Journal of Synthetic Crystals, Volume. 50, Issue 8, 1485(2021)

Preparation and Properties of MCNOs/CdS Dual-Effect Photocatalyst

ZHANG Jing, SHI Qianying, GONG Hao, GUO Yufe, and ZHANG Weike
Author Affiliations
  • [in Chinese]
  • show less
    References(38)

    [2] [2] WU X J, XIE S J, LIU C X, et al. Ligand-controlled photocatalysis of CdS quantum dots for lignin valorization under visible light[J]. ACS Catalysis, 2019, 9(9): 8443-8451.

    [3] [3] SHANG L, TONG B, YU H J, et al. CdS nanoparticle-decorated Cd nanosheets for efficient visible light-driven photocatalytic hydrogen evolution[J]. Advanced Energy Materials, 2016, 6(3): 1501241.

    [4] [4] SHI R, CAO Y H, BAO Y J, et al. Self-assembled Au/CdSe nanocrystal clusters for plasmon-mediated photocatalytic hydrogen evolution[J]. Advanced Materials, 2017, 29(27): 1700803.

    [5] [5] FU X L, HU Y F, ZHANG T, et al. The role of ball milled h-BN in the enhanced photocatalytic activity: a study based on the model of ZnO[J]. Applied Surface Science, 2013, 280: 828-835.

    [6] [6] LIU G D, JI S L, YIN L L, et al. Visible-light-driven photocatalysts: (La/Bi+N)-codoped NaNbO3 by first principles[J]. Journal of Applied Physics, 2011, 109(6): 063103.

    [7] [7] MODAK B, MODAK P, GHOSH S. Improving visible light photocatalytic activity of NaNbO3: a DFT based investigation[J]. RSC Advances, 2016, 2016(6): 90188-90196.

    [8] [8] WANG G Z, CHEN H, WU G, et al. Hybrid density functional study on mono- and codoped NaNbO3 for visible-light photocatalysis[J]. ChemPhysChem, 2016, 17(4): 489-499.

    [10] [10] GAMAGE M J, ZHANG Z S. Synthesis and characterization of magnetically separable Ag/AgCl-magnetic activated carbon composites for visible light induced photocatalytic detoxification and disinfection[J]. Applied Catalysis B: Environmental, 2014, 160/161: 267-278.

    [11] [11] ROHANI B T, AHMADPOUR A, AHMADI H F. Synthesis of Fe3O4/Bi2WO6 nanohybrid for the photocatalytic degradation of pharmaceutical ibuprofen under solar light[J]. Journal of Industrial and Engineering Chemistry, 2017, 51: 244-254.

    [13] [13] LIU F Z, SHAO X, WANG J Q, et al. Solvothermal synthesis of graphene-CdS nanocomposites for highly efficient visible-light photocatalyst[J]. Journal of Alloys and Compounds, 2013, 551: 327-332.

    [14] [14] UGARTE D. Curling and closure of graphitic networks under electron-beam irradiation[J]. Nature, 1992, 359(6397): 707-709.

    [16] [16] KROTO H W, MCKAY K. The formation of quasi-icosahedral spiral shell carbon particles[J]. Nature, 1988, 331(6154): 328-331.

    [17] [17] JIANG S, HU Q, XU M Y, et al. Crystalline CdS/MoS2 shape-controlled by a bacterial cellulose scaffold for enhanced photocatalytic hydrogen evolution[J]. Carbohydrate Polymers, 2020, 250: 116909.

    [18] [18] SOLER-ILLIA G, LOUIS A, SANCHEZ C. Synthesis and characterization of mesostructured titania-based materials through evaporation-induced self-assembly[J]. Chemistry of Materials, 2002, 14(2): 750-759.

    [19] [19] SHI S H, WAN G P, WU L H, et al. Ultrathin manganese oxide nanosheets uniformly coating on carbon nanocoils as high-performance asymmetric supercapacitor electrodes[J]. Journal of Colloid and Interface Science, 2019, 537: 142-150.

    [20] [20] REDDY C V, SHIM J, CHO M. Synthesis, structural, optical and photocatalytic properties of CdS/ZnS core/shell nanoparticles[J]. Journal of Physics and Chemistry of Solids, 2017, 103: 209-217.

    [21] [21] XU Y, FU Z C, CAO S, et al. Highly selective oxidation of sulfides on a CdS/C3N4 catalyst with dioxygen under visible-light irradiation[J]. Catalysis Science & Technology, 2017, 7(3): 587-595.

    [23] [23] OU M, ZHONG Q, ZHANG S L, et al. Ultrasound assisted synthesis of heterogeneous g-C3N4/BiVO4 composites and their visible-light-induced photocatalytic oxidation of NO in gas phase[J]. Journal of Alloys and Compounds, 2015, 626: 401-409.

    [24] [24] AN G M, MA W H, SUN Z Y, et al. Preparation of titania/carbon nanotube composites using supercritical ethanol and their photocatalytic activity for phenol degradation under visible light irradiation[J]. Carbon, 2007, 45(9): 1795-1801.

    [25] [25] ALLISON D A, JOHANSSON G, ALLAN C J, et al. Molecular spectroscopy by means of ESCA: V. Boron compounds[J]. Journal of Electron Spectroscopy and Related Phenomena, 1972, 1(3): 269-283.

    [26] [26] HGBERG H, LAI C C, BROITMAN E, et al. Reactive sputtering of CSx thin solid films using CS2 as precursor[J]. Vacuum, 2020, 182: 109775.

    [27] [27] LI P P, CAO Y, MAO C J, et al. TiO2/g-C3N4/CdS nanocomposite-based photoelectrochemical biosensor for ultrasensitive evaluation of T4 polynucleotide kinase activity[J]. Analytical Chemistry, 2019, 91(2): 1563-1570.

    [28] [28] ZHONG R Y, ZHANG Z S, YI H Q, et al. Covalently bonded 2D/2D O-g-C3N4/TiO2 heterojunction for enhanced visible-light photocatalytic hydrogen evolution[J]. Applied Catalysis B: Environmental, 2018, 237: 1130-1138.

    [29] [29] CHU J Y, HAN X J, YU Z, et al. Highly efficient visible-light-driven photocatalytic hydrogen production on CdS/Cu7S4/g-C3N4 ternary heterostructures[J]. ACS Applied Materials & Interfaces, 2018, 10(24): 20404-20411.

    [30] [30] TAHIR M, AMIN N S. Photocatalytic reduction of carbon dioxide with water vapors over montmorillonite modified TiO2 nanocomposites[J]. Applied Catalysis B: Environmental, 2013, 142/143: 512-522.

    [31] [31] YUAN X, SUN M, YAO Y, et al. N/Ti3+-codoped triphasic TiO2/g-C3N4 heterojunctions as visible-light photocatalysts for the degradation of organic contaminants[J]. New Journal of Chemistry, 2019, 43: 2665-2675.

    [32] [32] LI Z, PAN X, YI Z. Photocatalytic oxidation of methane over CuO-decorated ZnO nanocatalysts [J]. Journal of Materials Chemistry A, 2019, 7(2): 469-475.

    [33] [33] XIA J X, DI J, YIN S, et al. Facile fabrication of the visible-light-driven Bi2WO6/BiOBr composite with enhanced photocatalytic activity [J]. Rsc Advances, 2013, 4: 82-90.

    [34] [34] HUO Y, CHEN X, ZHANG J, et al. Ordered macroporous Bi2O3/TiO2 film coated on a rotating disk with enhanced photocatalytic activity under visible irradiation [J]. Applied Catalysis B Environmental, 2014, 148-149: 550-556.

    [35] [35] DI J, XIA J X, YIN S, et al. Preparation of sphere-like g-C3N4/BiOI photocatalysts via a reactable ionic liquid for visible-light-driven photocatalytic degradation of pollutants[J]. Journal of Materials Chemistry A, 2014, 2(15): 5340.

    [36] [36] FU H B, ZHANG S C, XU T G, et al. Photocatalytic degradation of RhB by fluorinated Bi2WO6 and distributions of the intermediate products[J]. Environmental Science & Technology, 2008, 42(6): 2085-2091.

    [37] [37] LIU S W, YIN K, REN W S, et al. Tandem photocatalytic oxidation of Rhodamine B over surface fluorinated bismuth vanadate crystals[J]. Journal of Materials Chemistry, 2012, 22(34): 17759.

    [38] [38] DADIGALA R, BANDI R, GANGAPURAM B R, et al. Construction of in situ self-assembled FeWO4/g-C3N4 nanosheet heterostructured Z-scheme photocatalysts for enhanced photocatalytic degradation of rhodamine B and tetracycline[J]. Nanoscale Advances, 2019, 1(1): 322-333.

    [39] [39] JANANI R, MENON S S, BHALERAO G, et al. Zn1-xGaxO1-yNy-graphene oxide nanocomposite for enhanced visible-light photocatalytic activity[J]. Dyes and Pigments, 2019, 165: 249-255.

    [40] [40] LIDDELL P A, KUCIAUSKAS D, SUMIDA J P, et al. Photoinduced charge separation and charge recombination to a triplet state in a carotene-porphyrin-fullerene triad[J]. Journal of the American Chemical Society, 1997, 119(6): 1400-1405.

    [41] [41] YU J G, DAI G P, HUANG B B. Fabrication and characterization of visible-light-driven plasmonic photocatalyst Ag/AgCl/TiO2 nanotube arrays[J]. The Journal of Physical Chemistry C, 2009, 113(37): 16394-16401.

    [42] [42] LI G Y, NIE X, CHEN J Y, et al. Enhanced visible-light-driven photocatalytic inactivation of Escherichia coli using g-C3N4/TiO2 hybrid photocatalyst synthesized using a hydrothermal-calcination approach[J]. Water Research, 2015, 86: 17-24.

    [43] [43] MA J Z, WANG C X, HE H. Enhanced photocatalytic oxidation of NO over g-C3N4-TiO2 under UV and visible light[J]. Applied Catalysis B: Environmental, 2016, 184: 28-34.

    Tools

    Get Citation

    Copy Citation Text

    ZHANG Jing, SHI Qianying, GONG Hao, GUO Yufe, ZHANG Weike. Preparation and Properties of MCNOs/CdS Dual-Effect Photocatalyst[J]. Journal of Synthetic Crystals, 2021, 50(8): 1485

    Download Citation

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

    Category:

    Received: Apr. 8, 2021

    Accepted: --

    Published Online: Nov. 6, 2021

    The Author Email:

    DOI:

    CSTR:32186.14.

    Topics