English

Intrinsic Charge Carrier Mobility in Single-Layer Black Phosphorus

Materials Science 2016-06-17 v2 Mesoscale and Nanoscale Physics Computational Physics

Abstract

We present a theory for single- and two-phonon charge carrier scattering in anisotropic two-dimensional semiconductors applied to single-layer black phosphorus (BP). We show that in contrast to graphene, where two-phonon processes due to the scattering by flexural phonons dominate at any practically relevant temperatures and are independent of the carrier concentration nn, two-phonon scattering in BP is less important and can be considered negligible at n1013n\gtrsim10^{13} cm2^{-2}. At smaller nn, however, phonons enter in the essentially anharmonic regime. Compared to the hole mobility, which does not exhibit strong anisotropy between the principal directions of BP (μxx/μyy1.4\mu_{xx}/\mu_{yy}\sim1.4 at n=1013n=10^{13} cm2^{-2} and T=300T=300 K), the electron mobility is found to be significantly more anisotropic (μxx/μyy6.2\mu_{xx}/\mu_{yy}\sim6.2). Absolute values of μxx\mu_{xx} do not exceed 250 (700) cm2^2V1^{-1}s1^{-1} for holes (electrons), which can be considered as an upper limit for the mobility in BP at room temperature.

Keywords

Cite

@article{arxiv.1512.08936,
  title  = {Intrinsic Charge Carrier Mobility in Single-Layer Black Phosphorus},
  author = {A. N. Rudenko and S. Brener and M. I. Katsnelson},
  journal= {arXiv preprint arXiv:1512.08936},
  year   = {2016}
}

Comments

9 pages, 6 figures (including Supplemental Material). Text is restructured compared to the original version, more discussions added

R2 v1 2026-06-22T12:20:01.163Z