TY - JOUR
T1 - Periodic Current Relaxation Mitigates Stress and Phase Instability in Single-Crystal Ni-Rich Cathodes
AU - Liu, Bingran
AU - Luo, Chong
AU - Lv, Ruixin
AU - Yang, Mingfang
AU - Zhang, Xiaodong
AU - Zhang, Yuhang
AU - Sun, Wenhao
AU - Zhang, Lihan
AU - Li, Li
AU - Wu, Feng
AU - Chen, Renjie
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/6/30
Y1 - 2026/6/30
N2 - Single-crystal nickel-rich cathodes (SC-NCM) are leading candidates for next-generation high-energy-density lithium-ion batteries (LIBs) due to their structural integrity and thermal stability. However, their practical performance remains constrained by sluggish lithium-ion diffusion, internal stress accumulation, and phase instability under conventional constant-current cycling. Existing bulk or interfacial modification strategies often increase synthesis complexity and limit scalability. Here, we demonstrate that introducing periodic relaxation intervals into constant current, forming a pulse-current (PC) protocol, provides a simple and materials-independent approach to dynamically regulate Li+ transport and structural evolution. Pulsed cycling homogenizes ion distribution, enhances insertion/extraction kinetics, and stabilizes critical phase transitions, resulting in a 10.6% increase in initial discharge capacity and improved capacity retention over 300 cycles. Structural characterizations reveal deeper and more reversible H1–M and H2–H3 phase transitions, suppress the formation of rock-salt phases, and reduce localized stress accumulation. Furthermore, this strategy proves robust across practical operating conditions, including low temperature (−20 °C), high voltage (4.6 V), and Ah-level pouch cells. This work uncovers the mechanistic coupling between electrochemical relaxation and structural stability, offering dynamic current modulation as a broadly applicable strategy for unlocking the intrinsic performance of nickel-rich cathodes without chemical modification.
AB - Single-crystal nickel-rich cathodes (SC-NCM) are leading candidates for next-generation high-energy-density lithium-ion batteries (LIBs) due to their structural integrity and thermal stability. However, their practical performance remains constrained by sluggish lithium-ion diffusion, internal stress accumulation, and phase instability under conventional constant-current cycling. Existing bulk or interfacial modification strategies often increase synthesis complexity and limit scalability. Here, we demonstrate that introducing periodic relaxation intervals into constant current, forming a pulse-current (PC) protocol, provides a simple and materials-independent approach to dynamically regulate Li+ transport and structural evolution. Pulsed cycling homogenizes ion distribution, enhances insertion/extraction kinetics, and stabilizes critical phase transitions, resulting in a 10.6% increase in initial discharge capacity and improved capacity retention over 300 cycles. Structural characterizations reveal deeper and more reversible H1–M and H2–H3 phase transitions, suppress the formation of rock-salt phases, and reduce localized stress accumulation. Furthermore, this strategy proves robust across practical operating conditions, including low temperature (−20 °C), high voltage (4.6 V), and Ah-level pouch cells. This work uncovers the mechanistic coupling between electrochemical relaxation and structural stability, offering dynamic current modulation as a broadly applicable strategy for unlocking the intrinsic performance of nickel-rich cathodes without chemical modification.
KW - nickel-rich cathodes
KW - periodic relaxation
KW - phase transitions
KW - pulse-current protocol
KW - single crystal
UR - https://www.scopus.com/pages/publications/105043448562
U2 - 10.1021/acsnano.6c03375
DO - 10.1021/acsnano.6c03375
M3 - Article
AN - SCOPUS:105043448562
SN - 1936-0851
VL - 20
SP - 18263
EP - 18273
JO - ACS Nano
JF - ACS Nano
IS - 25
ER -