Electronic structure of Au-Sn compounds grown on Au(111)
Abstract
The electronic structure of Au-Sn intermetallic layers of different compositions grown on Au(111) to the thickness of several nanometers has been studied in this work. The layer, interface and the substrate related components in the Au 4 and Sn 4 core-level spectra obtained using x-ray photoelectron spectroscopy (XPS) vary with deposition parameters to reveal the details of the Au-Sn formation. While AuSn is grown by deposition at room temperature, Au rich compounds form as a result of heat treatment through inter diffusion of Au and Sn. Deposition at high temperature forms more Au rich compositions compared to post annealing at the same temperature due to the kinetic energy of the impinging Sn atoms in the former case. Post annealing, on the other hand, stabilizes the bulk phases such as AuSn and AuSn and exhibits an activated behavior for transition from the former to the latter with increasing temperature. The XPS valence band spectra of AuSn and AuSn layers show good agreement with the density functional theory calculation, indicating that these have the bulk structure reported in literature. However, the influence of anti-site defects is observed in AuSn. Low energy electron diffraction study reveals that although the AuSn layer is ordered, its top surface is disordered at room temperature. Surface order is obtained by annealing or deposition at elevated temperatures and dispersing bands are observed by angle resolved photoemission spectroscopy. Both electron-like and hole-like bands are evident for the ()R30 phase, while a nearly free electron-like parabolic surface state is observed for the p(33)R15 phase.
Keywords
Cite
@article{arxiv.1911.10002,
title = {Electronic structure of Au-Sn compounds grown on Au(111)},
author = {Pampa Sadhukhan and Sajal Barman and Tufan Roy and Vipin Kumar Singh and Shuvam Sarkar and Aparna Chakrabarti and Sudipta Roy Barman},
journal= {arXiv preprint arXiv:1911.10002},
year = {2020}
}
Comments
Phys. Rev. B (in press); 38 pages, 14 figures and 1 table in main text and 3 figures and 5 tables in supplementary material