Integration of redox cocatalysts for artificial photosynthesis

被引:142
作者
Qiu, Bocheng [1 ]
Du, Mengmeng [1 ]
Ma, Yingxin [1 ]
Zhu, Qiaohong [2 ]
Xing, Mingyang [2 ]
Zhang, Jinlong [2 ,3 ]
机构
[1] Nanjing Agr Univ, Coll Sci, Jiangsu Key Lab Pesticide Sci, Dept Chem, Nanjing 210095, Peoples R China
[2] East China Univ Sci & Technol, Sch Chem & Mol Engn, Feringa Nobel Prize Scientist Joint Res Ctr,Shang, Key Lab Adv Mat & Joint Int Res Lab Precis Chem &, Shanghai 200237, Peoples R China
[3] Yancheng Inst Technol, Sch Chem & Chem Engn, Yancheng 224051, Peoples R China
基金
中国国家自然科学基金;
关键词
PHOTOCATALYTIC HYDROGEN-PRODUCTION; GRAPHITIC CARBON NITRIDE; METAL-FREE COCATALYST; SPATIALLY SEPARATED COCATALYSTS; REDUCED GRAPHENE OXIDE; DUAL-COCATALYSTS; Z-SCHEME; CHARGE-TRANSFER; CO2; REDUCTION; H-2; PRODUCTION;
D O I
10.1039/d1ee02359d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Solar fuels and chemical production using photosynthetic devices by harnessing solar energy remains an attractive prospect owing to its being a potential alternative to fossil feedstocks, though such artificial photosynthetic systems for direct solar-to-chemical conversion are still far from industrial applications as a consequence of emergent challenges that may be well addressed by the exploration of integrated photocatalysis devices with enhanced activity, selectivity, and stability. Simultaneously embedding dual cocatalysts onto photocatalysts aims to tackle these limitations of artificial photosynthesis initiated by the bare photocatalyst while offering an opportunity to realize their synergistic operations. In this review, we summarize the essential design principles and emerging configurations of dual cocatalysts, and provide a side-by-side comparison to reveal their strengths and deficiencies. In parallel, we discuss how to choose a pair of redox cocatalysts for a specific photocatalytic redox reaction, and how some key lessons that have emerged from the relevant studies can be applied into further investigations for fuels and chemicals generation. Finally, we outline the remaining challenges and potential advances in the discovery of a robust and renewable artificial photosynthesis system.
引用
收藏
页码:5260 / 5288
页数:29
相关论文
共 244 条
[1]   Cobalt phosphate modified TiO2 nanowire arrays as co-catalysts for solar water splitting [J].
Ai, Guanjie ;
Mo, Rong ;
Li, Hongxing ;
Zhong, Jianxin .
NANOSCALE, 2015, 7 (15) :6722-6728
[2]   High-Density Ultra-small Clusters and Single-Atom Fe Sites Embedded in Graphitic Carbon Nitride (g-C3N4) for Highly Efficient Catalytic Advanced Oxidation Processes [J].
An, Sufeng ;
Zhang, Guanghui ;
Wang, Tingwen ;
Zhan, Wenna ;
Li, Keyan ;
Song, Chunshan ;
Miller, Jeffrey T. ;
Miao, Shu ;
Wang, Junhu ;
Guo, Xinwen .
ACS NANO, 2018, 12 (09) :9441-9450
[3]   Pathways to electrochemical solar-hydrogen technologies [J].
Ardo, Shane ;
Rivas, David Fernandez ;
Modestino, Miguel A. ;
Greiving, Verena Schulze ;
Abdi, Fatwa F. ;
Alarcon Llado, Esther ;
Artero, Vincent ;
Ayers, Katherine ;
Battaglia, Corsin ;
Becker, Jan-Philipp ;
Bederak, Dmytro ;
Berger, Alan ;
Buda, Francesco ;
Chinello, Enrico ;
Dam, Bernard ;
Di Palma, Valerio ;
Edvinsson, Tomas ;
Fujii, Katsushi ;
Gardeniers, Han ;
Geerlings, Hans ;
Hashemi, S. Mohammad H. ;
Haussener, Sophia ;
Houle, Frances ;
Huskens, Jurriaan ;
James, Brian D. ;
Konrad, Kornelia ;
Kudo, Akihiko ;
Kunturu, Pramod Patil ;
Lohse, Detlef ;
Mei, Bastian ;
Miller, Eric L. ;
Moore, Gary F. ;
Muller, Jiri ;
Orchard, Katherine L. ;
Rosser, Timothy E. ;
Saadi, Fadl H. ;
Schuttauf, Jan-Willem ;
Seger, Brian ;
Sheehan, Stafford W. ;
Smith, Wilson A. ;
Spurgeon, Joshua ;
Tang, Maureen H. ;
van de Krol, Roel ;
Vesborg, Peter C. K. ;
Westerik, Pieter .
ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (10) :2768-2783
[4]   Plasmon resonance-enhanced photoelectrodes and photocatalysts [J].
Augustynski, Jan ;
Bienkowski, Krzysztof ;
Solarska, Renata .
COORDINATION CHEMISTRY REVIEWS, 2016, 325 :116-124
[5]   Facet-Engineered Surface and Interface Design of Photocatalytic Materials [J].
Bai, Song ;
Wang, Lili ;
Li, Zhengquan ;
Xiong, Yujie .
ADVANCED SCIENCE, 2017, 4 (01)
[6]   Toward Enhanced Photocatalytic Oxygen Evolution: Synergetic Utilization of Plasmonic Effect and Schottky Junction via Interfacing Facet Selection [J].
Bai, Song ;
Li, Xiyu ;
Kong, Qiao ;
Long, Ran ;
Wang, Chengming ;
Jiang, Jun ;
Xiong, Yujie .
ADVANCED MATERIALS, 2015, 27 (22) :3444-3452
[7]   A dual-cocatalyst-loaded Au/BiOI/MnOx system for enhanced photocatalytic greenhouse gas conversion into solar fuels [J].
Bai, Yang ;
Ye, Liqun ;
Wang, Li ;
Shi, Xian ;
Wang, Pingquan ;
Bai, Wei .
ENVIRONMENTAL SCIENCE-NANO, 2016, 3 (04) :902-909
[8]   Insight into Electrocatalysts as Co-catalysts in Efficient Photocatalytic Hydrogen Evolution [J].
Bi, Wentuan ;
Zhang, Lei ;
Sun, Zhongti ;
Li, Xiaogang ;
Jin, Tao ;
Wu, Xiaojun ;
Zhang, Qun ;
Luo, Yi ;
Wu, Changzheng ;
Xie, Yi .
ACS CATALYSIS, 2016, 6 (07) :4253-4257
[9]   Light-driven dinitrogen reduction catalyzed by a CdS:nitrogenase MoFe protein biohybrid [J].
Brown, Katherine A. ;
Harris, Derek F. ;
Wilker, Molly B. ;
Rasmussen, Andrew ;
Khadka, Nimesh ;
Hamby, Hayden ;
Keable, Stephen ;
Dukovic, Gordana ;
Peters, John W. ;
Seefeldt, Lance C. ;
King, Paul W. .
SCIENCE, 2016, 352 (6284) :448-450
[10]   What Should We Make with CO2 and How Can We Make It? [J].
Bushuyev, Oleksandr S. ;
De Luna, Phil ;
Cao Thang Dinh ;
Tao, Ling ;
Saur, Genevieve ;
van de lagemaat, Jao ;
Kelley, Shana O. ;
Sargent, Edward H. .
JOULE, 2018, 2 (05) :825-832