A high efficient graphitic-C3N4/BiOI/graphene oxide ternary nanocomposite heterostructured photocatalyst with graphene oxide as electron transport buffer material

被引:155
作者
Dai, Kai [1 ]
Lu, Luhua [2 ]
Liang, Changhao [3 ,4 ]
Zhu, Guangping [1 ]
Liu, Qinzhuang [1 ]
Geng, Lei [1 ]
He, Junqi [1 ]
机构
[1] Huaibei Normal Univ, Coll Phys & Elect Informat, Huaibei 235000, Peoples R China
[2] China Univ Geosci, Fac Mat Sci & Chem, Wuhan 430074, Peoples R China
[3] Chinese Acad Sci, Hefei Inst Phys Sci, Inst Solid State Phys, Key Lab Mat Phys, Hefei 230031, Peoples R China
[4] Chinese Acad Sci, Hefei Inst Phys Sci, Inst Solid State Phys, Anhui Key Lab Nanomat & Nanotechnol, Hefei 230031, Peoples R China
基金
中国国家自然科学基金;
关键词
GRAPHITIC CARBON NITRIDE; HYDROGEN-PRODUCTION; TITANIUM-DIOXIDE; TIO2; NANOSHEETS; HETEROJUNCTION; HYBRID; PERFORMANCE; WATER; PHOTOCURRENT; DEGRADATION;
D O I
10.1039/c5dt00475f
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
It is important to reduce the recombination of electrons and holes and enhance charge transfer through fine controlled interfaces for advanced catalyst design. In this work, graphene oxide (GO) was composited with graphitic-C3N4 (g-C3N4) and BiOI forming GO/g-C3N4 and GO/BiOI heterostructural interfaces, respectively. GO, which has a work function between the conducting bands of g-C3N4 and BiOI, is used as a buffer material to enhance electron transfer from g-C3N4 to BiOI through the GO/g-C3N4 and GO/BiOI interfaces. The increased photocurrent and reduced photoluminescence indicate efficient reduction of electron and hole recombination under the successful heterostructure design. Accordingly, the introduction of GO as a charge transfer buffer material has largely enhanced the photocatalytic performance of the composite. Thus, introducing charge transfer buffer materials for photocatalytic performance enhancement has proved to be a new strategy for advanced photocatalyst design.
引用
收藏
页码:7903 / 7910
页数:8
相关论文
共 61 条
[1]   Honeycomb Carbon: A Review of Graphene [J].
Allen, Matthew J. ;
Tung, Vincent C. ;
Kaner, Richard B. .
CHEMICAL REVIEWS, 2010, 110 (01) :132-145
[2]   Nitrogen-Doped Titanium Dioxide as Visible-Light-Sensitive Photocatalyst: Designs, Developments, and Prospects [J].
Asahi, Ryoji ;
Morikawa, Takeshi ;
Irie, Hiroshi ;
Ohwaki, Takeshi .
CHEMICAL REVIEWS, 2014, 114 (19) :9824-9852
[3]   A Unique Semiconductor-Metal-Graphene Stack Design to Harness Charge Flow for Photocatalysis [J].
Bai, Song ;
Ge, Jing ;
Wang, Lili ;
Gong, Ming ;
Deng, Mingsen ;
Kong, Qiao ;
Song, Li ;
Jiang, Jun ;
Zhang, Qun ;
Luo, Yi ;
Xie, Yi ;
Xiong, Yujie .
ADVANCED MATERIALS, 2014, 26 (32) :5689-+
[4]  
Bai X., 2014, APPL CATAL B-ENVIRON, V5, P82
[5]  
Bai X., 2014, APPL CATAL B-ENVIRON, V25, P262
[6]   PHOTOELECTROLYSIS AND PHYSICAL-PROPERTIES OF SEMICONDUCTING ELECTRODE WO3 [J].
BUTLER, MA .
JOURNAL OF APPLIED PHYSICS, 1977, 48 (05) :1914-1920
[7]   Graphitic carbon nitride (g-C3N4)-Pt-TiO2 nanocomposite as an efficient photocatalyst for hydrogen production under visible light irradiation [J].
Chai, Bo ;
Peng, Tianyou ;
Mao, Jing ;
Li, Kan ;
Zan, Ling .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2012, 14 (48) :16745-16752
[8]   Novel Mesoporous Graphite Carbon Nitride/BiOI Heterojunction for Enhancing Photocatalytic Performance Under Visible-Light Irradiation [J].
Chang, Chun ;
Zhu, Lingyan ;
Wang, Shanfeng ;
Chu, Xiaolong ;
Yue, Longfei .
ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (07) :5083-5093
[9]   Graphene-based nanocomposites: preparation, functionalization, and energy and environmental applications [J].
Chang, Haixin ;
Wu, Hongkai .
ENERGY & ENVIRONMENTAL SCIENCE, 2013, 6 (12) :3483-3507
[10]   Graphene and its derivatives for the development of solar cells, photoelectrochemical, and photocatalytic applications [J].
Chen, Da ;
Zhang, Hao ;
Liu, Yang ;
Li, Jinghong .
ENERGY & ENVIRONMENTAL SCIENCE, 2013, 6 (05) :1362-1387