2D Janus Niobium Oxydihalide NbOXYXY: Multifunctional High-Mobility Piezoelectric Semiconductor for Electronics, Photonics and Sustainable Energy Applications

Abstract

Two-dimensional (2D) niobium oxydihalide NbOI2_2 has been recently demonstrated as an excellent in-plane piezoelectric and nonlinear optical materials. Here we show that Janus niobium oxydihalide, NbOXYXY (X, Y = Cl, Br, I and X≠\neqY), is a multifunctional anisotropic semiconductor family with exceptional piezoelectric, electronic, photocatalytic and optical properties. NbOXYXY are stable and mechancially flexible monolayers with band gap around the visible light regime of ∼1.9\sim 1.9 eV. The anisotropic carrier mobility of NbOXYXY lies in the range of 103∼10410^3 \sim 10^4 cm2^2V−1^{-1}s−1^{-1}, which represents some of the highest among 2D semiconductors of bandgap ≳2\gtrsim 2 eV. Inversion symmetry breaking in Janus NbOXYXY generates sizable out-of-plane d31d_{31} piezoelectric response while still retaining a strong in-plane piezoelectricity. Remarkably, NbOXYXY exhibits an additional out-of-plane piezoelectric response, d32d_{32} as large as 0.55 pm/V. G0_0W0_0-BSE calculation further reveals the strong linear optical dichroism of NbOXYXY in the visible-to-ultraviolet regime. The optical absorption peaks with 14∼1814\sim18 \% in the deep UV regime (5∼65\sim6 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 NbOXYXY 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 NbOXYXY as an exceptional multifunctional 2D semiconductor for flexible electronics, optoelectronics, UV photonics, piezoelectric and sustainable energy applications.Comment: 16 Pages, 7 Figures, 3 Table

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