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Geometric and electronic properties of AulPtm (l + m ≤ 10) clusters: a first-principles study.

Authors :
Xie, Wei-Feng
Zhu, Hao-Ran
Wei, Shi-Hao
Source :
Physical Chemistry Chemical Physics (PCCP); 1/28/2021, Vol. 23 Issue 4, p3050-3062, 13p
Publication Year :
2021

Abstract

The structural evolutions and electronic properties of Au<subscript>l</subscript>Pt<subscript>m</subscript> (l + m ≤ 10) clusters are investigated by using the first-principles methods. We use the inverse design of materials using the multi-objective differential evolution (IM<superscript>2</superscript>ODE) package to globally search the equilibrium structures and investigate the evolving trend from a two-dimensional structure to a three-dimensional structure on horizontal extension and vertical extension for Au<subscript>l</subscript>Pt<subscript>m</subscript> (l + m ≤ 10) clusters. The three-dimensional stable geometry of Au<subscript>8</subscript>Pt and Au<subscript>8</subscript>Pt<subscript>2</subscript> is discovered for the first time in our work. We also notice that the equilibrium structures of Au<subscript>l</subscript>Pt<subscript>m</subscript> (l + m = 10 and l ≤ 8) tend to form a tetrahedral geometry and can be obtained by replacing the Au atom in the most stable structure of Au<subscript>l+1</subscript>Pt<subscript>m−1</subscript> with the Pt atom, where Pt atoms assemble together and occupy the center of clusters and Au atoms prefer to lie on the vertex or edge position. The average binding energy (E<subscript>b</subscript>) is mostly decided by Pt–Pt bond numbers, namely the numbers of Pt atoms, followed by Au–Pt bond numbers. The second-order energy difference (Δ<subscript>2</subscript>E<subscript>v</subscript> and Δ<subscript>2</subscript>E<subscript>h</subscript>) and the nearest-neighbor energy difference (Δ<subscript>4</subscript>E<subscript>nn</subscript>) show that Au<subscript>6</subscript>Pt, Au<subscript>4</subscript>Pt<subscript>2</subscript>, Au<subscript>3</subscript>Pt<subscript>3</subscript>, Au<subscript>2</subscript>Pt<subscript>4</subscript> and AuPt<subscript>7</subscript> clusters exhibit high relative physical stability, so we suggest that these clusters could be defined as the magic number clusters for Au<subscript>l</subscript>Pt<subscript>m</subscript> (l + m ≤ 10) clusters. The HOMO–LUMO energy gap (E<subscript>g</subscript>), adiabatic ionization potential (AIP) and the adiabatic electron affinity (AEA) are also investigated to elaborate the relative electronic stability of all the clusters. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
14639076
Volume :
23
Issue :
4
Database :
Complementary Index
Journal :
Physical Chemistry Chemical Physics (PCCP)
Publication Type :
Academic Journal
Accession number :
148546903
Full Text :
https://doi.org/10.1039/d0cp05642a