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    Direct Band Gap in Multilayer Transition Metal Dichalcogenide Nanoscrolls with Enhanced Photoluminescence

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    Revised_manuscript_20220628.pdf
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    Embargo End Date:
    2023-07-20
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    Type
    Article
    Authors
    Lin, Ci
    Cai, Liang
    Fu, Jui-Han
    Sattar, Shahid cc
    Wang, Qingxiao
    Wan, Yi cc
    Tseng, Chien-Chih cc
    Yang, Chih-Wen cc
    Aljarb, Areej cc
    Jiang, Ke
    Huang, Kuo-Wei cc
    Li, Lain-Jong
    Canali, Carlo Maria
    Shi, Yumeng cc
    Tung, Vincent cc
    KAUST Department
    Physical Sciences and Engineering Division, KAUST Solar Center, King Abdullah University of Science and Technology (KAUST), Thuwal 23995-6900, Saudi Arabia
    Core Labs, King Abdullah University of Science and Technology (KAUST), Thuwal 23995-6900, Saudi Arabia
    Material Science and Engineering
    Physical Science and Engineering (PSE) Division
    KAUST Solar Center (KSC)
    Electron Microscopy
    Material Science and Engineering Program
    Chemical Science Program
    KAUST Catalysis Center (KCC)
    KAUST Grant Number
    OSR-2018-CARF/CCF-3079
    Date
    2022-07-20
    Embargo End Date
    2023-07-20
    Permanent link to this record
    http://hdl.handle.net/10754/679764
    
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    Abstract
    A direct band gap that solely exists in monolayer semiconducting transition metal dichalcogenides (TMDs) endows strong photoluminescence (PL) features, whereas multilayer TMD structures exhibit quenched PL due to the direct-to-indirect band gap transition. We demonstrate multilayer TMD (such as MoS2 and WS2) nanoscrolls with a preserved direct band gap fabricated by an effective and facile method of solvent-driven self-assembly. The resultant multilayer nanoscrolls, exhibiting up to 11 times higher PL intensity than the remanent monolayer, are carefully characterized using PL spectroscopy. Significantly enlarged interlayer distances and modulated interlayer coupling in the fabricated nanostructures are unveiled by cross-sectional scanning transmission electron microscopy, atomic force microscopy, and Raman spectroscopy. The preservation of direct band gap features is further evidenced by density functional theory calculations using the simplified bilayer model with an experimentally obtained 15 Å interlayer distance. The modulation of the PL intensity as an indicator of the band gap crossover in the TMD nanoscrolls is demonstrated by removing the acetone molecules trapped inside the interlayer space. The general applicability of the method presents an opportunity for large-scale fabrication of a plethora of multilayer TMD nanoscrolls with direct band gaps.
    Citation
    Lin, C., Cai, L., Fu, J.-H., Sattar, S., Wang, Q., Wan, Y., Tseng, C.-C., Yang, C.-W., Aljarb, A., Jiang, K., Huang, K.-W., Li, L.-J., Canali, C. M., Shi, Y., & Tung, V. (2022). Direct Band Gap in Multilayer Transition Metal Dichalcogenide Nanoscrolls with Enhanced Photoluminescence. ACS Materials Letters, 1547–1555. https://doi.org/10.1021/acsmaterialslett.2c00162
    Sponsors
    V.T., C.L., and L.C. acknowledge the support from the King Abdullah University of Science and Technology (KAUST) Office of Sponsored Research (OSR) under Award No. OSR-2018-CARF/CCF-3079. J.-H.F. and C.-C.T. acknowledge the support from the University of Tokyo. L.-J.L. acknowledges the support from the University of Hong Kong; Y.S. acknowledges the support from the National Natural Science Foundation of China (Grant No. 61874074), Shenzhen Peacock Plan (Grant No. KQTD2016 053112042971); S.S. and C.M.C. thank Carl Tryggers Stiftelsen (CTS 20:71) for financial support. The computations were enabled by resources provided by the Swedish National Infrastructure for Computing (SNIC) at HPC2N and NSC partially funded by the Swedish Research Council through Grant Agreement No. 2018-05973.
    Publisher
    American Chemical Society (ACS)
    Journal
    ACS Materials Letters
    DOI
    10.1021/acsmaterialslett.2c00162
    Additional Links
    https://pubs.acs.org/doi/10.1021/acsmaterialslett.2c00162
    ae974a485f413a2113503eed53cd6c53
    10.1021/acsmaterialslett.2c00162
    Scopus Count
    Collections
    Articles; Physical Science and Engineering (PSE) Division; Chemical Science Program; Material Science and Engineering Program; KAUST Catalysis Center (KCC); KAUST Solar Center (KSC)

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