Graphitic carbon nitride supported Ni-Co dual-atom catalysts beyond Ni 1 (Co 1 ) single-atom catalysts for hydrogen production: a density functional theory study

Using density functional theory calculations we investigate the formation, structure and electronic properties of gh-C N -supported Ni-Co (Ni-Co/gh-C N ) dual-atom catalysts and Ni (Co ) single-metal catalysts, as a paradigmatic example of single-atom few-atom catalysts. An inverted mold assumption...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2024-05, Vol.26 (19), p.14364-14373
Hauptverfasser: He, Yue, Chen, Furui, Zhou, Gang
Format: Artikel
Sprache:eng
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Zusammenfassung:Using density functional theory calculations we investigate the formation, structure and electronic properties of gh-C N -supported Ni-Co (Ni-Co/gh-C N ) dual-atom catalysts and Ni (Co ) single-metal catalysts, as a paradigmatic example of single-atom few-atom catalysts. An inverted mold assumption is proposed to identify the factors determining the number, shape and packing manner of metal atoms inside the pores of gh-C N . The area matching between virtual fragments and metal fillers and lattice inheritance from N coordination and metal aggregates allow for a stable Ni-Co/gh-C N , which would possess more active sites and a more complex structure-activity relation than single-atom doping. The hydrogen production behavior and catalytic activity of this catalyst are comprehensively discussed. Ni-Co/gh-C N exhibits higher hydrogen evolution activity than Ni (Co )/gh-C N at an appropriate H coverage, which is comparable to Pt under analogous conditions. This strategy, derived from the inverted mold assumption, is deemed to be a simple and easy-to-operate method for designing and building metal aggregates confined inside the pores of two-dimensional materials and in the cavities of nanoparticles for few-atom catalysts.
ISSN:1463-9076
1463-9084
DOI:10.1039/d4cp00616j