Quadriexciton Binding Energy in Electron–Hole Bilayers

Author:

Malosso Cesare1ORCID,Senatore Gaetano2ORCID,De Palo Stefania23ORCID

Affiliation:

1. SISSA—Scuola Internazionale Superiore di Studi Avanzati, 34136 Trieste, Italy

2. Dipartimento di Fisica, Università di Trieste, Strada Costiera 11, 34151 Trieste, Italy

3. CNR-IOM-DEMOCRITOS, I-34136 Trieste, Italy

Abstract

Excitonic condensation and superfluidity have recently received a renewed attention, due to the fabrication of bilayer systems in which electrons and holes are spatially separated and form stable pairs known as indirect excitons. Dichalcogenides- and graphene-based bilayers are nowadays built and investigated, giving access to systems with (i) only spin degeneracy and (ii) spin and valley degeneracy. Simulation studies performed in the last decades at T=0 for simple, model electron–hole bilayers, as function of the interlayer distance and in-layer carrier density, have revealed in case (i) the formation of biexcitons in a tiny region of the parameter space and in case (ii) the formation of stable compounds made of four electrons and four holes (quadriexcitons) in a sizable region of the parameter space. Of some interest is the relation of the properties of isolated biexcitons (quadriexcitons) and those of their finite-density counterpart. In fact, the isolated biexciton has been repeatedly studied in the last years with simulations and other techniques. No simulations, instead, are available to our knowledge for the isolated quadriexciton, for which we present here results of the first quantum Monte Carlo (QMC) study. Stability with respect to the dissociation into biexcitons and the pair correlations while varying the interlayer distance d are discussed.

Publisher

MDPI AG

Subject

Condensed Matter Physics,Electronic, Optical and Magnetic Materials

Reference27 articles.

1. Ashcroft, N.W., and Mermin, D.N. (1976). Solid State Physics, Holt, Rinehart and Winston.

2. Mobile and Immobile Effective-Mass-Particle Complexes in Nonmetallic Solids;Lampert;Phys. Rev. Lett.,1958

3. The theory of Mott exciton in AlkaliGallium cristalls;Moskalenko;Opt. Spektrosk.,1958

4. Ihn, T. (2010). Semiconductor Nanostructures, Oxford University Press.

5. Excitonic molecules: A possible new form of chemical bonding;Wang;Phys. Lett. A,1972

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