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Adsorption and dehydrogenation of ammonia on Ru55, Cu55 and Ru@Cu54 nanoclusters: role of single atom alloy catalyst.

Authors :
Chattaraj, D.
Majumder, C.
Source :
Physical Chemistry Chemical Physics (PCCP); 1/7/2024, Vol. 26 Issue 1, p524-532, 9p
Publication Year :
2024

Abstract

Hydrogen production by the catalytic decomposition of ammonia (NH<subscript>3</subscript>) is an important process for several important applications, which include energy production and environment-related issues. The role of single Ru-atom substitution in a Cu<subscript>55</subscript> nanocluster (NC) has been illustrated using the NH<subscript>3</subscript> decomposition reaction as a model system. The structural stability of Ru@Cu<subscript>54</subscript> NC has been evaluated using Ru<subscript>55</subscript> and Cu<subscript>55</subscript> NCs for comparison. Ru@Cu<subscript>54</subscript> prefers an icosahedron structure (I<subscript>h</subscript>), like Ru<subscript>55</subscript> and Cu<subscript>55</subscript> NCs, with almost comparable average binding energies of −5.55 eV per atom. The adsorption of NH<subscript>x</subscript> (x = 0–3) on different adsorption sites of the icosahedron Ru@Cu<subscript>54</subscript> NC has also been studied and the corresponding adsorption energies have been estimated. The site-preference investigation suggested that NH<subscript>3</subscript> prefers to adsorb vertically to the Ru@Cu<subscript>54</subscript>. The stable geometries of the N and H atoms on the high symmetry adsorption sites of Ru@Cu<subscript>54</subscript> NC have been studied. Although the N atom favours top and hollow sites, the H atom prefers to stay in the Ru–Cu bridge site along with the hollow sites. The adsorption energy of N on the Ru@Cu<subscript>54</subscript> NC fcc site is found to be −5.42 eV, which is very close to the optimal value (−5.81 eV) of the ammonia decomposition volcano curve. The reaction energies for stepwise H atom elimination from an adsorbed NH<subscript>3</subscript> molecule have been estimated. Finally, NH<subscript>3</subscript> adsorption and decomposition on Ru@Cu<subscript>54</subscript> have been illustrated in terms of electronic structure analysis. The energetics calculations for the dehydrogenation of NH<subscript>3</subscript> suggest that Ru@Cu<subscript>54</subscript> NC can be a suitable catalyst. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
26
Issue :
1
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
174373024
Full Text :
https://doi.org/10.1039/d3cp04830f