Carbon phosphide monolayers with superior carrier mobility
Document Type
Article
Publication Date
4-28-2016
Abstract
© The Royal Society of Chemistry 2016. Two dimensional (2D) materials with a finite band gap and high carrier mobility are sought after materials from both fundamental and technological perspectives. In this paper, we present the results based on the particle swarm optimization method and density functional theory which predict three geometrically different phases of the carbon phosphide (CP) monolayer consisting of sp2 hybridized C atoms and sp3 hybridized P atoms in hexagonal networks. Two of the phases, referred to as α-CP and β-CP with puckered or buckled surfaces are semiconducting with highly anisotropic electronic and mechanical properties. More remarkably, they have the lightest electrons and holes among the known 2D semiconductors, yielding superior carrier mobility. The γ-CP has a distorted hexagonal network and exhibits a semi-metallic behavior with Dirac cones. These theoretical findings suggest that the binary CP monolayer is a yet unexplored 2D material holding great promise for applications in high-performance electronics and optoelectronics.
Publication Title
Nanoscale
Recommended Citation
Wang, G.,
Pandey, R.,
&
Karna, S.
(2016).
Carbon phosphide monolayers with superior carrier mobility.
Nanoscale,
8(16), 8819-8825.
http://doi.org/10.1039/c6nr00498a
Retrieved from: https://digitalcommons.mtu.edu/michigantech-p/8540