• Journal of Semiconductors
  • Vol. 41, Issue 7, 072901 (2020)
Yuanyuan Jin, Huimin Li, and Song Liu
Author Affiliations
  • Institute of Chemical Biology and Nanomedicine (ICBN), State Key Laboratory of Chem/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, China
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    DOI: 10.1088/1674-4926/41/7/072901 Cite this Article
    Yuanyuan Jin, Huimin Li, Song Liu. Growth of large-scale two-dimensional insulator Na2Ta4O11 through chemical vapor deposition[J]. Journal of Semiconductors, 2020, 41(7): 072901 Copy Citation Text show less
    References

    [1] M Machida, J I Yabunaka, T Kijima. Efficient photocatalytic decomposition of water with the novel layered tantalate RbNdTa2O7. Chem Commun, 30, 1939(1999).

    [2] T Tanaka, H Nojima, T Yamamoto et al. Structure of surface tantalate species and photo-oxidation of carbon monoxide over silica-supported tantalum oxide. Phys Chem Chem Phys, 1, 5235(1999).

    [3] S Suzuki, H Saito, K Yubuta et al. Growth of millimeter-sized platy single crystals of NaTaO3 from Na2MoO4 flux. Cryst Growth Des, 19, 3607(2019).

    [4] I Ivanova, T A Kandiel, Y J Cho et al. Mechanisms of photocatalytic molecular hydrogen and molecular oxygen evolution over La-doped NaTaO3 particles: effect of different cocatalysts and their specific activity. ACS Catal, 8, 2313(2018).

    [5] H Sudrajat, Y Zhou, T Sasaki et al. The atomic-scale structure of LaCrO3–NaTaO3 solid solution photocatalysts with enhanced electron population. Phys Chem Chem Phys, 21, 5148(2019).

    [6] K Kishimoto, M Yoshio, T Mukai et al. Nanostructured anisotropic ion-conductive films. J Am Chem Soc, 125, 3196(2003).

    [7] Y G Su, X Yang, T T Wang et al. Sol-gel synthesis of Na2Ta4O11 nanocrystals showing high efficient photocatalytic performance. Adv Mater Res, 1058, 35(2014).

    [8] R Mattes, J Schaper. Crystal structure of Na2Ta4O11. Revue de Chimie Minerale, 22, 817(1985).

    [9] et al. Template synthesized nano-crystalline natrotantite: preparation and photocatalytic activity for water decomposition. Mater Chem Physs, 110, 176(2008).

    [10] N McLamb, P P Sahoo, L Fuoco et al. Flux growth of single-crystal Na2Ta4O11 particles and their photocatalytic hydrogen production. Cryst Growth Des, 13, 2322(2013).

    [11] K Teshima, D Tomomatsu, T Suzuki et al. Growth of Na2Ta4O11 crystals from a Na2Mo2O7 flux. Cryst Growth Des, 6, 18(2006).

    [12] Y Kim, S Kim, W H Lee et al. Direct transfer of CVD-grown graphene onto eco-friendly cellulose film for highly sensitive gas sensor. Cellulose, 27, 1685(2020).

    [13] D Kumar, R K Ghadai, S Das et al. Effect of nitrogen flow rate on the mechanical properties of CVD-deposited SiCN thin films. Bull Mater Sci, 42, 251(2019).

    [14] Y Jin, Z Zeng, Z Xu et al. Synthesis and transport properties of degenerate p-type Nb-doped WS2 monolayers. Chem Mater, 31, 3534(2019).

    [15] K C Kwon, C Kim, Q V Le et al. Synthesis of atomically thin transition metal disulfides for charge transport layers in optoelectronic devices. ACS Nano, 9, 4146(2015).

    [16] K Y Ko, S Lee, K Park et al. High-performance gas sensor using a large-area WS2xSe2–2x alloy for low-power operation wearable applications. ACS Appl Mater Interfaces, 10, 34163(2018).

    [17] S Wang, Y Rong, Y Fan et al. Shape evolution of monolayer MoS2 crystals grown by chemical vapor deposition. Chem Mater, 26, 6371(2014).

    [18] M Harb, D Masih, S Ould-Chikh et al. Determination of the electronic structure and UV–Vis absorption properties of (Na2–xCux)Ta4O11 from first-principle calculations. J Phys Chem C, 117, 17477(2013).

    [19] O Palasyuk, A Palasyuk, P A Maggard. Site-differentiated solid solution in (Na1−xCux)2Ta4O11 and its electronic structure and optical properties. Inorg Chem, 49, 10571(2010).

    [20] M Mobin, A Malik. Studies on the interactions of transition metal oxides and sodium sulfate in the temperature range 900–1200 K in oxygen. J Alloy Compd, 235, 97(1996).

    [21] M A Muñoz-Márquez, M Zarrabeitia, E Castillo-Martínez et al. Composition and evolution of the solid-electrolyte interphase in Na2Ti3O7 electrodes for Na-ion batteries: XPS and auger parameter analysis. ACS Appl Mater Interfaces, 7, 7801(2015).

    [22] K Kotsis, V Staemmler. Ab initio calculations of the O1s XPS spectra of ZnO and Zn oxo compounds. Phys Chem Chem Phys, 8, 1490(2006).

    [23] R Grilli, R Simpson, C Mallinson et al. Comparison of Ar+ monoatomic and cluster ion sputtering of Ta2O5 at different ion energies, by XPS: Part 2-cluster ions. Surf Sci Spectra, 21, 68(2014).

    [24] H Van Ngoc, Y Qian, S K Han et al. PMMA-etching-free transfer of wafer-scale chemical vapor deposition two-dimensional atomic crystal by a water soluble polyvinyl alcohol polymer method. Sci Rep, 6, 33096(2016).

    [25] S Ithurria, D V Talapin. Colloidal atomic layer deposition (c-ALD) using self-limiting reactions at nanocrystal surface coupled to phase transfer between polar and nonpolar media. J Am Chem Soc, 134, 18585(2012).

    Yuanyuan Jin, Huimin Li, Song Liu. Growth of large-scale two-dimensional insulator Na2Ta4O11 through chemical vapor deposition[J]. Journal of Semiconductors, 2020, 41(7): 072901
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