2D Janus Niobium Oxydihalide NbO: Multifunctional High-Mobility Piezoelectric Semiconductor for Electronics, Photonics and Sustainable Energy Applications
arXiv:2211.00560
Abstract
Two-dimensional (2D) niobium oxydihalide NbOI has been recently demonstrated as an excellent in-plane piezoelectric and nonlinear optical materials. Here we show that Janus niobium oxydihalide, NbO (X, Y = Cl, Br, I and XY), is a multifunctional anisotropic semiconductor family with exceptional piezoelectric, electronic, photocatalytic and optical properties. NbO are stable and mechancially flexible monolayers with band gap around the visible light regime of eV. The anisotropic carrier mobility of NbO lies in the range of cmVs, which represents some of the highest among 2D semiconductors of bandgap eV. Inversion symmetry breaking in Janus NbO generates sizable out-of-plane piezoelectric response while still retaining a strong in-plane piezoelectricity. Remarkably, NbO exhibits an additional out-of-plane piezoelectric response, as large as 0.55 pm/V. GW-BSE calculation further reveals the strong linear optical dichroism of NbO in the visible-to-ultraviolet regime. The optical absorption peaks with \% in the deep UV regime ( eV), outperforming the vast majority of other 2D materials. The high carrier mobility, strong optical absorption, sizable built-in electric field and band alignment compatible with overall water splitting further suggest the strengths of NbO in energy conversion application. We further propose a directional stress sensing device to demonstrate how the out-of-plane piezoelectricity can be harnessed for functional device applications. Our findings unveil NbO as an exceptional multifunctional 2D semiconductor for flexible electronics, optoelectronics, UV photonics, piezoelectric and sustainable energy applications.
16 Pages, 7 Figures, 3 Tables