Preparation and Photocatalytic Water Splitting Hydrogen Production of Titanium Dioxide Nanosheets

被引:12
作者
Li, Fuying [1 ,2 ]
Huang, Yin [1 ]
Peng, Hongling [1 ]
Cao, Yu [1 ]
Niu, Yu [1 ,2 ]
机构
[1] Sanming Univ, Coll Resources & Chem Engn, Sanming 365004, Peoples R China
[2] Collaborat Innovat Ctr 2011 Clean Coal Gasificat, Sanming 365004, Peoples R China
关键词
POROUS TIO2; PHOTOLYSIS; NANOCRYSTALS; DEGRADATION; PERFORMANCE; NANORODS; CARRIER;
D O I
10.1155/2020/3617312
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Improving the efficiency of photocatalytic water splitting to produce hydrogen is currently a hot topic in research. TiO2 nanosheets are a good carrier of photocatalytic materials and have become attractive materials in the new century because of their high active surface exposure characteristics and special morphology. Considering the advantages and disadvantages of conventional chemical and physical methods that are used for preparing TiO2 nanosheets, an optimized scheme for the preparation of TiO2 nanosheets via hydrothermal calcination was proposed. X-ray powder diffraction (XRD), scanning electron microscopy (SEM), and UV-visible diffuse reflection absorption spectra (DRS) were used to characterize the structure and morphology of the TiO2 nanosheets, and differences in the photocatalytic water splitting hydrogen production activity of the different calcination temperatures were compared. The suitable calcination temperature of the TiO2 nanosheets was 400 degrees C, and the hydrogen production rate was 270 mu mol/h, which indicated that the sheet structure was beneficial for improving the photocatalytic water splitting hydrogen production performance of the material. It is hoped that this work will support the regulation of the surface morphology and surface modification of nanomaterials.
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页数:6
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共 32 条
[1]   Environmentally benign synthesis of CuInS2/ZnO heteronanorods: visible light activated photocatalysis of organic pollutant/bacteria and study of its mechanism [J].
Baek, Minki ;
Kim, Eun-Ju ;
Hong, Seok Won ;
Kim, Wooyul ;
Yong, Kijung .
PHOTOCHEMICAL & PHOTOBIOLOGICAL SCIENCES, 2017, 16 (12) :1792-1800
[2]   Crystallization of TiO2 Nanotubes by In Situ Heating TEM [J].
Casu, Alberto ;
Lamberti, Andrea ;
Stassi, Stefano ;
Falqui, Andrea .
NANOMATERIALS, 2018, 8 (01)
[3]   Few-Layered MoS2 Nanoparticles Loaded TiO2 Nanosheets with Exposed {001} Facets for Enhanced Photocatalytic Activity [J].
Chen, Chujun ;
Xin, Xia ;
Zhang, Jinniu ;
Li, Gang ;
Zhang, Yafeng ;
Lu, Hongbing ;
Gao, Jianzhi ;
Yang, Zhibo ;
Wane, Chunlan ;
He, Ze .
NANO, 2018, 13 (11)
[4]   Antimicrobial activity of ZnO-TiO2 nanomaterials synthesized from three different precursors of ZnO: influence of ZnO/TiO2 weight ratio [J].
Daou, Ikram ;
Moukrad, Najia ;
Zegaoui, Omar ;
Rhazi Filali, Fouzia .
WATER SCIENCE AND TECHNOLOGY, 2018, 77 (05) :1238-1249
[5]   Reliable hydrogen production from methanol photolysis in aqueous solution by a harmony between In and Zn in bimetallic zinc indium sulfide [J].
Do, Jeong Yeon ;
Choi, Suhwan ;
Nahm, Keepyung ;
Kim, Seog K. ;
Kang, Misook .
MATERIALS RESEARCH BULLETIN, 2018, 100 :234-242
[6]   Template-free synthesis of mesoporous α-Fe2O3 nanoflowers with short charge-carrier diffuse distance for superior photocatalysis [J].
Du, Q. ;
Gao, Q. .
MATERIALS TECHNOLOGY, 2017, 32 (12) :724-728
[7]   Step edge structures on the anatase TiO2 (001) surface studied by atomic-resolution TEM and STM [J].
Ek, M. ;
Beinik, I. ;
Bruix, A. ;
Wendt, S. ;
Lauritsen, J. V. ;
Helveg, S. .
FARADAY DISCUSSIONS, 2018, 208 :325-338
[8]   Synthesis and structural characteristics of high surface area TiO2 aerogels by ultrasonic-assisted sol-gel method [J].
Feng Qingge ;
Cai Huidong ;
Lin Haiying ;
Qin Siying ;
Liu Zheng ;
Ma Dachao ;
Ye Yuyang .
NANOTECHNOLOGY, 2018, 29 (07)
[9]   Titanium dioxide nano-heterostructure with nanoparticles decorating nanowires for high-performance photocatalysis [J].
Fu, Honghong ;
Yang, Liming ;
Hu, Dongsheng ;
Yu, Chuan ;
Ling, Yun ;
Xie, Yu ;
Li, Shiqi ;
Zhao, Jinsheng .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2018, 43 (22) :10359-10367
[10]   ELECTROCHEMICAL PHOTOLYSIS OF WATER AT A SEMICONDUCTOR ELECTRODE [J].
FUJISHIMA, A ;
HONDA, K .
NATURE, 1972, 238 (5358) :37-+