English

High-mobility transport anisotropy and linear dichroism in few-layer black phosphorus

Materials Science 2014-07-08 v4 Mesoscale and Nanoscale Physics

Abstract

Two-dimensional crystals are emerging materials for nanoelectronics. Development of the field requires candidate systems with both a high carrier mobility and, in contrast to graphene, a sufficiently large electronic bandgap. Here we present a detailed theoretical investigation of the atomic and electronic structure of few-layer black phosphorus (BP) in order to predict its electrical and optical properties. This system has a direct bandgap, tunable from 1.51 eV for a monolayer to 0.59 eV for a 5-layer sample. We predict that the mobilities are hole-dominated, rather high and highly anisotropic. The monolayer is exceptional in having an extremely high hole-mobility (of order 10000 cm2^{2} V1^{-1} s1^{-1}) and anomalous elastic properties which reverse the anisotropy. Light absorption spectra indicate linear dichroism between perpendicular in-plane directions, which allows optical determination of the crystalline orientation and optical activation of the anisotropic transport properties. These results make few-layer BP a promising candidate for future electronics.

Keywords

Cite

@article{arxiv.1401.5045,
  title  = {High-mobility transport anisotropy and linear dichroism in few-layer black phosphorus},
  author = {Jingsi Qiao and Xianghua Kong and Zhi-Xin Hu and Feng Yang and Wei Ji},
  journal= {arXiv preprint arXiv:1401.5045},
  year   = {2014}
}

Comments

Nature Communications, in press (2014). 3 figures and 2 tables together with a supporting info of 5 figures and 3 tables