Affiliation:
1. Science and Technology on Advanced Ceramic Fibers and Composites Laboratory College of Aerospace Science and Engineering National University of Defence Technology Changsha Hunan Province 410073 P. R. China
2. National Local Joint Engineering Laboratory for New Petro‐chemical Materials and Fine Utilization of Resources College of Chemistry and Chemical Engineering Hunan Normal University Changsha 410081 P. R. China
3. School of Physics and Electronics Central South University Changsha 410083 P. R. China
4. School of Physics and Technology Xinjiang University Urumqi 830046 P. R. China
5. Center for Nanochemistry Beijing Science and Engineering Center for Nanocarbons Beijing National Laboratory for Molecular Sciences College of Chemistry and Molecular Engineering Peking University Beijing 100871 P. R. China
Abstract
AbstractMorphology significantly affects material's electronic, catalytic, and magnetic properties, especially for 2D crystals. Abundant achievements have been made in the morphology engineering of high‐symmetry 2D materials, but for the emerging low‐symmetry ones, such as ReS2, both the morphology control technique and comprehension are lacking. Here, the lateral shape and vertical thickness engineering of 2D ReS2 by tailoring the growth temperature and the substrate symmetry using chemical vapor deposition, is reported. The temperature increase induces an isotropic‐to‐anisotropic transition of domain shapes, as well as a monotonic decrease of the domain thickness, which promotes the electrocatalytic performance. The substrate rotational symmetry determines the shape anisotropy of polycrystalline ReS2 monolayers via a diffusion‐limited mechanism, leading to highly oriented square, triangular, and strip‐like domains synthesized on the fourfold symmetry SrTiO3 (001), threefold symmetry c‐sapphire, and twofold symmetry a‐sapphire substrates, respectively. Various stacking configurations in bilayers are unclosed at the atomic scale. Some are predicted to adopt a type‐II band alignment with great potential in photovoltaics. The results give insights into the morphological engineering of a unique class of 2D material with low in‐plane lattice symmetry and weak interlayer coupling, which are crucial for their high‐quality synthesis and industrial applications.
Funder
National University of Defense Technology
National Natural Science Foundation of China
Natural Science Foundation of Hunan Province
Subject
Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials
Cited by
9 articles.
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