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Accurate electronic ground- and excited-state properties of 2D CrI<sub>3</sub> and its heterostructures

POSTER

Abstract

The recent explosion of research into 2D materials has been largely motivated by promises of new confinement-driven excitonic and polaronic physics of potential use in future microelectronics. In particular, highly-correlated materials like 2D CrI3 and WTe2 are viable candidates for introducing coupled excitonic and magnetic physics into engineered vdW heterostructures. Here, we both outline progress in a new Diffusion Monte Carlo (DMC)-based method for predicting exciton binding energies (EBE’s) in monolayer CrI3, and investigate induced magnetic and electronic effects in a CrI3/1T’-WTe2 bilayer (BL) using Density Functional Theory and Wannier90, benchmarked against DMC calculations. Our prediction of EBE’s utilizes DMC-obtained quasiparticle gaps and features an excited-state single-determinant Slater-Jastrow trial wavefunction built from natural orbitals obtained from a selected configuration interaction (sCI) expansion of localized, mean-field single-particle orbitals. We also quantify induced charge transfer, magnetic, and topological effects in BL CrI3/1T’-WTe2, and conclude with avenues for extending EBE results to the prediction of bilayer EBE’s.

Presenters

  • Daniel J Staros

    Brown University

Authors

  • Daniel J Staros

    Brown University

  • Panchapakesan Ganesh

    Oak Ridge National Lab

  • Brenda M Rubenstein

    Brown University

  • kevin gasperich

    Argonne National Laboratory

  • Anouar Benali

    Argonne National Laboratory