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Quasiparticle band-gap renormalization in doped monolayer MoS$_2$

Mesoscale and Nanoscale Physics 2021-09-01 v1

Abstract

The quasiparticle band-gap renormalization induced by the doped carriers is an important and well-known feature in two-dimensional semiconductors, including transition-metal dichalcogenides (TMDs), and it is of both theoretical and practical interest. To get a quantitative understanding of this effect, here we calculate the quasiparticle band-gap renormalization of the electron-doped monolayer MoS2_2, a prototypical member of TMDs. The many-body electron-electron interaction induced renormalization of the self-energy is found within the random phase approximation and to account for the quasi-2D character of the Coulomb interaction in this system a Keldysh-type interaction with a nonlocal dielectric constant is used. Considering the renormalization of both the valence and the conduction bands, our calculations reveal a large and nonlinear band-gap renormalization upon adding free carriers to the conduction band. We find a 410 meV reduction of the band gap for the monolayer MoS2_2 on SiO2_2 substrate at the free carrier density n=4.9×1012cm2n=4.9\times 10^{12} \rm{cm^{-2}} which is in excellent agreement with available experimental results. We also discuss the role of exchange and correlation parts of the self-energy on the overall band-gap renormalization of the system. The strong dependence of the band-gap renormalization on the surrounding dielectric environment is also demonstrated in this work, and a much larger shrinkage of the band gap is predicted for the freestanding monolayer MoS2_2.

Keywords

Cite

@article{arxiv.2108.10599,
  title  = {Quasiparticle band-gap renormalization in doped monolayer MoS$_2$},
  author = {Azadeh Faridi and Dimitrie Culcer and Reza Asgari},
  journal= {arXiv preprint arXiv:2108.10599},
  year   = {2021}
}

Comments

7 pages, 3 figures. To appear in PRB