Journal of the Chinese Ceramic Society, Volume. 52, Issue 1, 122(2024)

Enhanced Photocatalytic Performance of Amorphous Carbon/g-C3N4/Bi2WO6 Ternary Z-Scheme Heterojunction Photocatalyst

ZHENG Jingjing*... SHANG Xili and LIU Guoxia |Show fewer author(s)
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    References(36)

    [1] [1] FANG Wen, HE Hongbo, XUE Shuangshuang, et al. J Chin Ceram Soc, 2016, 44(5): 711-719.

    [2] [2] MUNAWAR T, BASHIR A, NADEEM M S, et al. Core-shell CeO2@C60 hybrid serves as a dual-functional catalyst: Photocatalyst for organic pollutant degradation and electrocatalyst for oxygen evolution reaction[J]. Ceram Int, 2023, 49(5): 8447-8462.

    [3] [3] WANG C T, DANG Y C, PANG X X, et al. A novel S-scheme heterojunction based on 0D/3D CeO2/Bi2O2CO3 for the photocatalytic degradation of organic pollutants[J]. New J Chem, 2022, 46(33): 15987-15998.

    [4] [4] HE H B, XUE S S, WU Z, et al. Sonochemical fabrication, characterization and enhanced photocatalytic performance of Ag2S/Ag2WO4 composite microrods[J]. Chin J Catal, 2016, 37(11): 1841-1850.

    [5] [5] XUE S S, HE H B, WU Z, et al. An interesting Eu, F-codoped BiVO4 microsphere with enhanced photocatalytic performance[J]. J Alloys Compd, 2017, 694: 989-997.

    [6] [6] JIANG Zicong, ZHANG Liuyang, YU Jiaguo. J Chin Ceram Soc, 2023, 51(1): 73-81.

    [7] [7] XIAO Shuning, HUO Mengjia, CHENG Xuejian, et al. J Chin Ceram Soc, 2023, 51(1): 82-93.

    [8] [8] XIAO Y, TAO Y L, JIANG Y H, et al. Construction of core-shell CeO2 nanorods/SnIn4S8 nanosheets heterojunction with rapid spatial electronic migration for effective wastewater purification and H2O2 production[J]. Sep Purif Technol, 2023, 304: 122385.

    [9] [9] CAI M J, LIU Y P, DONG K X, et al. A novel S-scheme heterojunction of Cd0.5Zn0.5S/BiOCl with oxygen defects for antibiotic norfloxacin photodegradation: Performance, mechanism, and intermediates toxicity evaluation[J]. J Colloid Interface Sci, 2023, 629: 276-286.

    [10] [10] WANG H J, TIAN Y M, K-NIG B. Energy- and atom-efficient chemical synthesis with endergonic photocatalysis[J]. Nat Rev Chem, 2022, 6(10): 745-755.

    [11] [11] WANG J, CHEN Y X. Simple synthesis of conjugated polyvinyl alcohol derivative-modified ZnFe2O4 nanoparticles with higher photocatalytic efficiency[J]. Powder Technol, 2022, 402: 117360.

    [12] [12] WU H J, WANG D D, ZHOU P Y, et al. Probing effective charge migration and highly improved photocatalytic activity on Polyaniline/Zn3In2S6 nano-flower under long wavelength light[J]. Sep Purif Technol, 2021, 274: 119004.

    [13] [13] HE H B, LUO Z Z, YU C L. Multifunctional ZnWO4 nanoparticles for photocatalytic removal of pollutants and disinfection of bacteria[J]. J Photochem Photobiol A Chem, 2020, 401: 112735.

    [14] [14] HE H B, LUO Z Z, YU C L. Diatomite-anchored g-C3N4 nanosheets for selective removal of organic dyes[J]. J Alloys Compd, 2020, 816: 152652.

    [15] [15] YU C L, HE H B, LIU X Q, et al. Novel SiO2 nanoparticle-decorated BiOCl nanosheets exhibiting high photocatalytic performances for the removal of organic pollutants[J]. Chin J Catal, 2019, 40(8): 1212-1221.

    [16] [16] BILICI Z, I--K Z, AKTA- Y, et al. Photocatalytic effect of zinc oxide and magnetite entrapped calcium alginate beads for azo dye and hexavalent chromium removal from solutions[J]. J Water Process Eng, 2019, 31: 100826.

    [17] [17] LIU W, WANG M L, XU C X, et al. Facile synthesis of g-C3N4/ZnO composite with enhanced visible light photooxidation and photoreduction properties[J]. Chem Eng J, 2012, 209: 386-393.

    [18] [18] ALAM U, KHAN A, BAHNEMANN D, et al. Synthesis of Co doped ZnWO4 for simultaneous oxidation of RhB and reduction of Cr(VI) under UV-light irradiation[J]. J Environ Chem Eng, 2018, 6(4): 4885-4898.

    [19] [19] HE H B, LUO Z Z, YU C L. Embellish zinc tungstate nanorods with silver chloride nanoparticles for enhanced photocatalytic, antibacterial and antifouling performance[J]. Colloids Surf A Physicochem Eng Aspects, 2021, 613: 126099.

    [20] [20] HE H B, LUO Z Z, TANG Z Y, et al. Controllable construction of ZnWO4 nanostructure with enhanced performance for photosensitized Cr(VI) reduction[J]. Appl Surf Sci, 2019, 490: 460-468.

    [21] [21] KOUTAVARAPU R, REDDY C V, SYED K, et al. Novel Z-scheme binary zinc tungsten oxide/nickel ferrite nanohybrids for photocatalytic reduction of chromium (Cr(VI)), photoelectrochemical water splitting and degradation of toxic organic pollutants[J]. J Hazard Mater, 2022, 423(Pt A): 127044.

    [22] [22] HE H B, JIANG J H, LUO Z Z, et al. Novel starfish-like inorganic/organic heterojunction for Cr(Ⅵ) photocatalytic reduction in neutral solution[J]. Colloids Surf A Physicochem Eng Aspects, 2023, 667: 131357.

    [23] [23] HE Hongbo, XUE Shuangshuang, YU Changlin, et al. Chin J Inorg Chem, 2016, 32(4): 625-632.

    [24] [24] YU C L, HE H B, ZHOU W Q, et al. Novel rugby-ball-like Zn3(PO4)2@C3N4 photocatalyst with highly enhanced visible-light photocatalytic performance[J]. Sep Purif Technol, 2019, 217: 137-146.

    [25] [25] YUN L X, WU H, SHEN Z G, et al. Ultrasmall CeO2 nanoparticles with rich oxygen defects as novel catalysts for efficient glycolysis of polyethylene terephthalate[J]. ACS Sustain Chem Eng, 2022, 10(16): 5278-5287.

    [26] [26] YAO J, XU D X, MA X Z, et al. Trimetallic CoNiFe-layered double hydroxides: Electronic coupling effect and oxygen vacancy for boosting water splitting[J]. J Power Sources, 2022, 524: 231068.

    [27] [27] HE H B, LI J D, YU C L, et al. Surface decoration of microdisk-like g-C3N4/diatomite with Ag/AgCl nanoparticles for application in Cr(VI) reduction[J]. Sustain Mater Technol, 2019, 22: e00127.

    [28] [28] LIU H D, CHENG M, LIU Y, et al. Single atoms meet metal-organic frameworks: Collaborative efforts for efficient photocatalysis[J]. Energy Environ Sci, 2022, 15(9): 3722-3749.

    [29] [29] YU C L, HE H B, FAN Q Z, et al. Novel B-doped BiOCl nanosheets with exposed (001) facets and photocatalytic mechanism of enhanced degradation efficiency for organic pollutants[J]. Sci Total Environ, 2019, 694: 133727.

    [30] [30] YUAN G Q, LI K Z, ZHANG J Z, et al. A novel insight into the microwave induced catalytic reduction mechanism in aqueous Cr(VI) removal over ZnFe2O4 catalyst[J]. J Hazard Mater, 2023, 443: 130211.

    [31] [31] ZHANG Y, LU J C, ZHANG L M, et al. Investigation into the catalytic roles of oxygen vacancies during gaseous styrene degradation process via CeO2 catalysts with four different morphologies[J]. Appl Catal B Environ, 2022, 309: 121249.

    [32] [32] MIAO Y X, ZHAO Y X, ZHANG S, et al. Strain engineering: A boosting strategy for photocatalysis[J]. Adv Mater, 2022, 34(29): e2200868.

    [33] [33] XUE S S, HE H B, FAN Q Z, et al. La/Ce-codoped Bi2O3 composite photocatalysts with high photocatalytic performance in removal of high concentration dye[J]. J Environ Sci (China), 2017, 60: 70-77.

    [34] [34] LI S J, CAI M J, LIU Y P, et al. S-Scheme photocatalyst TaON/Bi2WO6 nanofibers with oxygen vacancies for efficient abatement of antibiotics and Cr(VI): Intermediate eco-toxicity analysis and mechanistic insights[J]. Chin J Catal, 2022, 43(10): 2652-2664.

    [35] [35] HE H B, XIAO J Y, LIU Z B, et al. Boosting the hydrogen evolution of layered double hydroxide by optimizing the electronic structure and accelerating the water dissociation kinetics[J]. Chem Eng J, 2023, 453: 139751.

    [36] [36] HE H B, ZENG L B, PENG X Y, et al. Porous cobalt sulfide nanosheets arrays with low valence copper incorporated for boosting alkaline hydrogen evolution via lattice engineering[J]. Chem Eng J, 2023, 451: 138628.

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    ZHENG Jingjing, SHANG Xili, LIU Guoxia. Enhanced Photocatalytic Performance of Amorphous Carbon/g-C3N4/Bi2WO6 Ternary Z-Scheme Heterojunction Photocatalyst[J]. Journal of the Chinese Ceramic Society, 2024, 52(1): 122

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    Paper Information

    Received: May. 29, 2023

    Accepted: --

    Published Online: Jul. 30, 2024

    The Author Email: Jingjing ZHENG (zjj65050@163.com)

    DOI:

    CSTR:32186.14.

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