Controlling Structural Anisotropy of Anisotropic 2D Layers in Pseudo-1D/2D Material Heterojunctions.

Chen, Bin; Wu, Kedi; Suslu, Aslihan; Yang, Sijie; Cai, Hui; Yano, Aliya; Soignard, Emmanuel; Aoki, Toshihiro et al. · Adv Mater · 2017

basic_science · Level V

Where this comes from

Abstract

Chemical vapor deposition and growth dynamics of highly anisotropic 2D lateral heterojunctions between pseudo-1D ReS<sub>2</sub> and isotropic WS<sub>2</sub> monolayers are reported for the first time. Constituent ReS<sub>2</sub> and WS<sub>2</sub> layers have vastly different atomic structure, crystallizing in anisotropic 1T' and isotropic 2H phases, respectively. Through high-resolution scanning transmission electron microscopy, electron energy loss spectroscopy, and angle-resolved Raman spectroscopy, this study is able to provide the very first atomic look at intimate interfaces between these dissimilar 2D materials. Surprisingly, the results reveal that ReS<sub>2</sub> lateral heterojunctions to WS<sub>2</sub> produce well-oriented (highly anisotropic) Re-chains perpendicular to WS<sub>2</sub> edges. When vertically stacked, Re-chains orient themselves along the WS<sub>2</sub> zigzag direction, and consequently, Re-chains exhibit six-fold rotation, resulting in loss of macroscopic scale anisotropy. The degree of anisotropy of ReS<sub>2</sub> on WS<sub>2</sub> largely depends on the domain size, and decreases for increasing domain size due to randomization of Re-chains and formation of ReS<sub>2</sub> subdomains. Present work establishes the growth dynamics of atomic junctions between novel anisotropic/isotropic 2D materials, and overall results mark the very first demonstration of control over anisotropy direction, which is a significant leap forward for large-scale nanomanufacturing of anisotropic systems.