Catalytic Multilayers for Efficient Solar Water Oxidation through Catalyst Loading and Surface-State Passivation of BiVO4 Photoanodes

被引:34
作者
Bae, Sanghyun [1 ]
Kim, Hyunwoo [1 ]
Jeon, Dasom [1 ]
Ryu, Jungki [1 ]
机构
[1] Ulsan Natl Inst Sci & Technol UNIST, Sch Energy & Chem Engn, Dept Energy Engn, Ulsan 44919, South Korea
基金
新加坡国家研究基金会;
关键词
electrochemical impedance spectroscopy; solar water oxidation; water oxidation kinetics; photoanodes; water oxidation catalysts; HEMATITE PHOTOELECTRODES; CHARGE SEPARATION; PHOTOSYNTHESIS; NANOPARTICLES; PHOTOCURRENT; PERFORMANCE;
D O I
10.1021/acsami.8b20785
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We studied the kinetics of photoelectrochemical (PEC) water oxidation using a model photoanode BiVO4 modified with various water oxidation catalysts (WOCs) by electrochemical impedance spectroscopy. In particular, we prepared BiVO4 photoanodes with catalytic multilayers (CMs), where cationic polyelectrolytes and anionic polyoxometalate (POM) WOCs were assembled in a desired amount at a nanoscale precision, and compared their performance with those with well-known WOCs such as cobalt phosphate (CoPi) and NiOOH. Our comparative kinetics analysis suggested that the deposition of the CMs improved the kinetics of both the photogenerated charge carrier separation/transport in bulk BiVO4 due to passivation of surface recombination centers and water oxidation at the electrode/electrolyte interface due to deposition of efficient molecular WOCs. On the contrary, the conventional WOCs were mostly effective in the former and less effective in the latter, which is consistent with previous reports. These findings explain why the CMs exhibit an outstanding performance. We also found that separated charge carriers can be efficiently transported to POM WOCs via a hopping mechanism due to the delicate architecture of the CMs, which is reminiscent of natural photosynthetic systems. We believe that this study can not only broaden our understanding on the underlying mechanism of PEC water oxidation but also provide insights for the design and fabrication of novel electrochemical and PEC devices, including efficient water oxidation photoanodes.
引用
收藏
页码:7990 / 7999
页数:10
相关论文
共 50 条
[41]   Vertically Aligned WO3 Nanowire Arrays Grown Directly on Transparent Conducting Oxide Coated Glass: Synthesis and Photoelectrochemical Properties [J].
Su, Jinzhan ;
Feng, Xinjian ;
Sloppy, Jennifer D. ;
Guo, Liejin ;
Grimes, Craig A. .
NANO LETTERS, 2011, 11 (01) :203-208
[42]   Photoelectrochemical water splitting at low applied potential using a NiOOH coated codoped (Sn, Zr) α-Fe2O3 photoanode [J].
Tamirat, Andebet Gedamu ;
Su, Wei-Nien ;
Dubale, Amare Aregahegn ;
Chen, Hung-Ming ;
Hwang, Bing-Joe .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (11) :5949-5961
[43]   Near-complete suppression of surface losses and total internal quantum efficiency in BiVO4 photoanodes [J].
Trzesniewski, Bartek J. ;
Digdaya, Ibadillah A. ;
Nagaki, Tetsuro ;
Ravishankar, Sandheep ;
Herraiz-Cardona, Isaac ;
Vermaas, David A. ;
Longo, Alessandro ;
Gimenez, Sixto ;
Smith, Wilson A. .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (06) :1517-1529
[44]   Photocharged BiVO4 photoanodes for improved solar water splitting [J].
Trzesniewski, Bartek J. ;
Smith, Wilson A. .
JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (08) :2919-2926
[45]   New Iron-Cobalt Oxide Catalysts Promoting BiVO4 Films for Photoelectrochemical Water Splitting [J].
Wang, Songcan ;
He, Tianwei ;
Yun, Jung-Ho ;
Hu, Yuxiang ;
Xiao, Mu ;
Du, Aijun ;
Wang, Lianzhou .
ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (34)
[46]   Balancing Catalytic Activity and Interface Energetics of Electrocatalyst-Coated Photoanodes for Photoelectrochemical Water Splitting [J].
Xu, Zhe ;
Wang, Haoyu ;
Wen, Yunzhou ;
Li, Wenchao ;
Sun, Chuyu ;
He, Yuting ;
Shi, Zhan ;
Pei, Lang ;
Chen, Yongda ;
Yan, Shicheng ;
Zou, Zhigang .
ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (04) :3624-3633
[47]   A Fast Soluble Carbon-Free Molecular Water Oxidation Catalyst Based on Abundant Metals [J].
Yin, Qiushi ;
Tan, Jeffrey Miles ;
Besson, Claire ;
Geletii, Yurii V. ;
Musaev, Djamaladdin G. ;
Kuznetsov, Aleksey E. ;
Luo, Zhen ;
Hardcastle, Ken I. ;
Hill, Craig L. .
SCIENCE, 2010, 328 (5976) :342-345
[48]   Photocurrent of BiVO4 is limited by surface recombination, not surface catalysis [J].
Zachaeus, Carolin ;
Abdi, Fatwa F. ;
Peter, Laurence M. ;
van de Krol, Roel .
CHEMICAL SCIENCE, 2017, 8 (05) :3712-3719
[49]   Doping strategy to promote the charge separation in BiVO4 photoanodes [J].
Zhang, Bo ;
Zhang, Haipeng ;
Wang, Zeyan ;
Zhang, Xiaoyang ;
Qin, Xiaoyan ;
Dai, Ying ;
Liu, Yuanyuan ;
Wang, Peng ;
Li, Yingjie ;
Huang, Baibiao .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2017, 211 :258-265
[50]   Fabrication of BiVO4 photoanode consisted of mesoporous nanoparticles with improved bulk charge separation efficiency [J].
Zhang, Haipeng ;
Li, Huiliang ;
Wang, Zeyan ;
Zheng, Zhaoke ;
Wang, Peng ;
Liu, Yuanyuan ;
Zhang, Xiaoyang ;
Qin, Xiaoyan ;
Dai, Ying ;
Huang, Baibiao .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2018, 238 :586-591