1 |
MARIMUTHU S, ANTONISAMY A J, MALAYANDI S,et al. Silver nanoparticles in dye effluent treatment:A review on synthesis,treatment methods,mechanisms,photocatalytic degradation,toxic effects and mitigation of toxicity[J]. Journal of Photochemistry and Photobiology. B,Biology, 2020, 205:111823. doi: 10.1016/j.jphotobiol.2020.111823
|
2 |
REN Guangmin, HAN Hongtao, WANG Yixuan,et al. Recent advances of photocatalytic application in water treatment:A review[J]. Nanomaterials, 2021, 11(7):1804. doi: 10.3390/nano11071804
|
3 |
CRINI G, LICHTFOUSE E. Advantages and disadvantages of techniques used for wastewater treatment[J]. Environmental Chemistry Letters, 2019, 17(1):145-155. doi: 10.1007/s10311-018-0785-9
|
4 |
张方圆,韩伟光,张雪,等. WO3水合物在光催化领域的应用与研究进展[J]. 工程科学学报,2024,46(1):44-55.
|
|
ZHANG Fangyuan, HAN Weiguang, ZHANG Xue,et al. Application and research progress of WO3 hydrate in the field of photocatalysis[J]. Chinese Journal of Engineering,2024,46(1):44-55.
|
5 |
|
|
HAN Chunqiu, CAO Yuehan, QIU Jie,et al. Promotion of highly selective photocatalytic conversion of methane into methanol by Ga-O bifunctional sites[J]. Chinese Science Bulletin, 2023, 68(33):4544-4555. doi: 10.1360/tb-2023-0744
|
6 |
MUTHUKUMAR G, ARJUNKUMAR B, VIGNESH R,et al. A study of photocatalytic degradation of betalain pigment from kitchen waste,semiconductive nanostructured TiO 2 used as a photocatalyst[J]. Material Science Research India, 2018, 15(3):272-278. doi: 10.13005/msri/150310
|
7 |
GUPTA A, LAKSHMP Y N, MANIVANNAN R,et al. Visible range photocatalysts for solid phase photocatalytic degradation of polyethylene and polyvinyl chloride[J]. Journal of the Chilean Chemical Society, 2017, 62(1):3393-3398. doi: 10.4067/s0717-97072017000100018
|
8 |
MORAIS A, AMARAL CARMINATI S DO, NOGUEIRA A F. Nanostructured hybrid materials based on reduced graphene oxide for solar energy conversion[C]//SPIE Proceedings,Physical Chemistry of Interfaces and Nanomaterials XV. San Diego,California,USA. SPIE, 2016. doi: 10.1117/12.2240029
|
9 |
YAQOOB A ALI, PARVEEN T, UMAR K,et al. Role of nanomaterials in the treatment of wastewater:A review[J]. Water, 2020, 12(2):495. doi: 10.3390/w12020495
|
10 |
LU Haijiao, WANG Jingkang, STOLLER M,et al. An overview of nanomaterials for water and wastewater treatment[J]. Advances in Materials Science and Engineering, 2016:4964828. doi: 10.1155/2016/4964828
|
11 |
WANG Xinwei, TIAN Hongwei, YANG Yan,et al. Reduced graphene oxide/CdS for efficiently photocatalystic degradation of methylene blue[J]. Journal of Alloys and Compounds, 2012, 524:5-12. doi: 10.1016/j.jallcom.2012.02.058
|
12 |
陈丽东,刘锦欣,黄晔,等. ZnO-石墨烯复合材料光催化降解污染物研究进展[J]. 工业水处理,2015,35(9):17-20.
|
|
CHEN Lidong, LIU Jinxin, HUANG Ye,et al. Research progress in ZnO-graphene nanocomposites applied to the photocatalytic degradation of pollutants[J]. Industrial Water Treatment,2015,35(9):17-20.
|
13 |
TRIVEDI S, LOBO K, RAMAKRISHNA MATTE H S S. Synthesis,properties,and applications of graphene[M]// Fundamentals and sensing applications of 2D materials. Amsterdam:Elsevier, 2019:25-90. doi: 10.1016/b978-0-08-102577-2.00003-8
|
14 |
WANG Ning, ZHANG Feiyan, MEI Qiufeng,et al. Photocatalytic TiO 2/rGO/CuO composite for wastewater treatment of Cr(Ⅵ) under visible light[J]. Water,Air,& Soil Pollution, 2020, 231(5):223. doi: 10.1007/s11270-020-04609-8
|
15 |
郝延蔚,孙瑞敏,赵辉,等. 石墨烯类材料对水中有机污染物的吸附研究进展[J]. 工业水处理,2021,41(10):44-53.
|
|
HAO Yanwei, SUN Ruimin, ZHAO Hui,et al. Research progress on the adsorption of graphene-based materials to organic pollutants in water[J]. Industrial Water Treatment,2021,41(10):44-53.
|
16 |
SINGH P, SHANDILYA P, RAIZADA P,et al. Review on various strategies for enhancing photocatalytic activity of graphene based nanocomposites for water purification[J]. Arabian Journal of Chemistry, 2020, 13(1):3498-3520. doi: 10.1016/j.arabjc.2018.12.001
|
17 |
LI Xiaojuan, NATSUKI J, NATSUKI T. A recyclable silver nanoparticles/graphene oxide nanoscroll composite photocatalyst[J]. Environmental Technology & Innovation, 2021, 21:101210. doi: 10.1016/j.eti.2020.101210
|
18 |
LEI Yun, CHEN Yanguang, YU Pengfei,et al. Combination of α-Fe 2O 3,CdS and reduced graphene oxide:High-performance and recyclable visible light photocatalysis[J]. Applied Organometallic Chemistry, 2020, 34(3):e5340. doi: 10.1002/aoc.5340
|
19 |
KAUSOR M AL, CHAKRABORTTY D. Graphene oxide based semiconductor photocatalysts for degradation of organic dye in waste water:A review on fabrication,performance enhancement and challenges[J]. Inorganic Chemistry Communications, 2021, 129:108630. doi: 10.1016/j.inoche.2021.108630
|
20 |
HAN Shitong, LI Wenyue, XI Hailing,et al. Plasma-assisted in situ preparation of graphene-Ag nanofiltration membranes for efficient removal of heavy metal ions[J]. Journal of Hazardous Materials, 2022, 423(Pt A):127012. doi: 10.1016/j.jhazmat.2021.127012
|
21 |
承勇,梅钰,邓首勇,等. 三维复合材料CdS@DMSA-GO的原位合成及其光催化性能[J]. 无机化学学报,2020,36(4):715-729.
|
|
CHENG Yong, MEI Yu, DENG Shouyong,et al. In situ synthesis and photocatalytic performance of three dimensional composites CdS@DMSA-GO[J]. Chinese Journal of Inorganic Chemistry,2020,36(4):715-729.
|
22 |
LI Yueming, TANG Longhua, LI Jinghong. Preparation and electrochemical performance for methanol oxidation of Pt/graphene nanocomposites[J]. Electrochemistry Communications, 2009, 11(4):846-849. doi: 10.1016/j.elecom.2009.02.009
|
23 |
赵晶,刘诗伟,杨雨欣,等. 电沉积制备纳米金-石墨烯复合材料修饰电极测定氨苄西林[J]. 电镀与精饰,2022,44(11):41-46.
|
|
ZHAO Jing, LIU Shiwei, YANG Yuxin,et al. Electrodeposition of Au nanoparticle-graphene composites modified electrode for ampicillin detection[J]. Plating and Finishing,2022,44(11):41-46.
|
24 |
郭勤,黄冬根,熊伟,等. 电化学制备石墨烯/纳米TiO2复合材料及光催化性能[J]. 复合材料学报,2018,35(1):142-149.
|
|
GUO Qin, HUANG Donggen, XIONG Wei,et al. Electrochemical preparation and photocatalytic performance of graphene/nano TiO2 composites[J]. Acta Materiae Compositae Sinica,2018,35(1):142-149.
|
25 |
UMA K, CHONG S, MOHAN S C,et al. Multi-functional RGO-supported α-Fe 2O 3 nanocomposites for high-performance pseudocapacitors and visible light-driven photocatalytic applications[J]. Ionics, 2020, 26(7):3491-3500. doi: 10.1007/s11581-019-03400-y
|
26 |
杨莉,姜晓雪,靳晓曼,等. rGO/CdS@HAP复合微球的光催化活性增强机理研究[J]. 化学工程,2024,52(4):28-34.
|
|
YANG Li, JIANG Xiaoxue, JIN Xiaoman,et al. Mechanism of enhanced photocatalytic activity of rGO/CdS@HAP composite microspheres[J]. Chemical Engineering (China),2024,52(4):28-34.
|
27 |
邢亚均. 硫化铜/石墨烯的制备及光催化性能研究[J]. 应用化工,2021,50(3):687-691.
|
|
XING Yajun. Preparation and photocatalytic properties of CuS/RGO[J]. Applied Chemical Industry,2021,50(3):687-691.
|
28 |
AMER A A, REDA S, MOUSA M A,et al. Mn 3O 4/graphene nanocomposites:Outstanding performances as highly efficient photocatalysts and microwave absorbers[J]. RSC Advances, 2017, 7(2):826-839. doi: 10.1039/c6ra24815b
|
29 |
DOLUEL E C, KARTAL U, DIKICI T,et al. Effect of Ag content on photocatalytic activity of Ag@TiO 2/rGO hybrid photocatalysts[J]. Journal of Electronic Materials, 2020, 49(6):3849-3859. doi: 10.1007/s11664-020-08102-0
|
30 |
JIANG Nan, XIU Zhiliang, XIE Zheng,et al. Reduced graphene oxide-CdS nanocomposites with enhanced visible-light photoactivity synthesized using ionic-liquid precursors[J]. New Journal of Chemistry, 2014, 38(9):4312-4320. doi: 10.1039/c4nj00152d
|
31 |
BEURA R, PACHAIAPPAN R, PARAMASIVAM T. Photocatalytic degradation studies of organic dyes over novel Ag-loaded ZnO-graphene hybrid nanocomposites[J]. Journal of Physics and Chemistry of Solids, 2021, 148:109689. doi: 10.1016/j.jpcs.2020.109689
|
32 |
贡昀,董延茂,朱广爱,等. 还原石墨烯/硫化镉纳米棒复合材料制备及其光催化性能[J]. 无机盐工业,2018,50(9):76-80.
|
|
GONG Yun, DONG Yanmao, ZHU Guang’ai,et al. Preparation and photocatalytic properties of reduced graphene/CdS nanorod composites[J]. Inorganic Chemicals Industry,2018,50(9):76-80.
|
33 |
VENKATESH G, VIGNESH S, SRINIVASAN M,et al. Construction and investigation on perovskite-type SrTiO 3@ reduced graphene oxide hybrid nanocomposite for enhanced photocatalytic performance[J]. Colloids and Surfaces A:Physicochemical and Engineering Aspects, 2021, 629:127523. doi: 10.1016/j.colsurfa.2021.127523
|
34 |
徐一鑫,王爽,全静,等. 二硫化钼量子点/还原氧化石墨烯复合材料的制备及其光催化降解有机染料、四环素和Cr(Ⅵ)[J]. 应用化学,2022,39(5):769-778.
|
|
XU Yixin, WANG Shuang, QUAN Jing,et al. Preparation of molybdenum disulfide quantum dots/reduced graphene oxide composites and their photocatalytic degradation of organic dyes,tetracyclines and Cr(Ⅵ)[J]. Chinese Journal of Applied Chemistry,2022,39(5):769-778.
|
35 |
IQBAL M, BHATTI H N, YOUNIS S,et al. Graphene oxide nanocomposite with CuSe and photocatalytic removal of methyl green dye under visible light irradiation[J]. Diamond and Related Materials, 2021, 113:108254. doi: 10.1016/j.diamond.2021.108254
|
36 |
BUSARELLO P, DE QUADROS S, ZIMMERMANN L M,et al. Graphene oxide/ZnO nanocomposites applied in photocatalysis of dyes:Tailoring aqueous stability of quantum dots[J]. Colloids and Surfaces A:Physicochemical and Engineering Aspects, 2023, 675:132026. doi: 10.1016/j.colsurfa.2023.132026
|
37 |
TAHIR N, ZAHID M, JILLANI A,et al. Ternary silver tungstate-MoS 2/graphene oxide heterostructure nanocomposite for enhanced photocatalysis under visible light and antibacterial activity[J]. Journal of Photochemistry and Photobiology A:Chemistry, 2023, 436:114376. doi: 10.1016/j.jphotochem.2022.114376
|
38 |
CAI Zhongjie, HU Xiantao, LI Zhongan,et al. Hypercrosslinking porous polymer layers on TiO 2-graphene photocatalyst:Enhanced adsorption of water pollutants for efficient degradation[J]. Water Research, 2022, 227:119341. doi: 10.1016/j.watres.2022.119341
|
39 |
CHEN L, ARSHAD M, CHUANG Y,et al. Efficient photoelectrochemical water splitting and photocatalytic performance for graphene-bridged MoS 2-Fe 2O 3 nanocomposite under visible light active:Insights into photocatalysis mechanism[J]. Materials Science in Semiconductor Processing, 2023, 167:107780. doi: 10.1016/j.mssp.2023.107780
|
40 |
KHAN M E, KHAN M M, CHO M H. Biogenic synthesis of a Ag-graphene nanocomposite with efficient photocatalytic degradation,electrical conductivity and photoelectrochemical performance[J]. New Journal of Chemistry, 2015, 39(10):8121-8129. doi: 10.1039/c5nj01320h
|
41 |
NIE Jun, LI Chenyu, JIN Zeyuan,et al. Fabrication of MCC/Cu 2O/GO composite foam with high photocatalytic degradation ability toward methylene blue[J]. Carbohydrate Polymers, 2019, 223:115101. doi: 10.1016/j.carbpol.2019.115101
|
42 |
NOOR S, SAJJAD S, LEGHARI S A K,et al. Energy harvesting for electrochemical OER and solar photocatalysis via dual functional GO/TiO 2-NiO nanocomposite[J]. Journal of Cleaner Production, 2020, 277:123280. doi: 10.1016/j.jclepro.2020.123280
|
43 |
杜春艳,宋佳豪,谭诗杨,等. 石墨烯桥联的ZnO/Ag3PO4复合材料的制备及其对环丙沙星的降解性能[J]. 复合材料学报,2021,38(7):2254-2264.
|
|
DU Chunyan, SONG Jiahao, TAN Shiyang,et al. Preparation of graphene bridged ZnO/Ag3PO4 composite and its degradation performance for ciprofloxacin[J]. Acta Materiae Compositae Sinica,2021,38(7):2254-2264.
|
44 |
ZHANG Hao, Xiaojun LÜ, LI Yueming,et al. P25-graphene composite as a high performance photocatalyst[J]. ACS Nano, 2010, 4(1):380-386. doi: 10.1021/nn901221k
|
45 |
VASILAKI E, KATSARAKIS N, DOKIANAKIS S,et al. rGO functionalized ZnO-TiO 2 core-shell flower-like architectures for visible light photocatalysis[J]. Catalysts, 2021, 11(3):332. doi: 10.3390/catal11030332
|
46 |
LIU Xingqi, CAI Li. A novel double Z-scheme BiOBr-GO-polyaniline photocatalyst:Study on the excellent photocatalytic performance and photocatalytic mechanism[J]. Applied Surface Science, 2019, 483:875-887. doi: 10.1016/j.apsusc.2019.03.273
|
47 |
KUMAR R, SUDHAIK A,SONU,et al. Integrating K and P Co-doped g-C 3N 4 with ZnFe 2O 4 and graphene oxide for S-scheme-based enhanced adsorption coupled photocatalytic real wastewater treatment[J]. Chemosphere, 2023, 337:139267. doi: 10.1016/j.chemosphere.2023.139267
|
48 |
DURODOLA S S, AKEREMALE O K, ORE O T,et al. A review on nanomaterial as photocatalysts for degradation of organic pollutants[J]. Journal of Fluorescence, 2024, 34(2):501-514. doi: 10.1007/s10895-023-03332-x
|