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      In-plane interfacing effects of two-dimensional transition-metal dichalcogenide heterostructures.

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          Abstract

          In-plane heterostructures of two-dimensional transition-metal dichalcogenides (TMDs) demonstrate the formation of one-dimensional interfaces (or interlines), leading to new exciting properties and device functionalities. In this work, the interfacing effects have been studied in MoS2/WS2 quantum-well and superlattice in-plane heterostructures on the basis of first-principles electronic calculations. In light of the orbital-projected band structures, MoS2/WS2 in-plane heterostructures illustrate type-II band alignments with rather a small band offset for the valence band maximum and a relatively large band offset for the conduction band minimum. Upon increasing the width of TMD constituents, the band gap varies within a small range. In MoS2 and WS2, the surline energy and work function of zigzag edges with S-terminations are obviously higher than those of metal-terminations, and charge transfer from MoS2 to WS2 could be addressed due to the difference in the Fermi level. In-gap levels induced by S vacancies in MoS2/WS2 in-plane heterostructures are discrete and, interestingly, change to consecutive bands due to the built-in electric field.

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          Author and article information

          Journal
          Phys Chem Chem Phys
          Physical chemistry chemical physics : PCCP
          Royal Society of Chemistry (RSC)
          1463-9084
          1463-9076
          Jun 21 2016
          : 18
          : 23
          Affiliations
          [1 ] School of Physics, State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, China. daiy60@sdu.edu.cn.
          Article
          10.1039/c6cp02741e
          27220413
          2b257a45-4f4a-4b23-9542-6ce4c34d2f86
          History

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