Search NASA⌕ Search

DOE OSTI · 1786597

Understanding Superatomic Ag Nanohydrides

Abstract

Abstract Bulk Ag hydrides are extremely challenging to make even at very high pressures, but they may become stable as the particle size shrinks to the nanometer regime. Here, the formation and electronic structure of Ag nanohydrides are investigated from a superatomic perspective by density functional theory. It is found that as the coverage increases, adsorption energy of hydrogen atoms on Ag 38 cluster to form Ag 38 H 2 n nanohydride ( n is from 1 to 15) can be energetically favorable with respect to bare Ag 38 and H 2 . Furthermore, the adsorbed hydrogen atoms contribute their 1s electrons to the superatom electron count and behave as a metal instead of a ligand. The electronic structure of the silver nanohydrides follows the superatomic complex model, leading to magic or relatively more stable compositions such as Ag 38 H 2 , Ag 38 H 20 , and Ag 38 H 30 , which correspond to 40‐electron, 58‐electron, and 68‐electron shell closings, respectively. Angular momentum analyses of the superatomic orbitals suggest a convoluted interaction of geometry, symmetry, and orbital splitting.

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

He, Xiang, Walter, Michael, Jiang, De‐en. 2021-01-15. Understanding Superatomic Ag Nanohydrides. https://doi.org/10.1002/smll.202004808

Cite the original work for its findings. Save a collection to share your selection of sources.