Optical Instruments, Volume. 44, Issue 6, 66(2022)

Research on a fixed-site transfer method for low-dimensional materials based on flexible polymer film

Xin TAN... Yuchun LIU, Tianci SHEN, Yanna MA* and Fuxing GU* |Show fewer author(s)
Author Affiliations
  • School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
  • show less
    References(26)

    [1] NOVOSELOV K S, GEIM A K, MOROZOV S V, et al. Electric field effect in atomically thin carbon films[J]. Science, 306, 666-669(2004).

    [2] LIU Y C, GU F X. A wafer-scale synthesis of monolayer MoS2 and their field-effect transistors toward practical applications[J]. Nanoscale Advances, 3, 2117-2138(2021).

    [3] LIAO F, Yu J X, GU Z Q, et al. Enhancing monolayer photoluminescence on optical micro/nanofibers for low-threshold lasing[J]. Science Advances, 5, eaax7398(2019).

    [4] YU J X, XING S, DAI G Y, et al. Direct-bandgap bilayer WSe2/microsphere monolithic cavity for low-threshold lasing[J]. Advanced Materials, 34, 2106502(2022).

    [5] HUO N, KONSTANTATOS G. Recent progress and future prospects of 2D-based photodetectors[J]. Advanced Materials, 30, 1801164(2018).

    [6] ZHANG Y, CHEN W, FU T, et al. Simultaneous surface-enhanced resonant Raman and fluorescence spectroscopy of monolayer MoSe2: determination of ultrafast decay rates in nanometer dimension[J]. Nano Letters, 19, 6284-6291(2019).

    [7] FURCHI M M, POSPISCHIL A, LIBISCH F, et al. Photovoltaic effect in an electrically tunable van der Waals heterojunction[J]. Nano Letters, 14, 4785-4791(2014).

    [8] SUKHWINDER S, JYOTIRMOY D, UTPAL S, et al. MoS2/WO3 nanosheets for detection of ammonia[J]. ACS Applied Nano Materials, 4, 2594-2605(2021).

    [9] DEAN C R, YOUNG A F, MERIC I, et al. Boron nitride substrates for high-quality graphene electronics[J]. Nature Nanotechnology, 5, 722-726(2010).

    [10] WAKAFUJI Y, MORIYA R, MASUBUCHI S, et al. 3D manipulation of 2D materials using microdome polymer[J]. Nano Letters, 4, 2486-2492(2020).

    [11] LI H, WU J, HUANG X, et al. A universal, rapid method for clean transfer of nanostructures onto various substrates[J]. ACS Nano, 8, 6563(2014).

    [12] PIZZOCCHERO F, GAMMELGAARD L, JESSEN B S, et al. The hot pick-up technique for batch assembly of van der Waals heterostructures[J]. Nature Communications, 7, 1-10(2016).

    [13] YU H, LIAO M, ZHAO W, et al. Wafer-scale growth and transfer of highly-oriented monolayer MoS2 continuous films[J]. ACS Nano, 11, 12001-12007(2017).

    [14] ZHAO Q, WANG T, RYU Y K, et al. An inexpensive system for the deterministic transfer of 2D materials[J]. Journal of Physics:Materials, 3, 016001(2020).

    [15] YANG X, Li X, DENG Y, et al. Ethanol assisted transfer for clean assembly of 2D building blocks and suspended structures[J]. Advanced Functional Materials, 29, 1902427.1-1902427.6(2019).

    [16] REINA A, SON H, JIAO L, et al. Transferring and identification of single-and few-layer graphene on arbitrary substrates[J]. The Journal of Physical Chemistry C, 112, 17741-17744(2008).

    [17] SHI J, MA D, HAN G F, et al. Controllable growth and transfer of monolayer MoS2 on Au foils and its potential application in hydrogen evolution reaction[J]. ACS Nano, 8, 10196-10204(2014).

    [18] SCHNEIDER G F, CALADO V E, ZANDBERGEN H, et al. Wedging transfer of nanostructures[J]. Nano Letters, 10, 1912-1916(2010).

    [19] CASTELLANOS-GOMEZ A, BUSCEMA M, MOLENAAR R, et al. Deterministic transfer of two-dimensional materials by all-dry viscoelastic stamping[J]. 2D Materials, 1, 011002(2014).

    [20] REBOLLO I G, RODRIGUES-MACHADO F C, WRIGHT W, et al. Thin-suspended 2D materials: facile, versatile, and deterministic transfer assembly[J]. 2D Materials, 8, 035028(2021).

    [21] KANOKWAN B, RATCHANOK S, TINNA C, et al. Versatile, low-cost, and portable 2D material transfer setup with a facile and highly efficient DIY inert-atmosphere glove compartment option[J]. ACS Omega, 6, 17952-17964(2021).

    [22] WANG X, KANG K, CHEN S, et al. Location-specific growth and transfer of arrayed MoS2 monolayers with controllable size[J]. 2D Materials, 4, 025093(2017).

    [23] RADISAVLJEVIC B, RADENOVIC A, BRIVIO J, et al. Single-layer MoS2 transistors[J]. Nature Nanotechnology, 6, 147-150(2011).

    [24] GOLASA K, GRZESZCZYK M, Binder J, et al. The disorder-induced Raman scattering in Au/MoS2 heterostructures[J]. Aip Advances, 5, 077120(2015).

    [25] TSAI M L, SU S H, CHANG J K, et al. Monolayer MoS2 heterojunction solar cells.[J]. ACS Nano, 8, 8317-8322(2014).

    [26] YU J X, LIU F, GU Z Q, et al. Efficient higher-order nonlinear optical effects in CdSe nanowaveguides[J]. Optics Express, 26, 6880-6889(2018).

    Tools

    Get Citation

    Copy Citation Text

    Xin TAN, Yuchun LIU, Tianci SHEN, Yanna MA, Fuxing GU. Research on a fixed-site transfer method for low-dimensional materials based on flexible polymer film[J]. Optical Instruments, 2022, 44(6): 66

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: DESIGN AND RESEARCH

    Received: Jun. 19, 2022

    Accepted: --

    Published Online: Jan. 11, 2023

    The Author Email: MA Yanna (mayanna@usst.edu.cn), GU Fuxing (gufuxing@usst.edu.cn)

    DOI:10.3969/j.issn.1005-5630.2022.006.010

    Topics