Energy transfer in plasmonic photocatalytic composites

被引:487
|
作者
Ma, Xiang-Chao [1 ]
Dai, Ying [1 ]
Yu, Lin [1 ]
Huang, Bai-Biao [1 ]
机构
[1] Shandong Univ, State Key Lab Crystal Mat, Sch Phys, Jinan 250100, Peoples R China
来源
基金
美国国家科学基金会;
关键词
hot electron injection; near-field enhancement; plasmonic photocatalyst; resonance energy transfer; surface plasmon resonance; CORE-SHELL NANOSTRUCTURES; INTERNAL POLAR FIELD; AG-AT-AGCL; VISIBLE-LIGHT; HOT-ELECTRON; TITANIUM-DIOXIDE; PHOTOGENERATED ELECTRON; SILVER NANOPARTICLES; TIO2; PHOTOCATALYSIS; METAL NANOCRYSTALS;
D O I
10.1038/lsa.2016.17
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Among the many novel photocatalytic systems developed in very recent years, plasmonic photocatalytic composites possess great potential for use in applications and are one of the most intensively investigated photocatalytic systems owing to their high solar energy utilization efficiency. In these composites, the plasmonic nanoparticles (PNPs) efficiently absorb solar light through localized surface plasmon resonance and convert it into energetic electrons and holes in the nearby semiconductor. This energy transfer from PNPs to semiconductors plays a decisive role in the overall photocatalytic performance. Thus, the underlying physical mechanism is of great scientific and technological importance and is one of the hottest topics in the area of plasmonic photocatalysts. In this review, we examine the very recent advances in understanding the energy transfer process in plasmonic photocatalytic composites, describing both the theoretical basis of this process and experimental demonstrations. The factors that affect the energy transfer efficiencies and how to improve the efficiencies to yield better photocatalytic performance are also discussed. Furthermore, comparisons are made between the various energy transfer processes, emphasizing their limitations/benefits for efficient operation of plasmonic photocatalysts.
引用
收藏
页码:e16017 / e16017
页数:13
相关论文
共 50 条
  • [31] Optical Energy Transfer from Photonic Nanowire to Plasmonic Nanowire
    Yang, Xianguang
    Li, Yuchao
    Lou, Zaizhu
    Chen, Qin
    Li, Baojun
    ACS APPLIED ENERGY MATERIALS, 2018, 1 (02): : 278 - 283
  • [32] Collective Forster energy transfer modified by planar plasmonic mirror
    Poddubny, Alexander N.
    METAMATERIALS, METADEVICES, AND METASYSTEMS 2015, 2015, 9544
  • [33] Effect of plasmonic nanostructures and nanofilms on fluorescence resonance energy transfer
    Szmacinski, Henryk
    Ray, Krishanu
    Lakowicz, Joseph R.
    JOURNAL OF BIOPHOTONICS, 2009, 2 (04) : 243 - 252
  • [34] Resolving energy transfer dynamics in plasmonic bowtie nanocavity arrays
    Deeb, Claire
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251
  • [35] Enhancement of Ultraviolet Photoinduced Energy Transfer Near Plasmonic Nanostructures
    Thanopulos, Ioannis
    Paspalakis, Emmanuel
    Yannopapas, Vassilios
    JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (11): : 4370 - 4374
  • [36] Cooperative emission mediated by cooperative energy transfer to a plasmonic antenna
    Shahbazyan, Tigran, V
    PHYSICAL REVIEW B, 2019, 99 (12)
  • [37] Energy transfer in hybrid systems quantum dot–plasmonic nanostructures
    A. V. Chaplik
    JETP Letters, 2016, 103 : 708 - 710
  • [38] Ag/Bi2WO6 plasmonic composites with enhanced visible photocatalytic activity
    Li, Junqi
    Guo, Zhanyun
    Zhu, Zhenfeng
    CERAMICS INTERNATIONAL, 2014, 40 (05) : 6495 - 6501
  • [39] Plasmonic induced Biochar@WO3/Cu composites for boosted photocatalytic antibiotic removal
    Wang, Luyao
    Shi, Quanquan
    Sun, Yanxin
    Xiong, Qi
    Ping, Guichen
    SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2025, 44
  • [40] Terahertz plasmonic composites
    Nemat-Nasser, Syrus C.
    Amirkhizi, Alireza V.
    Padilla, Willie J.
    Basov, Dimitri N.
    Nemat-Nasser, Sia
    Bruzewicz, Derek
    Whitesides, George
    PHYSICAL REVIEW E, 2007, 75 (03)