TY - JOUR
T1 - Competitive Ni/Mn Reduction and Microstrain-Coupled Negative Thermal Expansion in Delithiated Li-Rich Cathodes
AU - Zhang, Jilu
AU - Wang, Qin
AU - Zhai, Xinyue
AU - Yan, Guanjie
AU - Wang, Bo
AU - Liu, Zhongzhu
AU - Chen, Jiayong
AU - Parreira, Luanna Silveira
AU - Xu, Ruochen
AU - Monteiro, Robson S.
AU - Indris, Sylvio
AU - Ouyang, Xiaoping
AU - Hua, Weibo
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/2/23
Y1 - 2026/2/23
N2 - The demand for high energy density in the field of Li-ion batteries has intensified interest in lithium-rich Mn-based layered oxide cathodes (LRLOs) owing to their high capacity and low cost. Nevertheless, the thermal runaway becomes an urgent concern because of the high-voltage operation (up to 4.8 V), and the structural evolution mechanism of delithiated LRLOs during heating remains unclear. Here, we combine in situ high-temperature X-ray diffraction and absorption spectroscopy to systematically investigate the structural and chemical evolution of Li1.2Ni0.2Mn0.6O2 (LLNMO) across distinct charge–discharge states. Interestingly, Ni is the first element to undergo thermally induced reduction in the charged state of LLNMO. With further increasing the temperature, Mn reduction sets in, coinciding with extensive lattice oxygen loss, and a phase transition from layered to disordered layered or Li-containing rock-salt-type phase occurs. More intriguingly, after the initial electrochemical cycle, LLNMO exhibits negative thermal expansion at low temperatures below 200 °C, which are attributed to the cycling-induced microstrain accumulation and long-range structural ordering. These findings provide a mechanistic insight into the state-of-charge-dependent thermal behavior of Li-rich layered materials and offer guidelines for designing safer, high-capacity battery materials.
AB - The demand for high energy density in the field of Li-ion batteries has intensified interest in lithium-rich Mn-based layered oxide cathodes (LRLOs) owing to their high capacity and low cost. Nevertheless, the thermal runaway becomes an urgent concern because of the high-voltage operation (up to 4.8 V), and the structural evolution mechanism of delithiated LRLOs during heating remains unclear. Here, we combine in situ high-temperature X-ray diffraction and absorption spectroscopy to systematically investigate the structural and chemical evolution of Li1.2Ni0.2Mn0.6O2 (LLNMO) across distinct charge–discharge states. Interestingly, Ni is the first element to undergo thermally induced reduction in the charged state of LLNMO. With further increasing the temperature, Mn reduction sets in, coinciding with extensive lattice oxygen loss, and a phase transition from layered to disordered layered or Li-containing rock-salt-type phase occurs. More intriguingly, after the initial electrochemical cycle, LLNMO exhibits negative thermal expansion at low temperatures below 200 °C, which are attributed to the cycling-induced microstrain accumulation and long-range structural ordering. These findings provide a mechanistic insight into the state-of-charge-dependent thermal behavior of Li-rich layered materials and offer guidelines for designing safer, high-capacity battery materials.
KW - Li-rich cathodes
KW - Microstrain
KW - Negative thermal expansion
KW - Thermal stability
KW - Transition metal reduction
UR - https://www.scopus.com/pages/publications/105027900264
U2 - 10.1002/anie.202525724
DO - 10.1002/anie.202525724
M3 - 文章
C2 - 41555684
AN - SCOPUS:105027900264
SN - 1433-7851
VL - 65
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 9
M1 - e25724
ER -