Intercalating Bulk Gold Crystal Into Ordered Single Atoms.
basic_science · Level V
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- Record sourced from PubMed, PMID 41723707.
- Also identified by DOI 10.1002/adma.72587.
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Abstract
Gold single atoms (GSAs) have attracted considerable attentions due to their potential in electrocatalytic and photocatalytic reactions. However, achieving high gold density in conventional wet-solution or mechanical approaches remains currently challenging, apart from uncontrolled spatial on-support distributions, undesired bi-products and wastes. Here we show that single gold atoms can be synthesized and patterned via a top-down intercalation method, in which the topmost layer of gold (100) crystal evolves into isolated single atoms (conversion rate up to 25%) chiseled by a phosphorus monolayer. Scanning tunneling microscopy, X-ray photoemission spectroscopy, and density functional theory calculations reveal that GSAs assemble into well-ordered (2 × 2) arrays without thermodynamic tendency for coalescence and weakly couple with the underlying non-planar phosphorus layer toward efficient hydrogen evolution reaction and oxygen evolution reaction catalysis. The on-surface formation of GSAs can be readily tailored by varying the post-annealing temperature and durations. This protocol is defect-free, solvent-free, eco-friendly, scalable, and could regenerate a batch-to-batch of fresh GSAs arrays via a simple sputtering and intercalation process in case of catalyst deactivation. This work opens a green and sustainable way for the facile preparation of high-density GSAs for efficient on-surface electro-/photo-catalytic applications.