[1] H XU, B YANG, Y LIU et al. Recent advances in anaerobic biological processes for textile printing and dyeing wastewater treatment: a mini-review. World Journal of Microbiology and Biotechnology, 34, 165(2018).
[2] H R KHAN, G MURTAZA, M A CHOUDHARY et al. Photocatalytic removal of carcinogenic reactive red S3B dye by using ZnO and Cu doped ZnO nanoparticles synthesized by polyol method: A kinetic study. Solar Energy, 173, 875-881(2018).
[3] R NAIDU, B BISWAS, I R WILLETT et al. Chemical pollution: a growing peril and potential catastrophic risk to humanity. Environment International, 156, 106616(2021).
[4] P DHIMAN, G RANA, A KUMAR et al. ZnO-based heterostructures as photocatalysts for hydrogen generation and depollution: a review. Environmental Chemistry Letters, 20, 1047-1081(2022).
[5] T V ARSHA KUSUMAM, T PANAKKAL, T DIVYA et al. Morphology controlled synthesis and photocatalytic activity of zinc oxide nanostructures. Ceramics International, 42, 3769-3775(2016).
[6] F H WILSON, C TANG, S A BARNARD. Morphology of zinc oxide nanoparticles and nanowires: role of surface and edge energies. The Journal of Physical Chemistry C, 120, 9498-9505(2016).
[7] D SHARMA, T SINGH. A DFT study of polyaniline/ZnO nanocomposite as a photocatalyst for the reduction of methylene blue dye. Journal of Molecular Liquids, 293, 111528(2019).
[8] V VAIANO, G IERVOLINO, L RIZZO. Cu-doped ZnO as efficient photocatalyst for the oxidation of arsenite to arsenate under visible light. Applied Catalysis B: Environmental, 238, 471-479(2018).
[9] Q XIE, Y MA, X WANG et al. Electrostatic assembly of sandwich-like Ag-C@ZnO-C@Ag-C hybrid hollow microspheres with excellent high-rate lithium storage properties. ACS Nano, 10, 1283-1291(2016).
[10] X CHEN, Y LI, X PAN et al. Photocatalytic oxidation of methane over silver decorated zinc oxide nanocatalysts. Nature Communications, 7, 1-8(2016).
[11] K T PATHAK, R E KROON, V CRACIUN et al. Influence of Ag, Au and Pd noble metals doping on structural, optical and antimicrobial properties of zinc oxide and titanium dioxide nanomaterials. Heliyon, 5, e01333(2019).
[12] W H LIN, Y H CHIU, P W SHAO et al. Metal-particle-decorated ZnO nanocrystals: photocatalysis and charge dynamics. ACS Applied Materials & Interfaces, 8, 32754-32763(2016).
[13] Y Y WANG, G Q ZHOU, L ZHANG et al. Synthesis and photocatalytic characterization of porous Cu-doped ZnO nanorods. Acta Physico-Chimica Sinica, 32, 2785-2793(2016).
[14] Genwang WANG, Chaojian HOU, Haotian LONG et al. Electronic and optoelectronic nanodevices based on two-dimensional semiconductor materials. Acta Physico-Chimica Sinica, 35, 1319-1340(2019).
[15] M XU, Y CHEN, W Y HU et al. Designed synthesis of microstructure and defect-controlled Cu-doped ZnO-Ag nanoparticles: exploring high-efficiency sunlight-driven photocatalysts. Journal of Physics D: Applied Physics, 53, 0251036(2019).
[16] Y WANG, M KIM, A S CHABUNGBAM et al. Suppressed oxygen vacancy in pristine/N doped ZnO and improved ZnO homogenous p-n junction performance by H2O2 oxidant. Applied Surface Science, 579, 152170(2022).
[17] X WAN, X LIANG, C ZHANG et al. Morphology controlled syntheses of Cu-doped ZnO, tubular Zn(Cu)O and Ag decorated tubular Zn(Cu)O microcrystals for photocatalysis. Chemical Engineering Journal, 272, 58-68(2015).
[18] P SATHISH, K RAVICHANDRAN, B SAKTHIVEL et al. Enhancing the antibacterial efficiency of ZnO nanopowders synthesized by combustion method through Ag + Fe Co-doping. Acta Metallurgica Sinica (English Letters), 28, 1407-1413(2015).
[19] J LI, H YUAN, Q ZHANG et al. Designed Ag-decorated Mn:ZnO nanocomposite: facile synthesis, and enhanced visible light absorption and photogenerated carrier separation. Physical Chemistry Chemical Physics, 22, 27272-27279(2020).
[20] Yutong LIU, Xiaonan XU, Yu CHEN et al. Comparative study on the synthesis of ZnO nanocrystals by sol-gel and polymer network gel method. Journal of Synthetic Crystals, 5, 0942-0948(2017).
[21] Wenyu HU, Xiaoyi WANG, Huan YUAN et al. Synthesis of Ag-loaded CuO-ZnO nanocomposites by a facile Sol-Gel method for enhanced photocatalytic activity. Meterials Reports, 34, 10018-10023(2020).
[22] H WANG, D PENG, T CHEN et al. A novel photocatalyst AgBr/ZnO/RGO with high visible light photocatalytic activity. Ceramics International, 42, 4406-4412(2016).
[23] D F HERNANDEZ-BARRETO, J P RODRIGUEZ-ESTUPINAN, J C MORENO-PIRAJAN et al. Adsorption and photocatalytic study of phenol using composites of activated carbon prepared from onion leaves (allium fistulosum) and metallic oxides (ZnO and TiO2). Catalysts, 10, 574(2020).
[24] S LIU, L HAN, H LIU. Synthesis, characterization and photocatalytic performance of PbS/Ni2P flowers. Applied Surface Science, 387, 393-398(2016).
[25] X LIU, H CHENG, F FU et al. Fabrication of PbS quantum dots decorated ZnO nanorod arrays on Zn substrate and their visible light photocatalytic application. Materials Letters, 179, 134-137(2016).
[26] A KHATAEE, S AREFI-OSKOUI, M FATHINIA et al. Synthesis, characterization and photocatalytic properties of Er-doped PbSe nanoparticles as a visible light-activated photocatalyst. Journal of Molecular Catalysis A: Chemical, 398, 255-267(2015).
[27] J LI, Q ZHANG, H YUAN et al. Chemically synthesized (Ag, Mn2O3)-codecorated ZnO nanoparticles for achieving superior visible light-induced photodegradation and enhanced gas sensing activity. Physical Chemistry Chemical Physics, 23, 13797-13807(2021).
[28] Y LIN, Y HSU. Interfacial charge carrier dynamics of type-II semiconductor nanoheterostructures. Applied Catalysis B: Environmental, 130, 93-98(2013).
[29] S CHO, J JANG, J KIM et al. Three-dimensional type II ZnO/ZnSe heterostructures and their visible light photocatalytic activities. Langmuir, 27, 10243-10250(2011).
[30] O YAYAPAO, T THONGTEM, A PHURUANGRAT et al. Synthesis and characterization of highly efficient Gd doped ZnO photocatalyst irradiated with ultraviolet and visible radiations. Materials Science in Semiconductor Processing, 39, 786-792(2015).
[31] Y LI, K LIU, J ZHANG, J YNAG et al. Engineering the band-edge of Fe2O3/ZnO nanoplates via separate dual cation incorporation for efficient photocatalytic performance. Industrial & Engineering Chemistry Research, 59, 18865-18872(2020).
[32] N TU, K T NGUYEN, D Q TRUNG et al. Effects of carbon on optical properties of ZnO powder. Journal of Luminescence, 174, 6-10(2016).
[33] D MANIKANDAN, D W BOUKHVALOV, S AMIRTHAPANDIAN et al. An insight into the origin of room-temperature ferromagnetism in SnO2 and Mn-doped SnO2 quantum dots: an experimental and DFT approach. Physical Chemistry Chemical Physics, 20, 6500-6514(2018).
[34] J WANG, Z WANG, B HUANG et al. Oxygen vacancy induced band-gap narrowing and enhanced visible light photocatalytic activity of ZnO. ACS Applied Materials & Interfaces, 4, 4024-4030(2012).
[35] Z WANG, R LIN, Y HUO et al. Formation, detection, and function of oxygen vacancy in metal oxides for solar energy conversion. Advanced Functional Materials, 32, 2109503(2022).
[36] Q ZHANG, X XU, Y LIU et al. A feasible strategy to balance the crystallinity and specific surface area of metal oxide nanocrystals. Scientific Reports, 7, 46424(2017).
[37] Y LIU, Q ZHANG, M XU et al. Novel and efficient synthesis of Ag-ZnO nanoparticles for the sunlight-induced photocatalytic degradation. Applied Surface Science, 476, 632-640(2019).
[38] Q ZHANG, M XU, B YOU et al. Oxygen vacancy-mediated ZnO nanoparticle photocatalyst for degradation of methylene blue. Applied Sciences, 8, 353(2018).
[39] X ZOU, H FAN, Y TIAN et al. Chemical bath deposition of Cu2O quantum dots onto ZnO nanorod arrays for application in photovoltaic devices. RSC Advances, 5, 23401-23409(2015).
[40] Q ZHANG, J LI, M XU. Ag-decorated ZnO-based nanocomposites for visible light-driven photocatalytic degradation: basic understanding and outlook. Journal of Physics D: Applied Physics, 55, 483001(2022).
[41] A DHANALAKSHMI, B NATARAJAN, V RAMADAS et al. Structural, morphological, optical and antibacterial activity of rod-shaped zinc oxide and manganese-doped zinc oxide nanoparticles. Pramana, 87, 1-9(2016).
[42] Y LV, C PAN, X MA et al. Production of visible activity and UV performance enhancement of ZnO photocatalyst via vacuum deoxidation. Applied Catalysis B: Environmental, 138, 26-32(2013).
[43] Y LV, W YAO, X MA et al. The surface oxygen vacancy induced visible activity and enhanced UV activity of a ZnO1-x photocatalyst. Catalysis Science & Technology, 3, 3136-3146(2013).
[44] Y LU, M XU, Q ZHANG et al. Enhanced ultraviolet photocatalytic activity of Ag/ZnO nanoparticles synthesized by modified polymer-network gel method. Journal of Nanoparticle Research, 17, 1-15(2015).
[45] C B ONG, L Y NG, A W MOHAMMAD. A review of ZnO nanoparticles as solar photocatalysts: Synthesis, mechanisms and applications. Renewable and Sustainable Energy Reviews, 81, 536-551(2018).
[46] X ZOU, H FAN, Y TIAN et al. Synthesis of Cu2O/ZnO hetero-nanorod arrays with enhanced visible light-driven photocatalytic activity. CrystEngComm, 16, 1149-1156(2014).
[47] G M REDA, H FAN, H TIAN. Room-temperature solid state synthesis of Co3O4/ZnO p-n heterostructure and its photocatalytic activity. Advanced Powder Technology, 28, 953-963(2017).
[48] T CAO, T XIA, L ZHOU et al. Distribution and concentration of surface oxygen vacancy of TiO2 and its photocatalytic activity. Journal of Physics D: Applied Physics, 53, 424001(2020).
[49] J FANG, H FAN, Y MA et al. Surface defects control for ZnO nanorods synthesized by quenching and their anti-recombination in photocatalysis. Applied Surface Science, 332, 47-54(2015).
[50] S CAO, B SHEN, Q HUANG et al. Effect of sacrificial agents on the dispersion of metal cocatalysts for photocatalytic hydrogen evolution. Applied Surface Science, 442, 361-367(2018).
[51] L XIE, D LU, K K KIRAN et al. Interfacial optimization of oxygen-vacancy-induced 1D/2D CeO2 nanotubes/g-C3N4 step-scheme heterojunction with enhanced visiblelight photocatalysis and mechanism insight. Journal of Alloys and Compounds, 923, 166330(2022).
[52] M V GALLEGOS, C R LUNA, M A PELUSO et al. Effect of Mn in ZnO using DFT calculations: magnetic and electronic changes. Journal of Alloys and Compounds, 795, 254-260(2019).
[53] Zemei PAN, Qiuping ZAHNG, Man SONG et al. Facile synthesis of ZnO/TiO2 nanocomposite photocatalysts and study of their photocatalytic performance. Acta Photonica Sinica, 51, 0416001(2022).