Phonon screening and dissociation of excitons at finite temperatures from first principles

Author:

Alvertis Antonios M.12ORCID,Haber Jonah B.23,Li Zhenglu245ORCID,Coveney Christopher J. N.6ORCID,Louie Steven G.25ORCID,Filip Marina R.6ORCID,Neaton Jeffrey B.257

Affiliation:

1. KBR, Inc., NASA Ames Research Center, Moffett Field, CA 94035

2. Materials Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720

3. Department of Materials Science and Engineering, Stanford University, Stanford, CA 94305

4. Mork Family Department of Chemical Engineering and Materials Science, University of Southern California, Los Angeles, CA 90089

5. Department of Physics, University of California Berkeley, Berkeley, CA 94720

6. Department of Physics, University of Oxford, Oxford OX1 3PJ, United Kingdom

7. Kavli Energy NanoScience Institute at Berkeley, Berkeley, CA 94720

Abstract

The properties of excitons, or correlated electron–hole pairs, are of paramount importance to optoelectronic applications of materials. A central component of exciton physics is the electron–hole interaction, which is commonly treated as screened solely by electrons within a material. However, nuclear motion can screen this Coulomb interaction as well, with several recent studies developing model approaches for approximating the phonon screening of excitonic properties. While these model approaches tend to improve agreement with experiment, they rely on several approximations that restrict their applicability to a wide range of materials, and thus far they have neglected the effect of finite temperatures. Here, we develop a fully first-principles, parameter-free approach to compute the temperature-dependent effects of phonon screening within the ab initio GW -Bethe–Salpeter equation framework. We recover previously proposed models of phonon screening as well-defined limits of our general framework, and discuss their validity by comparing them against our first-principles results. We develop an efficient computational workflow and apply it to a diverse set of semiconductors, specifically AlN, CdS, GaN, MgO, and SrTiO 3 . We demonstrate under different physical scenarios how excitons may be screened by multiple polar optical or acoustic phonons, how their binding energies can exhibit strong temperature dependence, and the ultrafast timescales on which they dissociate into free electron–hole pairs.

Funder

DOE

National Science Foundation

EPSRC

Publisher

Proceedings of the National Academy of Sciences

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