[1] | Gong Y,Wang J,Wei Z,et al. Combination of Carbon Nitride and Carbon Nanotubes:Synergistic Catalysts for Energy Conversion[J]. ChemSusChem,2014,7(8):2303-2309. | [2] | Dai L,Dong W C,Baek J B,et al. Carbon Nanomaterials for Advanced Energy Conversion and Storage[J]. Small,2012,8(8):1122-1122. | [3] | Fujishima A,Honda K.Electrochemical Photolysis of Water at a Semiconductor Electrode[J]. Nature,1972,238(5358):37-38. | [4] | Zhao C,Luo H,Chen F,et al. A Novel Composite of TiO2 Nanotubes with Remarkably High Efficiency for Hydrogen Production in Solar-Driven Water Splitting[J]. Energy Environ Sci,2014,7(5):1700-1707. | [5] | Liu S,Yin K,Ren W,et al. Tandem Photocatalytic Oxidation of Rhodamine B over Surface Fluorinated Bismuth Vanadate Crystals[J]. J Mater Chem,2012,22(34):17759-17767. | [6] | Ong W J,Tan L L,Ng Y H,et al. Graphitic Carbon Nitride (g-C3N4)-Based Photocatalysts for Artificial Photosynthesis and Environmental Remediation:Are We a Step Closer to Achieving Sustainability?[J]. Chem Rev,2016,116(12):7159-7329. | [7] | Jang E S,Won J H,Hwang S J,et al. Fine Tuning of the Face Orientation of ZnO Crystals to Optimize Their Photocatalytic Activity[J]. Adv Mater,2006,18(24):3309-3312. | [8] | Wang X,Liao M,Zhong Y,et al. ZnO Hollow Spheres with Double-Yolk Egg Structure for High-Performance Photocatalysts and Photodetectors[J]. Adv Mater,2012,24(25):3421-3425. | [9] | Wu S,Cao H,Yin S,et al. Amino Acid-Assisted Hydrothermal Synthesis and Photocatalysis of SnO2 Nanocrystals[J]. J Phys Chem C,2009,113(41):17893-17898. | [10] | Liu S,Huang G,Yu J,et al. Porous Fluorinated SnO2 Hollow Nanospheres:Transformative Self-assembly and Photocatalytic Inactivation of Bacteria[J]. ACS Appl Mater Interfaces,2014,6(4):2407-2414. | [11] | And S W C,Zhu Y J. Hierarchically Nanostructured α-Fe2O3 Hollow Spheres:Preparation, Growth Mechanism, Photocatalytic Property, and Application in Water Treatment[J]. J Phys Chem C,2008,112(16):6253-6257. | [12] | Zhou X M,Xu Q L,Lei W Y.Origin of Tunable Photocatalytic Selectivity of Well-Defined α-Fe2O3 Nanocrystals[J]. Small,2014,10(4):674-679. | [13] | Liu S,Yin K,Ren W,et al. Tandem Photocatalytic Oxidation of Rhodamine B over Surface Fluorinated Bismuth Vanadate Crystals[J]. J Mater Chem,2012,22(34):17759-17767. | [14] | Cao S W,Yin Z,Barber J,et al. Preparation of Au-BiVO4 Heterogeneous Nanostructures as Highly Efficient Visible-Light Photocatalysts[J]. ACS Appl Mater Interfaces,2012,4(1):418-423. | [15] | Huang W C,Lyu L M,Yang Y C,et al. Synthesis of Cu2O Nanocrystals from Cubic to Rhombic Dodecahedral Structures and Their Comparative Photocatalytic Activity[J]. J Am Chem Soc,2012,134(2):1261-1267. | [16] | An X,Li K,Tang J.Cu2O/Reduced Graphene Oxide Composites for the Photocatalytic Conversion of CO2[J]. ChemSusChem,2014,7(4):1086-1093. | [17] | Xiang Q,Cheng B,Yu J.Hierarchical porous CdS Nanosheet-Assembled Flowers with Enhanced Visible-Light Photocatalytic H2-Production Performance[J]. Appl Catal B,2013,138(14):299-303. | [18] | She X,Liang L,Ji H,et al. Template-free Synthesis of 2D Porous Ultrathin Nonmetal-doped g-C3N4, Nanosheets with Highly Efficient Photocatalytic H2, Evolution from Water under Visible Light[J]. Appl Catal B,2016,187(5):144-153. | [19] | Zheng Y,Lin L,Ye X,et al. Helical Graphitic Carbon Nitrides with Photocatalytic and Optical Activities[J]. Angew Chem,2014,53(44):11926. | [20] | Gao X C,Jiao X J,Zhang L C,et al. Cosolvent-free Nanocasting Synthesis of Ordered Mesoporous g-C3N4 and Its Remarkable Photocatalytic Activity for Methyl Orange Degradation[J]. RSC Adv,2015,5(94):76963-76972. | [21] | Sun J,Zhang J,Zhang M,et al. Bioinspired Hollow Semiconductor Nanospheres as Photosynthetic Nanoparticles[J]. Nat Commun,2012,3(4):1139. | [22] | Ansari M B,Min B H,Mo Y H,et al. CO2 Activation and Promotional Effect in the Oxidation of Cyclic Olefins over Mesoporous Carbon Nitrides[J]. Green Chem,2011,13(3):1416-1421. | [23] | Ansari M B,Jin H,Parvin M N,et al. Mesoporous Carbon Nitride as a Metal-Free Base Catalyst in the Microwave Assisted Knoevenagel Condensation of Ethylcyanoacetate with Aromatic Aldehydes[J]. Catal Today,2012,185(1):211-216. | [24] | Chen X,Jun Y S,Takanabe K,et al. Ordered Mesoporous SBA-15 Type Graphitic Carbon Nitride:A Semiconductor Host Structure for Photocatalytic Hydrogen Evolution with Visible Light[J]. Chem Mater,2009,21(18):4093-4095. | [25] | Zhang J,Guo F,Wang X.An Optimized and General Synthetic Strategy for Fabrication of Polymeric Carbon Nitride Nanoarchitectures[J]. Adv Funct Mater,2013,23(23):3008-3014. | [26] | Li X H,Zhang J,Chen X,et al. Condensed Graphitic Carbon Nitride Nanorods by Nanoconfinement:Promotion of Crystallinity on Photocatalytic Conversion[J]. Chem Mater,2011,23(19):4344-4348. | [27] | CHEN Yan,LIU Haibo.Construction and Photocatalytic Performance of Ultrathin Graphitic Carbon Nitride Nanosheets[J]. Chinese J Inorg Chem,2017,33(12):2255-2261(in Chinese). 陈艳,刘海波. 超薄石墨相氮化碳纳米片的构建及其光催化作用[J]. 无机化学学报,2017,33(12):2255-2261. | [28] | Liu Q,Chen T,Guo Y,et al. Grafting Fe(Ⅲ) Species on Carbon Nanodots/Fe-doped g-C3N4, via Interfacial Charge Transfer Effect for Highly Improved Photocatalytic Performance[J]. Appl Catal B,2017,205:173-181. | [29] | Cui Y,Ding Z,Fu X,et al . Construction of Conjugated Carbon Nitride Nanoarchitectures in Solution at Low Temperatures for Photoredox Catalysis[J]. Angew Chem,2012,124(47):11814-11818. | [30] | Xu H,Yan J,She X,et al. Graphene-Analogue Carbon Nitride:Novel Exfoliation Synthesis and Its Application in Photocatalysis and Photoelectrochemical Selective Detection of Trace Amount of Cu2+[J]. Nanoscale,2014,6(3):1406-1415. | [31] | Chang Y,Liu Z,Fu Z,et al. Preparation and Characterization of One-Dimensional Core-Shell Sepiolite/Polypyrrole Nanocomposites and Effect of Organic Modification on the Electrochemical Properties[J]. Ind Eng Chem Res,2014,53(1):38-47. | [32] | She X,Xu H,Xu Y,et al. Exfoliated Graphene-Like Carbon Nitride in Organic Solvents:Enhanced Photocatalytic Activity and Highly Selective and Sensitive Sensor for the Detection of Trace Amounts of Cu2+[J]. J Mater Chem A,2014,2(8):2563-2570. | [33] | Li J,Shen B,Hong Z,et al. A Facile Approach to Synthesize Novel Oxygen-Doped g-C3N4 with Superior Visible-Light Photoreactivity[J]. Chem Commun,2012,48(98):12017-12019. | [34] | Li H J,Sun B W,Sui L,et al. Preparation of Water-Dispersible Porous g-C3N4 with Improved Photocatalytic Activity by Chemical Oxidation[J]. Phys Chem Chem Phys,2015,17(5):3309-3315. | [35] | Yang S,Gong Y,Zhang J,et al. ChemInform Abstract:Exfoliated Graphitic Carbon Nitride Nanosheets as Efficient Catalysts for Hydrogen Evolution under Visible Light[J]. Adv Mater,2013,25(17):2452-2456. | [36] | Zhang J,Zhang M,Zhang G,et al. Synthesis of Carbon Nitride Semiconductors in Sulfur Flux for Water Photoredox Catalysis[J]. ACS Catal,2012,2(2):940-948. | [37] | Onoe T,Iwamoto S,Inoue M.Synthesis and Activity of the Pt Catalyst Supported on CNT[J]. Catal Commun,2007,8(4):701-706. | [38] | Liu C,Huang H,Ye L,et al. Intermediate-Mediated Strategy to Horn-like Hollow Mesoporous Ultrathin g-C3N4 Tube with Spatial Anisotropic Charge Separation for Superior Photocatalytic H2 Evolution[J]. Nano Energy,2017,10(41):738-748. | [39] | Sureshkumar,Manthiriyappan,Siswanto,et al. Antibacterial and Biocompatible Surfaces Based on Dopamine Autooxidized Silver Nanoparticles[J]. J Polym Sci Part B:Polym Phys,2013,51(4):303-310. | [40] | Hu H,Yu B,Ye Q,et al. Modification of Carbon Nanotubes with a Nanothin Polydopamine Layer and Polydimethylamino-ethyl Methacrylate Brushes[J]. Carbon,2010,48(8):2347-2353. | [41] | Zhang J,Zhang M,Yang C,et al. Nanospherical Carbon Nitride Frameworks with Sharp Edges Accelerating Charge Collection and Separation at a Soft Photocatalytic Interface[J]. Adv Mater,2014,26(24):4121-4126. | [42] | Xie Y B.Photoelectrochemical Reactivity of a Hybrid Electrode Composed of Polyoxophosphotungstate Encapsulated in Titania Nanotubes[J]. Adv Funct Mater,2010,16(14):1823-1831. |
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