Quasiparticle band-gap renormalization in doped monolayer MoS
arXiv:2108.10599 · doi:10.1103/PhysRevB.104.085432
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 MoS, 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 MoS on SiO substrate at the free carrier density 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 MoS.
7 pages, 3 figures. To appear in PRB
References in corpus (9)
- Observation of giant bandgap renormalization and excitonic effects in a monolayer transition metal dichalcogenide semiconductor
- Dynamical polarization, screening, and plasmons in gapped graphene
- Carrier Plasmon Induced Nonlinear Band Gap Renormalization in Two-Dimensional Semiconductors
- Direct Determination of Band Gap Renormalization in Photo-Excited Monolayer MoS2
- Renormalization of quasiparticle band gap in doped two-dimensional materials from many-body calculations
- Density dependent exchange contribution to in extrinsic graphene
- Optically discriminating carrier-induced quasiparticle band gap and exciton energy renormalization in monolayer MoS2
- Many-body exchange-correlation effects in MoS monolayer: The key role of nonlocal dielectric screening
- Charge compressibility and quantum magnetic phase transition in MoS