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Research Article | Open Access | Just Accepted

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( )

1 Wuhu R&D Center for Energy Conversion and Storage Materials, Wuhu Vocational Technical University, Wuhu 241002, China

2 Key Laboratory of Functional Molecular Solids, Ministry of Education, Anhui Normal University, Wuhu 241002, China

3 Faculty of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki, 3058577, Japan

4 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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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, 2026, https://doi.org/10.26599/NRE.2026.9120264

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Received: 02 July 2026
Revised: 04 August 2026
Accepted: 11 August 2026
Available online: 14 August 2026

© The Author(s) 2026. 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.