Active Site Engineering on Plasmonic Nanostructures for Efficient Photocatalysis

被引:113
作者
Jiang, Wenbin [1 ]
Low, Beverly Qian Ling [1 ]
Long, Ran [2 ]
Low, Jingxiang [2 ]
Loh, Hongyi [1 ]
Tang, Karen Yuanting [1 ]
Chai, Casandra Hui Teng [1 ]
Zhu, Houjuan [1 ]
Zhu, Hui [3 ]
Li, Zibiao [1 ,4 ]
Loh, Xian Jun [1 ,4 ]
Xiong, Yujie [2 ]
Ye, Enyi [1 ,4 ]
机构
[1] ASTAR, Inst Mat Res & Engn IMRE, Singapore 138634, Singapore
[2] Univ Sci & Technol China, Sch Chem & Mat Sci, Hefei 230026, Anhui, Peoples R China
[3] Natl Univ Singapore, Dept Chem, Singapore 117543, Singapore
[4] ASTAR, Inst Sustainabil Chem Energy & Environm ISCE2, Singapore 138634, Singapore
基金
国家重点研发计划;
关键词
photocatalysis; plasmonic nanostructure; active site engineering; energy coupling; reaction pathway; design principle; synthesis and characterization; emerging application; HOT-ELECTRON TRANSFER; VISIBLE-LIGHT IRRADIATION; GOLD NANOPARTICLES; CARBON-DIOXIDE; HYDROGEN-PRODUCTION; ANTENNA-REACTOR; CHARGE-TRANSFER; CO2; REDUCTION; INDUCED DISSOCIATION; METAL NANOPARTICLES;
D O I
10.1021/acsnano.2c12314
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Plasmonic nanostructures have shown immense potential in photocatalysis because of their distinct photochemical properties associated with tunable photoresponses and strong light-matter interactions. The introduction of highly active sites is essential to fully exploit the potential of plasmonic nanostructures in photocatalysis, considering the inferior intrinsic activities of typical plasmonic metals. This review focuses on active site-engineered plasmonic nanostructures with enhanced photocatalytic performance, wherein the active sites are classified into four types (i.e., metallic sites, defect sites, ligand-grafted sites, and interface sites). The synergy between active sites and plasmonic nanostructures in photocatalysis is discussed in detail after briefly introducing the material synthesis and characterization methods. Active sites can promote the coupling of solar energy harvested by plasmonic metal to catalytic reactions in the form of local electromagnetic fields, hot carriers, and photothermal heating. Moreover, efficient energy coupling potentially regulates the reaction pathway by facilitating the excited state formation of reactants, changing the status of active sites, and creating additional active sites using photoexcited plasmonic metals. Afterward, the application of active site-engineered plasmonic nanostructures in emerging photocatalytic reactions is summarized. Finally, a summary and perspective of the existing challenges and future opportunities are presented. This review aims to deliver some insights into plasmonic photocatalysis from the perspective of active sites, expediting the discovery of high-performance plasmonic photocatalysts.
引用
收藏
页码:4193 / 4229
页数:37
相关论文
共 374 条
[1]   Atomically Conformal Metal Laminations on Plasmonic Nanocrystals for Efficient Catalysis [J].
Acharya, Anubhab ;
Dubbu, Sateesh ;
Kumar, Sumit ;
Kumari, Nitee ;
Kim, Yeseul ;
So, Sunae ;
Kwon, Taewan ;
Wang, Zhipeng ;
Park, Junbeom ;
Cho, Yoon-Kyoung ;
Rho, Junsuk ;
Oh, Sang Ho ;
Kumar, Amit ;
Lee, In Su .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2021, 143 (28) :10582-10589
[2]   Localized Surface Plasmon Resonance in Semiconductor Nanocrystals [J].
Agrawal, Ankit ;
Cho, Shin Hum ;
Zandi, Omid ;
Ghosh, Sandeep ;
Johns, Robert W. ;
Milliron, Delia J. .
CHEMICAL REVIEWS, 2018, 118 (06) :3121-3207
[3]   Site-Selective Carving and Co-Deposition: Transformation of Ag Nanocubes into Concave Nanocrystals Encased by Au-Ag Alloy Frames [J].
Ahn, Jaewan ;
Wang, Daniel ;
Ding, Yong ;
Zhang, Jiawei ;
Qin, Dong .
ACS NANO, 2018, 12 (01) :298-307
[4]   Wavelength-Dependent Bifunctional Plasmonic Photocatalysis in Au/Chalcopyrite Hybrid Nanostructures [J].
An, Xingda ;
Kays, Joshua C. ;
Lightcap, Ian, V ;
Ouyang, Tianhong ;
Dennis, Allison M. ;
Reinhard, Bjorn M. .
ACS NANO, 2022, 16 (04) :6813-6824
[5]   Catalytic conversion of solar to chemical energy on plasmonic metal nanostructures [J].
Aslam, Umar ;
Rao, Vishal Govind ;
Chavez, Steven ;
Linic, Suljo .
NATURE CATALYSIS, 2018, 1 (09) :656-665
[6]  
Aslam U, 2017, NAT NANOTECHNOL, V12, P1000, DOI [10.1038/nnano.2017.131, 10.1038/NNANO.2017.131]
[7]   Anti-Stokes Thermometry in Nanoplasmonics [J].
Baffou, Guillaume .
ACS NANO, 2021, 15 (04) :5785-5792
[8]   Applications and challenges of thermoplasmonics [J].
Baffou, Guillaume ;
Cichos, Frank ;
Quidant, Romain .
NATURE MATERIALS, 2020, 19 (09) :946-958
[9]   Simple experimental procedures to distinguish photothermal from hot-carrier processes in plasmonics [J].
Baffou, Guillaume ;
Bordacchini, Ivan ;
Baldi, Andrea ;
Quidant, Romain .
LIGHT-SCIENCE & APPLICATIONS, 2020, 9 (01)
[10]   Photoinduced Heating of Nanoparticle Arrays [J].
Baffou, Guillaume ;
Berto, Pascal ;
Urena, Esteban Bermudez ;
Quidant, Romain ;
Monneret, Serge ;
Polleux, Julien ;
Rigneault, Herve .
ACS NANO, 2013, 7 (08) :6478-6488