3 - Article
AN - SCOPUS:105045106051
SN - 2574-0962
VL - 9
SP - 8903
EP - 8913
JO - ACS Applied Energy Materials
JF - ACS Applied Energy Materials
IS - 13
ER -