TY - JOUR
T1 - Local strain switches CO₂ reduction to a 3.13 V Li₂C₂O₄ pathway for Li-CO2 batteries
AU - Wang, Yang
AU - Wang, Yuanjia
AU - Zhang, Ting
AU - Feng, Guang
AU - Liu, Kaiyu
AU - Zhang, Yan
AU - Chen, Tao
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/8
Y1 - 2026/8
N2 - The practical application of Li–CO₂ batteries is hindered by sluggish reaction kinetics and the formation of insulating Li₂CO₃, which severely compromise their energy efficiency and cycling stability. This work transcends conventional catalytic paradigms by harnessing synergistic lattice-mediated electronic perturbations—specifically, a periodic surface superlattice that engenders localized compressive strain—to reconFig. the near-Fermi-level d-band electronic landscape of catalytically active transition metal sites. This strain-induced d-band reconstruction, characterized by a downward Fermi level shift concomitant with an upward d-band center migration, fundamentally amplifies Cu–O orbital hybridization and thermodynamically stabilizes a low-bandgap Li₂C₂O4 metastable discharge manifold. Consequently, the resulting Li–CO₂ cell achieves an exceptional discharge voltage plateau of 3.13 V (overpotential of merely 0.42 V), uninterrupted operation exceeding 1300 hours at 20 μA cm⁻², and an energy retention ratio of 88%. Comprehensive in situ spectro-electrochemical and ab initio theoretical validations unequivocally ascribe this performance enhancement to the strain-modulated d-band control and the resultant non-conventional Li₂C₂O4 reaction pathway, thereby establishing a previously unexplored catalyst design logic for advanced metal–gas battery systems.
AB - The practical application of Li–CO₂ batteries is hindered by sluggish reaction kinetics and the formation of insulating Li₂CO₃, which severely compromise their energy efficiency and cycling stability. This work transcends conventional catalytic paradigms by harnessing synergistic lattice-mediated electronic perturbations—specifically, a periodic surface superlattice that engenders localized compressive strain—to reconFig. the near-Fermi-level d-band electronic landscape of catalytically active transition metal sites. This strain-induced d-band reconstruction, characterized by a downward Fermi level shift concomitant with an upward d-band center migration, fundamentally amplifies Cu–O orbital hybridization and thermodynamically stabilizes a low-bandgap Li₂C₂O4 metastable discharge manifold. Consequently, the resulting Li–CO₂ cell achieves an exceptional discharge voltage plateau of 3.13 V (overpotential of merely 0.42 V), uninterrupted operation exceeding 1300 hours at 20 μA cm⁻², and an energy retention ratio of 88%. Comprehensive in situ spectro-electrochemical and ab initio theoretical validations unequivocally ascribe this performance enhancement to the strain-modulated d-band control and the resultant non-conventional Li₂C₂O4 reaction pathway, thereby establishing a previously unexplored catalyst design logic for advanced metal–gas battery systems.
KW - Cathode catalyst
KW - d-bond electronic structure
KW - High entropy intermetallic
KW - Li-CO batteries
KW - Local compressive stress
UR - https://www.scopus.com/pages/publications/105047277951
U2 - 10.1016/j.ensm.2026.105463
DO - 10.1016/j.ensm.2026.105463
M3 - Article
AN - SCOPUS:105047277951
SN - 2405-8297
VL - 90
JO - Energy Storage Materials
JF - Energy Storage Materials
M1 - 105463
ER -