[1] 张浩杰, 张雯, 姜丰, 等. 太阳能光解水制氢的核心催化剂及多场耦合研究进展[J]. 化学工业与工程, 2022, 39(1): 1-10 ZHANG Haojie, ZHANG Wen, JIANG Feng, et al. Progress of the key catalyst for solar photolysis of water to produce hydrogen and research on multi-field coupling[J]. Chemical Industry and Engineering, 2022, 39(1): 1-10(in Chinese)
[2] CHONG M, JIN B, CHOW C W K, et al. Recent developments in photocatalytic water treatment technology: A review[J]. Water Research, 2010, 44(10): 2997-3027
[3] FUJISHIMA A, HONDA K. Electrochemical photolysis of water at a semiconductor electrode[J]. Nature, 1972, 238(5358): 37-38
[4] DAI B, GUO J, GAO C, et al. Recent advances in efficient photocatalysis via modulation of electric and magnetic fields and reactive phase control[J]. Advanced Materials, 2023: 2210914
[5] 尚贞晓, 袁佳钰, 王凯玫, 等. MnWO4/WO3的制备及其光催化性能的研究[J]. 化学工业与工程, 2022, 39(5): 11-20 SHANG Zhenxiao, YUAN Jiayu, WANG Kaimei, et al. Preparation of MnWO4/WO3 and its photocatalytic performance[J]. Chemical Industry and Engineering, 2022, 39(5): 11-20(in Chinese)
[6] HUANG D, CHEN S, ZENG G, et al. Artificial Z-scheme photocatalytic system: What have been done and where to go?[J]. Coordination Chemistry Reviews, 2019, 385: 44-80
[7] LOW J, YU J, JARONIEC M, et al. Heterojunction photocatalysts[J]. Advanced Materials (Deerfield Beach, Fla), 2017, 29(20)1601694
[8] 陈杰, 李明明, 刘治刚, 等. Fe3O4@TiO2核壳微球吸附-光催化联合去除四环素性能[J]. 化学研究与应用, 2022, 34(8): 1803-1812 CHEN Jie, LI Mingming, LIU Zhigang, et al. Removal of tetracycline by Fe3O4@TiO2 core-shell microsphere combined with adsorption-photocatalysis[J]. Chemical Research and Application, 2022, 34(8): 1803-1812(in Chinese)
[9] LINIC S, CHRISTOPHER P, INGRAM D B. Plasmonic-metal nanostructures for efficient conversion of solar to chemical energy[J]. Nature Materials, 2011, 10(12): 911-921
[10] LIU C, ZHANG Q, ZOU Z. Recent advances in designing ZnIn2S4-based heterostructured photocatalysts for hydrogen evolution[J]. Journal of Materials Science & Technology, 2023, 139: 167-188
[11] ZHAO S, YANG Y, BI F, et al. Oxygen vacancies in the catalyst: Efficient degradation of gaseous pollutants[J]. Chemical Engineering Journal, 2023, 454: 140376
[12] CHEN R, REN Z, LIANG Y, et al. Spatiotemporal imaging of charge transfer in photocatalyst particles[J]. Nature, 2022, 610(7931): 296-301
[13] SHIRAKAWA H, LOUIS E J, MACDIARMID A G, et al. Synthesis of electrically conducting organic polymers: Halogen derivatives of polyacetylene, (CH) X[J]. Journal of the Chemical Society, Chemical Communications, 1977(16): 578
[14] JIA X, GE Y, SHAO L, et al. Tunable conducting polymers: Toward sustainable and versatile batteries[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(17): 14321-14340
[15] LONG Y, LI M, GU C, et al. Recent advances in synthesis, physical properties and applications of conducting polymer nanotubes and nanofibers[J]. Progress in Polymer Science, 2011, 36(10): 1415-1442
[16] ?IRI?-MARJANOVI? G. Recent advances in polyaniline research: Polymerization mechanisms, structural aspects, properties and applications[J]. Synthetic Metals, 2013, 177: 1-47
[17] SINGH P, KUSHWAHA C S, SHUKLA S K, et al. Synthesis and humidity sensing properties of NiO intercalated polyaniline nanocomposite[J]. Polymer-Plastics Technology and Materials, 2019, 58(2): 139-147
[18] SINGH P, SHUKLA S K. Advances in polyaniline-based nanocomposites[J]. Journal of Materials Science, 2020, 55(4): 1331-1365
[19] MAJEED A H, MOHAMMED L A, HAMMOODI O G, et al. A review on polyaniline: Synthesis, properties, nanocomposites, and electrochemical applications[J]. International Journal of Polymer Science, 2022, 2022: 1-19
[20] CHEN D, YI X, ZHAO C, et al. Polyaniline modified MIL-100(Fe) for enhanced photocatalytic Cr(VI) reduction and tetracycline degradation under white light[J]. Chemosphere, 2020, 245: 125659
[21] YADAV A, KUMAR H, SHARMA R, et al. Influence of polyaniline on the photocatalytic properties of metal nanocomposites: A review[J]. Colloid and Interface Science Communications, 2021, 40: 100339
[22] BU Y, CHEN Z. Role of polyaniline on the photocatalytic degradation and stability performance of the polyaniline/silver/silver phosphate composite under visible light[J]. ACS Applied Materials & Interfaces, 2014, 6(20): 17589-17598
[23] STEJSKAL J. Recent advances in the removal of organic dyes from aqueous media with conducting polymers, polyaniline and polypyrrole, and their composites[J]. Polymers, 2022, 14(19): 4243
[24] KANG E, NEOH K G, TAN K. Polyaniline: A polymer with many interesting intrinsic redox states[J]. Progress in Polymer Science, 1998, 23(2): 277-324
[25] MACDIARMID A G, EPSTEIN A J. Polyanilines: A novel class of conducting polymers[J]. Faraday Discussions of the Chemical Society, 1989, 88(1): 317-332
[26] 曹慧, 庞智, 高肖汉, 等. 有机酸掺杂聚苯胺的研究进展[J]. 化工进展, 2016, 35(10): 3226-3235 CAO Hui, PANG Zhi, GAO Xiaohan, et al. Research progress of organic acids doped polyaniline[J]. Chemical Industry and Engineering Progress, 2016, 35(10): 3226-3235(in Chinese)
[27] STEJSKAL J, SAPURINA I. Polyaniline: Thin films and colloidal dispersions (IUPAC technical report)[J]. Pure and Applied Chemistry, 2005, 77(5): 815-826
[28] KRUKIEWICZ K, KATUNIN A. The effect of reaction medium on the conductivity and morphology of polyaniline doped with camphorsulfonic acid[J]. Synthetic Metals, 2016, 214: 45-49
[29] ZENG X, KO T M. Structures and properties of chemically reduced polyanilines[J]. Polymer, 1998, 39(5): 1187-1195
[30] LIN S, RONG T, BAO J, et al. Electrical characterization induced in pernigraniline by potassium ion implantation[J]. Synthetic Metals, 1994, 63(1): 17-21
[31] CORTÉS M T, SIERRA E V. Effect of synthesis parameters in polyaniline: Influence on yield and thermal behavior[J]. Polymer Bulletin, 2006, 56(1): 37-45
[32] AYAD M M, SHENASHIN M A. Polyaniline film deposition from the oxidative polymerization of aniline using K2Cr2O7[J]. European Polymer Journal, 2004, 40(1): 197-202
[33] MOON D K, MARUYAMA T, OSAKADA K, et al. Chemical oxidation of polyaniline by radical generating reagents, O2, H2O2-FeCl3Catalyst, and dibenzoyl peroxide[J]. Chemistry Letters, 1991, 20(9): 1633-1636
[34] WANG B, HE J, SUN D, et al. Preparation of β-cyclodextrin-polyaniline complex in supercritical CO2[J]. European Polymer Journal, 2005, 41(10): 2483-2487
[35] DING H, YANG Z, YANG H, et al. A study on the synthesis, characterization and properties of polyaniline nanofibers using ferric chloride as both oxidant and dopant[J]. Advanced Materials Research, 2013, 807/808/809: 2757-2761
[36] BHADRA S, KHASTGIR D, SINGHA N K, et al. Progress in preparation, processing and applications of polyaniline[J]. Progress in Polymer Science, 2009, 34(8): 783-810
[37] ZHANG H, WANG J, WANG Z, et al. Electrodeposition of polyaniline nanostructures: A lamellar structure[J]. Synthetic Metals, 2009, 159(3/4): 277-281
[38] WANG K, HUANG J, WEI Z. Conducting polyaniline nanowire arrays for high performance supercapacitors[J]. The Journal of Physical Chemistry C, 2010, 114(17): 8062-8067
[39] KELLENBERGER A, PLESU N, TARA-LUNGA MIHALI M, et al. Synthesis of polyaniline nanostructures by electrochemical deposition on niobium[J]. Polymer, 2013, 54(13): 3166-3174
[40] JIANG H, LIU X. One-dimensional growth and electrochemical properties of polyaniline deposited by a pulse potentiostatic method[J]. Electrochimica Acta, 2010, 55(24): 7175-7181
[41] RABIA M, MOHAMED H S H, SHABAN M, et al. Preparation of polyaniline/PbS core-shell nano/microcomposite and its application for photocatalytic H2 electrogeneration from H2O[J]. Scientific Reports, 2018, 8(1): 1-11
[42] HANAFI N N, SAMBASEVAM K P, ARIFUTZZAMAN A, et al. Solar-driven degradation of 2-chlorophenol using PANI/GO as photocatalyst[J]. Orbital: the Electronic Journal of Chemistry, 2020, 12(4): 205-212
[43] AHAMAD T, NAUSHAD M, ALZAHARANI Y, et al. Photocatalytic degradation of bisphenol-a with g-C3N4/MoS2-PANI nanocomposite: Kinetics, main active species, intermediates and pathways[J]. Journal of Molecular Liquids, 2020, 311: 113339
[44] LI B, LI Y, KANG Y. Simple hydrothermal preparation of novel Bi2O3/PANI heterojunction with significantly enhanced visible-light photocatalytic activity and stability[J]. Materials Letters, 2021, 286: 129226
[45] CHEN D, YI X, LING L, et al. Photocatalytic Cr(VI) sequestration and photo-Fenton bisphenol A decomposition over white light responsive PANI/MIL-88A(Fe)[J]. Applied Organometallic Chemistry, 2020, 34(9): e5795
[46] WANG L, ZENG H, XIONG J, et al. BiVO4/PANI composite with p-n heterostructure for enhanced photocatalytic activity towards Cr(VI) reduction[J]. Vacuum, 2022, 202: 111203
[47] SHARMA V, MAIVIZHIKANNAN V, RAO V N, et al. Sea urchin shaped ZnO coupled with MoS2 and polyaniline as highly efficient photocatalysts for organic pollutant decomposition and hydrogen evolution[J]. Ceramics International, 2021, 47(7): 10301-10313
[48] PENG D, ZENG H, XIONG J, et al. Improved photocatalytic performance of p-n heterostructure Ag-Ag2MoO4/polyaniline for chromium (VI) reduction and dye degradation[J]. Journal of Alloys and Compounds, 2022, 912: 165063
[49] VELEMPINI T, PRABAKARAN E, PILLAY K. Photocatalytic reductive applications of C-doped ZrO2/PANI composite towards Cr(VI)[J]. Journal of Photochemistry and Photobiology A: Chemistry, 2022, 426: 113737
[50] SHARMA S, KUMAR D, KHARE N. Hierarchical PANI/ZnO nanocomposite: Synthesis and synergistic effect of shape-selective ZnO nanoflowers and polyaniline sensitization for efficient photocatalytic dye degradation and photoelectrochemical water splitting[J]. Nanotechnology, 2020, 31(46): 465402
[51] JING L, XU Y, XIE M, et al. Three dimensional polyaniline/MgIn2S4 nanoflower photocatalysts accelerated interfacial charge transfer for the photoreduction of Cr(VI), photodegradation of organic pollution and photocatalytic H2 production[J]. Chemical Engineering Journal, 2019, 360: 1601-1612
[52] NIU B, XU Z. A stable Ta3N5@PANI core-shell photocatalyst: Shell thickness effect, high-efficient photocatalytic performance and enhanced mechanism[J]. Journal of Catalysis, 2019, 371: 175-184
[53] WANG T, WU D, WANG Y, et al. One-step solvothermal fabrication of Cu@ PANI core-shell nanospheres for hydrogen evolution [J]. Nanoscale, 2018, 10(46): 22055-22064
[54] SRAVYA S, RAMADEVI D, BELACHEW N, et al. Vitamin C assisted synthesis of rGO-Ag/PANI nanocomposites for improved photocatalytic degradation of pharmaceutical wastes[J]. RSC Advances, 2021, 11(20): 12030-12035
[55] LI T, CUI J, GAO L, et al. Competitive self-assembly of PANI confined MoS2 boosting the photocatalytic activity of the graphitic carbon nitride[J]. ACS Sustainable Chemistry & Engineering, 2020, 8(35): 13352-13361
[56] WANG Y, CHEN D, ZHANG J, et al. Charge relays via dual carbon-actions on nanostructured BiVO4 for high performance photoelectrochemical water splitting[J]. Advanced Functional Materials, 2022, 32(13): 2112738
[57] GAUR R, SHAHABUDDIN S, AHMAD I. Novel MAX phase/polyaniline nanocomposite for photocatalytic degradation of toxic industrial dye[J]. Materials Letters, 2022, 325: 132888
[58] Naciri Y, Hsini A, Bouziani A, et al. Z-scheme WO3/PANI heterojunctions with enhanced photocatalytic activity under visible light: A depth experimental and DFT studies[J]. Chemosphere, 2022, 292: 133468
[59] MONDAL P, SATRA J, GHORUI U K, et al. Facile fabrication of novel hetero-structured organic-inorganic high-performance nanocatalyst: A smart system for enhanced catalytic activity toward ciprofloxacin degradation and oxygen reduction[J]. ACS Applied Nano Materials, 2018, 1(11): 6015-6026
[60] FAISAL M, JALALAH M, HARRAZ F A, et al. A novel Ag/PANI/ZnTiO3 ternary nanocomposite as a highly efficient visible-light-driven photocatalyst[J]. Separation and Purification Technology, 2021, 256: 117847
[61] KHAN F, ZAHID M, BHATTI H N, et al. Degradation of persistent organic pollutant using Ag-doped ZnO-ZnS-polyaniline composite as photocatalyst[J].International Journal of Environmental Science and Technology, 2023, 20(5): 4811-4826
[62] HOSSEINI M G, SEFIDI P Y, MERT A M, et al. Investigation of solar-induced photoelectrochemical water splitting and photocatalytic dye removal activities of camphor sulfonic acid doped polyaniline-WO3-MWCNT ternary nanocomposite[J]. Journal of Materials Science & Technology, 2020, 38: 7-18
[63] AL-SAIDA B, AMER W A, KANDYEL E E, et al. Enhanced dual catalytic activities of silver-polyaniline/titanium dioxide magnetic nanocomposite[J]. Journal of Photochemistry and Photobiology A: Chemistry, 2020, 392: 112423
[64] NAWAZ H, UMAR M, NAWAZ I, et al. Photodegradation of textile pollutants by nanocomposite membranes of polyvinylidene fluoride integrated with polyaniline-titanium dioxide nanotubes[J]. Chemical Engineering Journal, 2021, 419: 129542
[65] SAYED M A, AHMED M A, EL-SHAHAT M F, et al. Mesoporous polyaniline/SnO2 nanospheres for enhanced photocatalytic degradation of bio-staining fluorescent dye from an aqueous environment[J]. Inorganic Chemistry Communications, 2022, 139: 109326
[66] SHARMA S, KUMAR D, KHARE N. Hierarchical PANI/CdS nanoarchitecture system for visible light induced photocatalytic dye degradation and photoelectrochemical water splitting[J]. Polymer, 2021, 231: 124117
[67] BARAKAT M A, KUMAR R, ALMEELBI T, et al. Sustainable visible light photocatalytic scavenging of the noxious organic pollutant using recyclable and reusable polyaniline coupled WO3/WS2 nanohybrid[J]. Journal of Cleaner Production, 2022, 330: 129942
[68] DAI W, JIANG L, WANG J, et al. Efficient and stable photocatalytic degradation of tetracycline wastewater by 3D Polyaniline/Perylene diimide organic heterojunction under visible light irradiation[J]. Chemical Engineering Journal, 2020, 397: 125476
[69] CHEN A, WANG A, ZHU W, et al. Efficient catalytic activity of BiOBr@polyaniline-MnO2ternary nanocomposites for sunlight-driven photodegradation of ciprofloxacin[J]. Journal of Photochemistry and Photobiology A: Chemistry, 2020, 386: 112126
[70] JIA Y, ZHANG Y, ZHANG X, et al. Novel CdS/PANI/MWCNTs photocatalysts for photocatalytic degradation of xanthate in wastewater[J]. Separation and Purification Technology, 2023, 309: 123022
[71] YUAN J, LI H, WANG G, et al. Adsorption, isolated electron/hole transport, and confined catalysis coupling to enhance the photocatalytic degradation performance[J]. Applied Catalysis B: Environmental, 2022, 303: 120892
[72] ZHANG R, HAN Q, LI Y, et al. Solvothermal synthesis of a peony flower-like dual Z-scheme PANI/BiOBr/ZnFe2O4 photocatalyst with excellent photocatalytic redox activity for organic pollutant under visible-light[J]. Separation and Purification Technology, 2020, 234: 116098
[73] MA J, DAI J, DUAN Y, et al. Fabrication of PANI-TiO2/rGO hybrid composites for enhanced photocatalysis of pollutant removal and hydrogen production[J]. Renewable Energy, 2020, 156: 1008-1018
[74] HE Y, CHENG A, MA W, et al. Charge separation accelerated in the interface of AgBr/layered double hydroxides Z-scheme heterojunction by insertion of polyaniline: Mechanism and performance[J]. Applied Surface Science, 2022, 605: 154764
[75] BALAKUMAR V, RAMALINGAM M, SEKAR K, et al. Fabrication and characterization of carbon quantum dots decorated hollow porous graphitic carbon nitride through polyaniline for photocatalysis[J]. Chemical Engineering Journal, 2021, 426: 131739
[76] SADDAM S K, VENNAPOOSA C S, TIWARI A, et al. Polyaniline encapsulated Ti-MOF/CoS for efficient photocatalytic hydrogen evolution[J]. International Journal of Hydrogen Energy, 2022, 47(80): 33955-33965
[77] ZHAO Y, FANG X, CHEN L, et al. Improved proton adsorption and charge separation on cadmium sulfides for photocatalytic hydrogen production[J]. Energy Technology, 2022, 10(12): 2200300
[78] SINGH A K, GONUGUNTLA S, MAHAJAN B, et al. Noble metal-free integrated UiO-66-PANI-Co3O4 catalyst for visible-light-induced H2 production[J]. Chemical Communications, 2019, 55(96): 14494-14497
[79] CHEN Z, FAN T, ZHANG Q, et al. Interface engineering: Surface hydrophilic regulation of LaFeO3 towards enhanced visible light photocatalytic hydrogen evolution[J]. Journal of Colloid and Interface Science, 2019, 536: 105-111
[80] SK S, MONDAL I, MAHATA A, et al. Function of defects in NH2-MIL-125@PANI@Co3O4 photocatalyst for efficient hydrogen evolution[J]. ACS Applied Energy Materials, 2022, 5(10): 12324-12335
[81] KRISHNAN A, BHAGYA T C, SHIBLI S M A. Facile synthesis of a versatile Ti/Ti-W@PANI nanocomposite for sustainable hydrogen production under solar irradiation[J]. Applied Surface Science, 2020, 507: 145093
[82] WEI P, ZHANG P, ZHANG Y, et al. Highly efficient photocatalytic overall water splitting on plasmonic Cu6Sn5/polyaniline nanocomposites[J]. Journal of Colloid and Interface Science, 2022, 609: 785-793
[83] WANG C, WANG L, JIN J, et al. Probing effective photocorrosion inhibition and highly improved photocatalytic hydrogen production on monodisperse PANI@CdS core-shell nanospheres[J]. Applied Catalysis B: Environmental, 2016, 188: 351-359
[84] KIM H, OH M H, YANG B. Photocorrosion of polyaniline-ZnS-ZnO photoelectrode for water splitting[J]. Thin Solid Films, 2020, 693: 137678
[85] WU H, WANG D, ZHOU P, et al. Probing effective charge migration and highly improved photocatalytic activity on polyaniline/Zn3In2S6 nano-flower under long wavelength light[J]. Separation and Purification Technology, 2021, 274: 119004
[86] CUI Z, TIAN S, LIU X, et al. Electrospinning preparation of TPU/TiO2/PANI fiber membrane with enhanced dye degradation and photocatalytic Cr(VI) reduction[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2023, 664: 131111
[87] LI J, PENG T, ZHANG Y, et al. Polyaniline modified SnO2 nanoparticles for efficient photocatalytic reduction of aqueous Cr(VI) under visible light[J]. Separation and Purification Technology, 2018, 201: 120-129
[88] FEIZPOOR S, HABIBI-YANGJEH A, YUBUTA K, et al. Fabrication of TiO2/CoMoO4/PANI nanocomposites with enhanced photocatalytic performances for removal of organic and inorganic pollutants under visible light[J]. Materials Chemistry and Physics, 2019, 224: 10-21
[89] ZHANG F, ZHANG Y, ZHANG G, et al. Exceptional synergistic enhancement of the photocatalytic activity of SnS2 by coupling with polyaniline and N-doped reduced graphene oxide[J]. Applied Catalysis B: Environmental, 2018, 236: 53-63
[90] HE X, HE T, LIU Y, et al. Enhanced adsorption and near-infrared photo reduction of Cr(Ⅵ) on polyaniline modified SnS2 nanosheets[J]. Applied Surface Science, 2022, 606: 154936
[91] DENG X, CHEN Y, WEN J, et al. Polyaniline-TiO2 composite photocatalysts for light-driven hexavalent chromium ions reduction[J]. Science Bulletin, 2020, 65(2): 105-112
[92] HUANG X, WANG S, ZHAI W, et al. Efficient visible-light-driven photocatalytic reduction of hexavalent chromium by three-dimensional heterostructure PANI@SnS2@carbon sphere[J]. Applied Surface Science, 2021, 557: 149797
[93] ZHANG F, ZHANG Y, WANG Y, et al. Efficient photocatalytic reduction of aqueous Cr (VI) by Zr4+ doped and polyaniline coupled SnS2 nanoflakes[J]. Separation and Purification Technology, 2022, 283: 120161
|