Revealing the role of kapok fibre as bio-template for In-situ construction of C-doped g-C3N4@C, N co-doped TiO2 core-shell heterojunction photocatalyst and its photocatalytic hydrogen production performance

被引:76
作者
Mohamed, Mohamad Azuwa [1 ,2 ,3 ]
Zain, M. F. M. [4 ]
Minggu, Lorna Jeffery [1 ]
Kassim, Mohammad B. [1 ,2 ]
Jaafar, Juhana [5 ]
Amin, Nor Aishah Saidina [6 ]
Ng, Yun Hau [3 ,7 ]
机构
[1] Univ Kebangsaan Malaysia, Fuel Cell Inst SELFUEL, Ukm Bangi 43600, Selangor, Malaysia
[2] Univ Kebangsaan Malaysia, Fac Sci & Technol, Ctr Adv Mat & Renewable Resources CAMARR, Bangi 43600, Selangor, Malaysia
[3] Univ New South Wales, Sch Chem Engn, Particles & Catalysis Res Grp, Sydney, NSW 2052, Australia
[4] Univ Kebangsaan Malaysia, Fac Engn & Built Environm, Sustainable Construct Mat & Bldg Syst SUCOMBS Res, Bangi 43600, Malaysia
[5] Univ Teknol Malaysia, Adv Membrane Technol Res Ctr AMTEC, Skudai 81310, Johor Bahru, Malaysia
[6] Univ Teknol Malaysia, Dept Chem Engn, Fac Chem & Energy Engn, Johor Baharu 81310, Johor, Malaysia
[7] City Univ Hong Kong, Sch Energy & Environm, Kowloon, Hong Kong, Peoples R China
关键词
Bio-template; Heterojunction photocatalyst; Core-shell; Co-doping; Interstitial doping; Photocatalytic hydrogen production; GRAPHITIC CARBON NITRIDE; CHARGE SEPARATION; SOLAR ABSORPTION; OXIDATION; NANOCOMPOSITES; NANOPARTICLES; DECOMPOSITION; MICROSPHERES; DEGRADATION; NANOSPHERES;
D O I
10.1016/j.apsusc.2019.01.080
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
For the first time, C-doped g-C3N4@C, N co-doped TiO2 core-shell heterojunction photocatalyst was successfully prepared by an in-situ one-pot hydrothermal bio-template approach, assisted by calcination treatment at 500 degrees C. Kapok fibre was used as a bio-templates and in-situ C doping in g-C3N4 and TiO2 during the formation of core-shell heterojunction photocatalyst. Moreover, the used of urea as g-C3N4-precursor also contribute to band-gap narrowing by an in-situ carbon and nitrogen doping in TiO2. Various characterisation techniques were employed to understand the effect TiO2 precursor concentration on the evolution of core-shell nanostructure heterojunction photocatalyst that can affect and boost the catalytic activity. The detailed understanding of the concurrent growth of C-doped g-C3N4(CCN) and C, N co-doped TiO2 mechanism, as well as the formation of core-shell nanostructures heterojunction formation, are also proposed in this study. Our finding indicated that the biotemplate core-shell nanostructure heterojunction photocatalysts showed a dramatic increase in photoinduced electron-hole separation efficiency as demonstrated by the photoelectrochemical and photoluminescence analyses. The enhancement in photogenerated charge carrier separation and narrower band gap resulted in superior photocatalytic activities with the highest rate of hydrogen production was recorded by CCN/T-1.5 sample (625.5 mu mol h(-1) g(-1)) in methanol aqueous solution. The well-developed interconnected heterojunction formation with appropriate CCN and TiO2 contents in core-shell nanoarchitectures system is a prime factor for the future design of a highly efficient visible-light-driven photocatalyst.
引用
收藏
页码:205 / 220
页数:16
相关论文
共 94 条
[1]   Enhanced visible-light photocatalytic activity of g-C3N4/TiO2 films [J].
Boonprakob, Natkritta ;
Wetchakun, Natda ;
Phanichphant, Sukon ;
Waxler, David ;
Sherrell, Peter ;
Nattestad, Andrew ;
Chen, Jun ;
Inceesungvorn, Burapat .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2014, 417 :402-409
[2]   Carbon and nitrogen co-doped TiO2 with enhanced visible-light photocatalytic activity [J].
Chen, Daimei ;
Jiang, Zhongyi ;
Geng, Jiaqing ;
Wang, Qun ;
Yang, Dong .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2007, 46 (09) :2741-2746
[3]   In-situ reduction synthesis of nano-sized Cu2O particles modifying g-C3N4 for enhanced photocatalytic hydrogen production [J].
Chen, Jie ;
Shen, Shaohua ;
Guo, Penghui ;
Wang, Meng ;
Wu, Po ;
Wang, Xixi ;
Guo, Liejin .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2014, 152 :335-341
[4]   Increasing Solar Absorption for Photocatalysis with Black Hydrogenated Titanium Dioxide Nanocrystals [J].
Chen, Xiaobo ;
Liu, Lei ;
Yu, Peter Y. ;
Mao, Samuel S. .
SCIENCE, 2011, 331 (6018) :746-750
[5]   Effect of urea on the photoactivity of titania powder prepared by sol-gel method [J].
Cheng, Ping ;
Deng, Changsheng ;
Gu, Mingyuan ;
Dai, Xiaming .
MATERIALS CHEMISTRY AND PHYSICS, 2008, 107 (01) :77-81
[6]   Mesoporous anatase TiO2 microspheres with interconnected nanoparticles delivering enhanced dye-loading and charge transport for efficient dye-sensitized solar cells [J].
Chu, Liang ;
Qin, Zhengfei ;
Zhang, Qiaoxia ;
Chen, Wei ;
Yang, Jian ;
Yang, Jianping ;
Li, Xing'ao .
APPLIED SURFACE SCIENCE, 2016, 360 :634-640
[7]   β-Cyclodextrin as a Precursor to Holey C-Doped g-C3N4 Nanosheets for Photocatalytic Hydrogen Generation [J].
Da Silva, Eliana S. ;
Moura, Nuno M. M. ;
Coutinho, Ana ;
Drazic, Goran ;
Teixeira, Bruno M. S. ;
Sobolev, Nikolai A. ;
Silva, Claudia G. ;
Neves, M. Graca P. M. S. ;
Prieto, Manuel ;
Faria, Joaquim L. .
CHEMSUSCHEM, 2018, 11 (16) :2681-2694
[8]   Facile in situ synthesis of 2D porous g-C3N4 and g-C3N4/P25(N) heterojunction with enhanced quantum effect for efficient photocatalytic application [J].
Ding, Mingye ;
Wang, Wei ;
Zhou, Yingjie ;
Lu, Chunhua ;
Ni, Yaru ;
Xu, Zhongzi .
JOURNAL OF ALLOYS AND COMPOUNDS, 2015, 635 :34-40
[9]   Facile transformation of low cost thiourea into nitrogen-rich graphitic carbon nitride nanocatalyst with high visible light photocatalytic performance [J].
Dong, Fan ;
Sun, Yanjuan ;
Wu, Liwen ;
Fu, Min ;
Wu, Zhongbiao .
CATALYSIS SCIENCE & TECHNOLOGY, 2012, 2 (07) :1332-1335
[10]   Visible-light activation of TiO2 photocatalysts: Advances in theory and experiments [J].
Etacheri, Vinodkumar ;
Di Valentin, Cristiana ;
Schneider, Jenny ;
Bahnemann, Detlef ;
Pillai, Suresh C. .
JOURNAL OF PHOTOCHEMISTRY AND PHOTOBIOLOGY C-PHOTOCHEMISTRY REVIEWS, 2015, 25 :1-29