人工晶体学报, 2020, 49 (4): 744, 网络出版: 2020-06-15   

石墨氮化碳光催化剂的制备及其改性研究进展

Research Progress on Preparation and Modification of Graphite Carbon Nitride Photocatalyst
作者单位
1 佛山科学技术学院交通与土木建筑学院,佛山 528000
2 佛山科学技术学院环境与化学工程学院,佛山 528000
引用该论文

赖树锋, 肖开棒, 梁锦芝, 林锴淳, 许伟城, 江学顶. 石墨氮化碳光催化剂的制备及其改性研究进展[J]. 人工晶体学报, 2020, 49(4): 744.

LAI Shufeng, XIAO Kaibang, LIANG Jinzhi, LIN Kaichun, XU Weicheng, JIANG Xueding. Research Progress on Preparation and Modification of Graphite Carbon Nitride Photocatalyst[J]. Journal of Synthetic Crystals, 2020, 49(4): 744.

参考文献

[1] Gong X, Huang D, Liu Y, et al. Stabilized nanoscale zerovalent iron mediated cadmium accumulation and oxidative damage of boehmeria nivea (L.) gaudich cultivated in cadmium contaminated sediments[J].Environmental science & technology,2017,51(19):11308-11316.

[2] Guo X, Peng Z, Huang D, et al. Biotransformation of cadmium-sulfamethazine combined pollutant in aqueous environments:phanerochaete chrysosporium bring cautious optimism[J].Chemical Engineering Journal,2018,347:74-83.

[3] Huang D, Xue W, Zeng G, et al. Immobilization of Cd in river sediments by sodium alginate modified nanoscale zero-valent iron:impact on enzyme activities and microbial community diversity[J].Water research,2016,106:15-25.

[4] Wang M, Guo P, Chai T, et al. Effects of Cu dopants on the structures and photocatalytic performance of cocoon-Like Cu-BiVO4 prepared via ethylene glycol solvothermal method[J].Journal of Alloys & Compounds,2017,691:8-14.

[5] Huang Y, Lu Y, Lin Y, et al. Cerium-based hybrid nanorods for synergetic photo-thermocatalytic degradation of organic pollutants[J].Journal of Materials Chemistry A,2018,6(48):24740-24747.

[6] Ye K, Li Y, Yang H, et al. An Ultrathin carbon layer activated CeO2 heterojunction nanorods for photocatalytic degradation of organic pollutants[J].Applied Catalysis B:Environmental,2019,259:118085.

[7] 李佳宇,李法云,王艳杰,等.石墨相氮化碳及其改性对有机污染物的光催化降解[J].环境保护科学,2018,44(5):60-66.

[8] 李 娟,赵 丹,马占强.石墨相氮化碳基复合光催化剂的研究进展[J].人工晶体学报,2018,47(7):1491-1499.

[9] Meng Y, Zhang L, Jiu H, et al. Construction of g-C3N4/ZIF-67 photocatalyst with enhanced photocatalytic CO2 reduction activity[J].Materials Science in Semiconductor Processing,2019,95:35-41.

[10] Tang J, Guo R, Pan W, et al. Visible light activated photocatalytic behaviour of Eu (III) modified g-C3N4 for CO2 reduction and H2 evolution[J].Applied Surface Science,2019,467:206-212.

[11] Liu E, Jin C, Xu C, et al. Facile strategy to fabricate Ni2P/g-C3N4 heterojunction with excellent photocatalytic hydrogen evolution activity[J].International Journal of Hydrogen Energy,2018,43(46):21355-21364.

[12] Mo Z, Xu H, Chen Z, et al. Construction of MnO2/Monolayer g-C3N4 with Mn vacancies for Z-scheme overall water splitting[J].Applied Catalysis B:Environmental,2019,241:452-460.

[13] Cui Y, Zhang X, Zhang H, et al. Construction of BiOCOOH/g-C3N4 composite photocatalyst and its enhanced visible light photocatalytic degradation of amido black 10B[J].Separation and Purification Technology,2019,210:125-134.

[14] Zhao H, Li G, Tian F, et al. g-C3N4 Surface-decorated Bi2O2CO3 for improved photocatalytic performance:theoretical calculation and photodegradation of antibiotics in actual water matrix[J].Chemical Engineering Journal,2019,366:468-479.

[15] 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].Chemical reviews,2016,116(12):7159-7329.

[16] Kroke E, Schwarz M, Horath-Bordon E, et al. Tri-S-Triazine derivatives. part I. from trichloro-tri-s-triazine to graphitic C3N4 structures[J].New Journal of Chemistry,2002,26(5):508-512.

[17] Masih D, Ma Y, Rohani S. Graphitic C3N4 based noble-metal-free photocatalyst systems:a review[J].Applied Catalysis B:Environmental,2017,206:556-588.

[18] Wang X, Maeda K, Thomas A, et al. A metal-free polymeric photocatalyst for hydrogen production from water under visible light[J].Nature Materials,2008,8(1):76-80.

[19] Hu C, Chu Y C, Wang M S, et al. Rapid synthesis of g-C3N4 spheres using microwave-assisted solvothermal method for enhanced photocatalytic activity[J].Journal of Photochemistry and Photobiology A:Chemistry,2017,348:8-17.

[20] Cui Y, Ding Z, Fu X, et al. Construction of conjugated carbon nitride nanoarchitectures in solution at low temperatures for photoredox catalysis[J].Angewandte Chemie International Edition,2012,51(47):11814-11818.

[21] Li C, Cao C B, Zhu H S, et al. Electrodeposition route to prepare graphite-like carbon nitride[J].Materials Science and Engineering:B,2004,106(3):308-312.

[22] Guo Q, Yang Q, Yi C, et al. Synthesis of carbon nitrides with graphite-like or onion-like lamellar structures via a solvent-free route at low temperatures[J].Carbon,2005,43(7):1386-1391.

[23] Zhang Z, Leinenweber K, Bauer M, et al. High-pressure bulk synthesis of crystalline C6N9H3?HCl:a novel C3N4 graphitic derivative[J].Journal of the American Chemical Society,2001,123(32):7788-7796.

[24] Long B, Lin J, Wang X. Thermally-induced desulfurization and conversion of guanidine thiocyanate into graphitic carbon nitride catalysts for hydrogen photosynthesis[J].Journal of Materials Chemistry A,2014,2(9):2942-2951.

[25] Wang Y, Shi R, Lin J, et al. Enhancement of photocurrent and photocatalytic activity of ZnO hybridized with graphite-like C3N4[J].Energy & Environmental Science,2011,4(8):2922-2929.

[26] Song Y, Qi J, Tian J, et al. Construction of Ag/g-C3N4 photocatalysts with visible-light photocatalytic activity for sulfamethoxazole degradation[J].Chemical Engineering Journal, 2018, 341:547-555.

[27] 万建新, 任学昌, 刘宏伟, 等. ZnO/g-C3N4 复合型光催化剂的制备及其光催化性能[J].环境化学, 2018, 37(4):792-797.

[28] Chen K L, Zhang S S, Yan J Q, et al. Excellent visible light photocatalytic efficiency of Na and S co-doped g-C3N4 nanotubes for H2 production and organic pollutant degradation[J].International Journal of Hydrogen Energy, 2019, 44(60):31916-31929.

[29] Ma W, Wang N, Guo Y, et al. Enhanced photoreduction CO2 activity on g-C3N4:by synergistic effect of nitrogen defective-enriched and porous structure, and mechanism insights[J].Chemical Engineering Journal, 2020:124288.

[30] Tahir B, Tahir M, Amin N A S. Silver loaded protonated graphitic carbon nitride (Ag/Pg-C3N4) nanosheets for stimulating CO2 reduction to fuels via photocatalytic Bi-reforming of methane[J].Applied Surface Science, 2019, 493:18-31.

[31] Yang C, Tan Q, Li Q, et al. 2D/2D Ti3C2 MXene/g-C3N4 nanosheets heterojunction for high efficient CO2 reduction photocatalyst:dual effects of urea[J].Applied Catalysis B:Environmental, 2020:118738.

[32] Wang M, Guo P, Zhang Y, et al. Synthesis of hollow lantern-like Eu(III)-doped g-C3N4, with enhanced visible light photocatalytic perfomance for organic degradation[J].Journal of Hazardous Materials, 2018, 349:224-233.

[33] Yan Q,Huang G F,Li D F, et al. Facile synthesis and superior photocatalytic and electrocatalytic performances of porous B-doped g-C3N4 nanosheets[J].Journal of Materials Science & Technology, 2018, 34(12):2515-2520.

[34] Wang K, Fu J, Zheng Y. Insights into photocatalytic CO2 reduction on C3N4:strategy of simultaneous B, K co-Doping and enhancement by N vacancies[J].Applied Catalysis B:Environmental, 2019, 254:270-282.

[35] Chen D,Liu J,Jia Z, et al. Efficient Visible-light-driven hydrogen evolution and Cr (VI) reduction over porous P and Mo co-doped g-C3N4 with feeble N vacancies photocatalyst[J].Journal of hazardous materials, 2019, 361:294-304.

[36] Wu X, Wang X, Wang F, et al. Soluble g-C3N4 nanosheets:facile synthesis and application in photocatalytic hydrogen evolution[J].Applied Catalysis B:Environmental, 2019, 247:70-77.

[37] Chen Y, Ding F, Khaing A, et al. Acetic acid-assisted supramolecular assembly synthesis of porous g-C3N4 hexagonal prism with excellent photocatalytic activity[J].Applied Surface Science, 2019, 479:757-764.

[38] Wang W, Shu Z, Zhou J, et al. Halloysite-derived mesoporous g-C3N4 nanotubes for improved visible-light photocatalytic hydrogen evolution[J].Applied Clay Science, 2018, 158:143-149.

[39] Ling Y, Liao G, Xu P, et al. Fast mineralization of acetaminophen by highly dispersed Ag-g-C3N4 hybrid assisted photocatalytic ozonation[J].Separation and Purification Technology, 2019, 216:1-8.

[40] Qian X B, Peng W, Huang J H. Fluorescein-sensitized Au/g-C3N4 nanocomposite for enhanced photocatalytic hydrogen evolution under visible light[J].Materials Research Bulletin, 2018, 102:362-368.

[41] Zhu Y, Wang T, Xu T, et al. Size effect of Pt co-catalyst on photocatalytic efficiency of g-C3N4 for hydrogen evolution[J].Applied Surface Science, 2019, 464:36-42.

[42] Yang L, Liang L, Wang L, et al. Accelerated photocatalytic oxidation of carbamazepine by a Novel 3D hierarchical protonated g-C3N4/BiOBr heterojunction:performance and mechanism[J].Applied Surface Science, 2019, 473:527-539.

[43] Li G, Wang B, Zhang J, et al. Rational construction of a direct Z-scheme g-C3N4/CdS photocatalyst with enhanced visible light photocatalytic activity and degradation of erythromycin and tetracycline[J].Applied Surface Science, 2019, 478:1056-1064.

[44] Li C, Yu S, Dong H, et al. Z-Scheme mesoporous photocatalyst constructed by modification of Sn3O4 nanoclusters on g-C3N4 nanosheets with improved photocatalytic performance and mechanism insight[J].Applied Catalysis B:Environmental, 2018, 238:284-293.

[45] Zhang S, Gu P, Ma R, et al. Recent developments in fabrication and structure regulation of visible-light-driven g-C3N4-based photocatalysts towards water purification:a critical review[J].Catalysis Today, 2019, 335:65-77.

[46] Xiao T, Tang Z, Yang Y, et al. In situ construction of hierarchical WO3/g-C3N4 composite hollow microspheres as a Z-Scheme Photocatalyst for the Degradation of Antibiotics[J].Applied Catalysis B:Environmental, 2018, 220:417-428.

[47] Wen J, Xie J, Chen X, et al. A review on g-C3N4-based photocatalysts[J].Applied surface science, 2017, 391:72-123.

[48] Che H, Li C, Zhou P, et al. Band structure engineering and efficient injection rich-π-electrons into ultrathin g-C3N4 for boosting photocatalytic H2-production[J].Applied Surface Science, 2019:144564.

赖树锋, 肖开棒, 梁锦芝, 林锴淳, 许伟城, 江学顶. 石墨氮化碳光催化剂的制备及其改性研究进展[J]. 人工晶体学报, 2020, 49(4): 744. LAI Shufeng, XIAO Kaibang, LIANG Jinzhi, LIN Kaichun, XU Weicheng, JIANG Xueding. Research Progress on Preparation and Modification of Graphite Carbon Nitride Photocatalyst[J]. Journal of Synthetic Crystals, 2020, 49(4): 744.

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