Single-Crystalline Metallic Films Induced by van der Waals Epitaxy on Black Phosphorus
Abstract
The properties of metal-semiconductor junctions are often unpredictable because of non-ideal interfacial structures, such as interfacial defects or chemical reactions introduced at junctions. Black phosphorus (BP), an elemental two-dimensional (2D) semiconducting crystal, possesses the puckered atomic structure with high chemical reactivity, and the establishment of a realistic atomic-scale picture of BP's interface toward metallic contact has remained elusive. Here we examine the interfacial structures and properties of physically-deposited metals of various kinds on BP. We find that Au, Ag, and Bi form single-crystalline films with (110) orientation through guided van der Waals epitaxy. Transmission electron microscopy and X-ray photoelectron spectroscopy confirm that atomically sharp van der Waals metal-BP interfaces forms with exceptional rotational alignment. Under a weak metal-BP interaction regime, the BP's puckered structure play an essential role in the adatom assembly process and can lead to the formation of a single crystal, which is supported by our theoretical analysis and calculations. The experimental survey also demonstrates that the BP-metal junctions can exhibit various types of interfacial structures depending on metals, such as the formation of polycrystalline microstructure or metal phosphides. This study provides a guideline for obtaining a realistic view on metal-2D semiconductor interfacial structures, especially for atomically puckered 2D crystals.
Keywords
Cite
@article{arxiv.2105.01210,
title = {Single-Crystalline Metallic Films Induced by van der Waals Epitaxy on Black Phosphorus},
author = {Yangjin Lee and Han-gyu Kim and Tae Keun Yun and Jong Chan Kim and Sol Lee and Sung Jin Yang and Myeongjin Jang and Donggyu Kim and Huije Ryu and Gwan-Hyoung Lee and Seongil Im and Hu Young Jeong and Hyoung Joon Choi and Kwanpyo Kim},
journal= {arXiv preprint arXiv:2105.01210},
year = {2021}
}
Comments
27 pages, 5 figures