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Unraveling the Planar-Globular Transition in Gold Nanoclusters through Evolutionary Search. | LitMetric

AI Article Synopsis

  • Au nanoclusters are important for various technologies like catalysis and sensors, and they undergo a unique structural change from planar to globular shapes when containing 12-14 atoms.
  • Researchers conducted extensive studies using high throughput density functional theory (DFT) and a modified genetic algorithm to explore this structural transition, evaluating over 20,000 nanoclusters.
  • The transition occurs gradually at room temperature, influenced by factors like anionicity, s-d band hybridization, and van der Waals interactions, revealing that while s-d hybridization alone doesn't stabilize planar structures, van der Waals interactions help stabilize globular forms.

Article Abstract

Au nanoclusters are of technological relevance for catalysis, photonics, sensors, and of fundamental scientific interest owing to planar to globular structural transformation at an anomalously high number of atoms i.e. in the range 12-14. The nature and causes of this transition remain a mystery. In order to unravel this conundrum, high throughput density functional theory (DFT) calculations, coupled with a global structural optimization scheme based on a modified genetic algorithm (GA) are conducted. More than 20,000 Au, Au, and Au nanoclusters are evaluated. With any DFT functional, globular and planar structures coexist across the size range of interest. The planar-globular transition is gradual at room temperature rather than a sharp transition as previously believed. The effects of anionicity, s-d band hybridization and long range interactions on the dimensional transition are quantified by using the structures adjacent to the minima. Anionicity marginally changes the relative stability of the clusters. The degree of s-d hybridization is varied via changing the Hubbard U value which corroborate that s-d hybridization alone does not stabilize planar structures. van der Waals interactions, on the other hand, stabilize globular structures. These results elucidate the balance between the different reasons of the dimensional transition in gold nanoclusters.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5124999PMC
http://dx.doi.org/10.1038/srep34974DOI Listing

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