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Linear Dichroism and Nondestructive Crystalline Identification of Anisotropic Semimetal Few‐Layer MoTe<sub>2</sub>
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Citations
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References
2019
Year
Semimetal 1T' MoTe<sub>2</sub> crystals have attracted tremendous attention owing to their anisotropic optical properties, Weyl semimetal, phase transition, and so on. However, the complex refractive indices (n-ik) of the anisotropic semimetal 1T' MoTe<sub>2</sub> still are not revealed yet, which is important to applications such as polarized wide spectrum detectors, polarized surface plasmonics, and nonlinear optics. Here, the linear dichroism of as-grown trilayer 1T' MoTe<sub>2</sub> single crystals is investigated. Trilayer 1T' MoTe<sub>2</sub> shows obvious anisotropic optical absorption due to the intraband transition of d<sub>z</sub> <sup>2</sup> orbits for Mo atoms and p<sub>x</sub> orbits for Te atoms. The anisotropic complex refractive indices of few-layer 1T' MoTe<sub>2</sub> are experimentally obtained for the first time by using the Pinier equation analysis. Based on the linear dichroism of 1T' MoTe<sub>2</sub> , angle-resolved polarized optical microscopy is developed to visualize the grain boundary and identify the crystal orientation of 1T' MoTe<sub>2</sub> crystals, which is also an excellent tool toward the investigation of the optical absorption properties in the visible range for anisotropic 2D transition metal chalcogenides. This work provides a universal and nondestructive method to identify the crystal orientation of anisotropic 2D materials, which opens up an opportunity to investigate the optical application of anisotropic semimetal 2D materials.
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