Vacancy-Anchored Single-Atom Nb 2 CO 2 MXene: Electronic Origins of Multi-Site Cooperative Trifunctional Electrocatalysis
Junmei Du, Yifan Yan, Yi Jiang, Xin Wang, Chunsheng Guo, Y L Chen, Hongyan Wang
Southwest Jiaotong University
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摘要与影响
The rational design of trifunctional electrocatalysts capable of driving the oxygen evolution reaction (OER), oxygen reduction reaction (ORR), and hydrogen evolution reaction (HER) remains a central challenge in renewable energy conversion. In particular, it remains insufficiently understood whether these reactions proceed on a universal active site or arise from reaction-dependent site specialization and multisite cooperation in single-atom catalysts. Herein, we perform a systematic density functional theory (DFT) screening of transition-metal (TM) single atoms anchored at oxygen vacancy sites of Nb 2 CO 2 MXenes to identify stable and experimentally viable trifunctional SACs. Among the candidates, Pt–Nb 2 CO 2 exhibits favorable conductivity, thermodynamic stability, and competitive trifunctional electrocatalytic activity, with overpotentials of 0.42 V for OER, 0.60 V for ORR, and −0.07 V for HER, comparable to benchmark catalysts such as Pt(111) and IrO 2 (110). Detailed electronic structure analyses reveal that the trifunctional activity originates from multisite cooperative catalysis. The d orbitals of the TM atoms dominate the activity of oxygen-related reactions (OER/ORR), where the d-band center, modulated by bandwidth effects, correlates well with the activity trends. In contrast, the HER activity is governed by TM-induced charge transfer and site-specific hydrogen binding characteristics. This work clarifies the electronic origin of multisite cooperative trifunctional electrocatalysis in TM–MXene SACs and provides a rational theoretical framework for the design of experimentally accessible multifunctional electrocatalysts.
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工程Electrocatalysts for Energy Conversion
MXene and MAX Phase Materials · CO2 Reduction Techniques and Catalysts
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