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Research Article | Open Access

Gradient delocalized 4f-2p-3d orbital cascade of Gd-O-Mn sites remolding interfacial electronic landscape for accelerated Li-CO2 batteries redox kinetics

Qinghua Deng1 ( )Husheng Tang1Yujie Qiang2Huaqing Liu3Yahui Wu4( )
Wuhu R & D Center for Energy Conversion and Storage Materials, Wuhu Vocational Technical University, Wuhu 241002, China
Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Normal University, Wuhu 241002, China
Faculty of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki, 3058577, Japan
School of Pharmacy, Bengbu Medical University, Bengbu 233030, China
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Abstract

Conventional transition-metal cathodes constrained by a limited 3d-2p orbital manifold suffer from an unfavorable electronic structure that impedes the electrochemical kinetics of Li-CO2 batteries. Incorporating rare-earth 4f orbitals introduces strong spin-orbit coupling and a delocalized f-p-d cascade, fundamentally remolding interfacial electronic landscape. Herein, asymmetric Gd-O-Mn active sites are constructed via a 4f-2p-3d gradient orbital coupling strategy by doping gadolinium into Mn3O4 nanorods. This establishes a cascaded Gd 4f-O 2p-Mn 3d electronic conduit inducing directional charge redistribution and augmented electron density. The electropositive Gd dopant simultaneously elevates the O 2p band center and activates lattice oxygen redox chemistry, facilitating both the nucleophilic attack on CO2 and the subsequent cleavage of carbonate bonds. Consequently, the Gd-Mn3O4 cathode delivers an exceptional full discharge capacity of 14,640 mAh·g–1, a remarkably low overpotential of 1.23 V, and extended cycling stability over 230 cycles. Comprehensive experimental and theoretical analyses reveal the f-p-d cascade coupling not only preserves the structural integrity of the MnO6 framework but also optimizes the adsorption energetics of key intermediates *C2O4. This work elucidates the mechanistic role of gradient orbital hybridization in stabilizing manganese-based cathodes and offers a new paradigm for the rational design of advanced catalytic sites in Li-CO2 batteries cathodes.

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Nano Research Energy
Article number: e9120264

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Cite this article:
Deng Q, Tang H, Qiang Y, et al. Gradient delocalized 4f-2p-3d orbital cascade of Gd-O-Mn sites remolding interfacial electronic landscape for accelerated Li-CO2 batteries redox kinetics. Nano Research Energy, 2027, 6: e9120264. https://doi.org/10.26599/NRE.2026.9120264

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Received: 02 July 2026
Revised: 04 August 2026
Accepted: 11 August 2026
Published: 07 September 2026
© The Author(s) 2027. Published by Tsinghua University Press.

The articles published in this open access journal are distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits use, distribution and reproduction in any medium, provided the original work is properly cited.