4.6 Article

Reasonable Design of MXene-Supported Dual-Atom Catalysts with High Catalytic Activity for Hydrogen Evolution and Oxygen Evolution Reaction: A First-Principles Investigation

Journal

MATERIALS
Volume 16, Issue 4, Pages -

Publisher

MDPI
DOI: 10.3390/ma16041457

Keywords

first-principles calculation; dual-atom catalysts (DACs); hydrogen evolution reaction; oxygen evolution reaction; electrocatalyist

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MXene-supported single-atom catalysts (SACs) for water splitting have limitations due to the low loading of metal atoms and easy aggregation. This study demonstrates that Pt/Cu@Mo2TiC2O2 heterogeneous dual-atom catalyst (h-DAC) exhibits superior HER activity compared to SACs, and Pt/Ni@Mo2TiC2O2 shows excellent OER activity. These findings provide guidance for the rational design of h-DACs for efficient water splitting.
MXene-supported single-atom catalysts (SACs) for water splitting has attracted extensive attention. However, the easy aggregation of individual metal atoms used as catalytic active centers usually leads to the relatively low loading of synthetic SACs, which limits the development and application of SACs. Herein, by performing first-principles calculations for Pt and 3d transition metal single atoms immobilized on a two-dimensional (2D) Mo2TiC2O2 MXene surface, we systematically studied the performance of heterogeneous dual-atom catalysts (h-DACs) in hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). Significantly, h-DACs exhibit higher metal atom loading and more flexible active sites compared to SACs. Benefiting from these features, we found that Pt/Cu@Mo2TiC2O2 heterogeneous DACs exhibits excellent HER activity with ultra-low overpotential |Delta G(H)*| (0.04 eV), lower than the corresponding Pt@Mo2TiC2O2 (0.14 eV) and Cu@Mo2TiC2O2 (0.33 eV) SACs, and even lower than that of Pt (0.09 eV). Meanwhile, Pt/Ni@Mo2TiC2O2 exhibits superior OER activity with ultra-low overpotential eta(OER) (0.38 V), lower than that of Pt@Mo2TiC2O2 (1.11 V) and Ni@Mo2TiC2O2 (0.57 V) SACs, and even lower than that of RuO2 (0.42 V) and IrO2 (0.56 V). Our finding paves the way for the rational design of h-DACs for HER and OER with excellent activity, which provides guidance for other catalytic reactions.

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