Many-body quantum Monte Carlo study of 2D materials: cohesion and band gap in single-layer phosphorene

ORAL

Abstract

Quantum Monte Carlo (QMC) is applied to obtain the fundamental (quasiparticle) electronic band gap, Δf, of a semiconducting 2D phosphorene. Similarly to other 2D materials, the electronic structure of phosphorene is strongly influenced by reduced screening, making it challenging to obtain reliable predictions by single-particle density functional or many-body GW methods. Using the recently uncovered universal scaling between the exciton binding energy and Δf, we predict the optical gap of about 1.7 eV that can be directly related to experiments. The QMC gaps agree with recent optical absorption and photoluminescence measurements. We also predict the cohesion of phosphorene to be only slightly smaller than that of the bulk crystal. Our investigations not only benchmark GW methods and experiments, but also open the field of 2D electronic structure to computationally intensive but highly predictive QMC methods which include many-body effects such as electronic correlations and van der Waals interactions explicitly.

*We were supported by GRK Grant No. 1570, the International Doctorate Program Topological Insulators of the Elite Network of Bavaria, and DFG SFB 1277 (B07). We acknowledge the Gauss Centre for Supercomputing (www.gauss-centre.eu) for funding.

Presenters

  • Tobias Frank

    • University of Regensburg

Authors

  • Tobias Frank

    • University of Regensburg
  • Ren� Derian

    • Slovak Academy of Sciences, Bratislava
  • Kamil Tokár

    • Slovak Academy of Sciences, Bratislava
  • Lubos Mitas

    • North Carolina State University
    • Department of Physics, North Carolina State University
  • Jaroslav Fabian

    • University of Regensburg
    • Institute for Theoretical Physics, University of Regensburg
  • Ivan Stich

    • Slovak Academy of Sciences, Bratislava