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      Renormalization of the valley Hall conductivity due to interparticle interaction

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          Abstract

          We develop a theory of Coulomb interaction-mediated contribution to valley Hall effect (VHE) in two-dimensional non-centrosymmetric gapped Dirac materials. We assume that the bare valley Hall current occurs in the system due to the presence of disorder caused by impurities and is determined by the valley-selective anisotropic skew scattering. Applying the Boltzmann transport equation to describe the electron and hole transport in the material, we calculate the renormalized VHE conductivity due to electron-electron and electron-hole scattering processes, considering two regimes: (i) an \(n\)-doped monolayer hosting a degenerate electron gas, and (ii) an intrinsic semiconductor with the Boltzmann statistics of electron and hole gases. In both regimes, the dominant mechanism of interparticle scattering is due to particles residing in different valleys. Moreover, in case (ii), in addition to direct scattering, electron-hole annihilation starts to play a role with the increase in temperature. It might even become the dominant mechanism of the Coulomb interaction-mediated VHE.

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          Author and article information

          Journal
          10 July 2024
          Article
          10.1103/PhysRevB.110.L041301
          2407.08118
          bf3bd5b0-7867-4d2d-bfed-3dc87858014e

          http://creativecommons.org/licenses/by/4.0/

          History
          Custom metadata
          Phys. Rev. B 110, L041301 (2024)
          Published version
          cond-mat.mes-hall

          Nanophysics
          Nanophysics

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