Linear Dichroism and Nondestructive Crystalline Identification of Anisotropic Semimetal Few-Layer MoTe 2

Semimetal 1T' MoTe 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 still are not revealed yet, which is important to...

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Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2019-10, Vol.15 (44), p.e1903159
Hauptverfasser: Zhu, Meijie, Zhao, Yan, Feng, Qingliang, Lu, Hua, Zhang, Shuqing, Zhang, Na, Ma, Chaojia, Li, Jiafeng, Zheng, Jianbang, Zhang, Jin, Xu, Hua, Zhai, Tianyou, Zhao, Jianlin
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Sprache:eng
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Zusammenfassung:Semimetal 1T' MoTe 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 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 single crystals is investigated. Trilayer 1T' MoTe shows obvious anisotropic optical absorption due to the intraband transition of d orbits for Mo atoms and p orbits for Te atoms. The anisotropic complex refractive indices of few-layer 1T' MoTe are experimentally obtained for the first time by using the Pinier equation analysis. Based on the linear dichroism of 1T' MoTe , angle-resolved polarized optical microscopy is developed to visualize the grain boundary and identify the crystal orientation of 1T' MoTe 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.
ISSN:1613-6810
1613-6829
DOI:10.1002/smll.201903159