First-Principles Evaluation of the Potential of Borophene as a Monolayer Transparent Conductor

27 September 2017, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

Two-dimensional boron is promising as a tunable monolayer metal for nano-optoelectronics. We study the optoelectronic properties of two likely allotropes of two-dimensional boron using first-principles density functional theory and many-body perturbation theory. We find that both systems are anisotropic metals, with strong energy- and thickness-dependent optical transparency and a weak (<1%) absorbance in the visible range. Additionally, using state-of-the-art methods for the description of the electron-phonon and electron-electron interactions, we show that the electrical conductivity is limited by electron-phonon interactions. Our results indicate that both structures are suitable as a transparent electrode.

Keywords

borophene
two-dimensional materials
density functional theory
GW approximation
electron-phonon interactions
Chemistry
Physics

Supplementary materials

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