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Strain-tunable charge carrier mobility of atomically thin phosphorus allotropes

Materials Science 2018-04-18 v1

Abstract

We explore the impact of strain on charge carrier mobility of monolayer α\alpha, β\beta, γ\gamma and δ\delta-P, the four well known atomically thin allotropes of phosphorus, using density functional theory. Owing to the highly anisotropic band dispersion, the charge carrier mobility of the pristine allotropes is significantly higher (more than 5 times in some cases) in one of the principal directions (zigzag or armchair) as compared to the other. Uniaxial strain (upto 6% compressive/tensile) leads to bandgap alteration in each of the allotropes, especially a direct to indirect bandgap semiconductor transition in γ\gamma-P and a complete closure of the bandgap in γ\gamma and δ\delta-P. We find that the charge carrier mobility is enhanced typically by a factor of 510\approx 5-10 in all the allotropes due to uniaxial strain; notably among them a 250\approx 250 (30) times increase of the hole (electron) mobility along the armchair (zigzag) direction is observed in β\beta-P (γ\gamma-P) under a compressive strain, acting in the armchair direction. Interestingly, the preferred electronic conduction direction can also be changed in case of α\alpha and γ\gamma-P, by applying strain.

Keywords

Cite

@article{arxiv.1803.02010,
  title  = {Strain-tunable charge carrier mobility of atomically thin phosphorus allotropes},
  author = {Achintya Priydarshi and Yogesh Singh Chauhan and Somnath Bhowmick and Amit Agarwal},
  journal= {arXiv preprint arXiv:1803.02010},
  year   = {2018}
}

Comments

9 pages and 6 figures; To appear in Phys. Rev. B