TY - JOUR
T1 - Origin of elastic anisotropy in O3-type layered sodium cathode
AU - He, Xiaomei
AU - Jin, Guoxu
AU - He, Qinsheng
AU - Liang, Chenyu
AU - Xu, Rong
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/10
Y1 - 2026/10
N2 - O3-type Ni/Fe/Mn-based layered oxides are promising cathode materials for sodium-ion batteries (SIBs) owing to their high reversible capacity and cost-effectiveness. However, their practical application is severely hindered by chemomechanical degradation induced by complex phase transitions and large volume changes during electrochemical cycling. A fundamental understanding of the mechanical behavior of O3-type cathodes is therefore critical for improving their mechanical robustness. Here, we investigate the complete evolution of anisotropic mechanical properties in O3-type NaxNi0.4Fe0.2Mn0.4O2 (NFM) during desodiation (x = 1.0 → 0.1) using first-principles calculations. We reveal that NFM undergoes a sequential of phase transitions (O3→O’3→P3→O3’), accompanied by transition-metal layer gliding and significant volume changes, which collectively induce pronounced anisotropic softening of elastic moduli. Elastic anisotropy exhibits an approximately exponential increase with Na extraction, driven by more rapidly softening of c-axis elastic moduli than those within the ab-plane. Chemical bonding analysis reveal that contrasting bonding interactions of intralayer (TM-O) and interlayer (Na-O) is the fundamental origin of this anisotropic mechanical response. Furthermore, elastic moduli degrade more rapidly in the O3 and O’3 phases than in the P3 and O3’ phases, a behavior predominantly attributed to the significantly increase in the population of Jahn-Teller active ions (e.g., Ni3 +), which accelerates lattice distortion and structural instability. This work establishes a clear structure-mechanics relationship in layered sodium cathodes and provides mechanistic guidance for the rational design of mechanically robust cathode materials for SIBs.
AB - O3-type Ni/Fe/Mn-based layered oxides are promising cathode materials for sodium-ion batteries (SIBs) owing to their high reversible capacity and cost-effectiveness. However, their practical application is severely hindered by chemomechanical degradation induced by complex phase transitions and large volume changes during electrochemical cycling. A fundamental understanding of the mechanical behavior of O3-type cathodes is therefore critical for improving their mechanical robustness. Here, we investigate the complete evolution of anisotropic mechanical properties in O3-type NaxNi0.4Fe0.2Mn0.4O2 (NFM) during desodiation (x = 1.0 → 0.1) using first-principles calculations. We reveal that NFM undergoes a sequential of phase transitions (O3→O’3→P3→O3’), accompanied by transition-metal layer gliding and significant volume changes, which collectively induce pronounced anisotropic softening of elastic moduli. Elastic anisotropy exhibits an approximately exponential increase with Na extraction, driven by more rapidly softening of c-axis elastic moduli than those within the ab-plane. Chemical bonding analysis reveal that contrasting bonding interactions of intralayer (TM-O) and interlayer (Na-O) is the fundamental origin of this anisotropic mechanical response. Furthermore, elastic moduli degrade more rapidly in the O3 and O’3 phases than in the P3 and O3’ phases, a behavior predominantly attributed to the significantly increase in the population of Jahn-Teller active ions (e.g., Ni3 +), which accelerates lattice distortion and structural instability. This work establishes a clear structure-mechanics relationship in layered sodium cathodes and provides mechanistic guidance for the rational design of mechanically robust cathode materials for SIBs.
KW - Elastic anisotropy
KW - First-principles calculations
KW - Mechanical properties
KW - O3-type cathodes
KW - Sodium-ion batteries
UR - https://www.scopus.com/pages/publications/105046713315
U2 - 10.1016/j.nanoen.2026.112270
DO - 10.1016/j.nanoen.2026.112270
M3 - 文章
AN - SCOPUS:105046713315
SN - 2211-2855
VL - 157
JO - Nano Energy
JF - Nano Energy
M1 - 112270
ER -