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Updated: May 16, 2025

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Interlayer Expanded MXene Film Cathodes with Rich Defects for Flexible 2-Electron Oxalate-Based Li-CO2 Batteries: A
Xuelian Li1,2,3, Xuan Wang1,2,3, Mengmeng Yang4,5
1College of Environmental and Ecology, Taiyuan University of Technology, Taiyuan, Shanxi, 030024, China.
Abstract:
Aprotic Li-CO2 batteries have garnered significant attention owing to their high theoretical energy density and potential in zero-carbon technology. However, their practical application remains hindered by sluggish CO2 reduction/evolution reaction (CRR/CER) kinetics and limited flexibility. While 2D graphene-like materials are commonly employed to settle these issues, their four-electron pathway limits efficiency and reversibility. Herein, a defect-rich, interlayer-expanded Ti3C2Tx (Ex-Ti3C2Tx) film cathode is presented for flexible Li-CO2 batteries. The extended interlayer space, reduced ─OH groups, and additional uncoordinated titanium atoms of Ex-Ti3C2Tx enable abundant catalytic active sites, enhance ion and CO2 transport, and these surface functionalizations suppress interfacial oxidation. Notably, Ex-Ti3C2Tx stabilizes the bi-electron product Li2C2O4 via Ti3+/Ti2+ coupling bridges, effectively preventing disproportionation into Li2CO3, thereby significantly improving CRR/CER reversibility and lowering overpotential. Benefiting from these properties, Li-CO2 batteries with Ex-Ti3C2Tx deliver a remarkable discharge capacity of 3452.33 µAh cm-2, a low polarization potential of 0.39 V, an energy efficiency exceeding 88.9%, and an ultra-long cycling life (>1600 h). Furthermore, the belt-shaped flexible battery exhibits excellent flexibility and stable electrochemical performance under deformation highlighting its potential in wearable electronics. This work underscores the critical role of MXene-based materials in bi-electron electrocatalytic mechanisms, providing insights for advancing reversible Li-CO2 batteries and flexible energy storage technologies.

