Applications of optical control materials based on localized surface plasmon resonance effect in smart windows

被引:0
|
作者
Na Ta [1 ]
JingYi Huang [1 ]
Shuai He [1 ]
WHanggai [2 ]
LuoMeng Chao [1 ]
机构
[1] College of Science , Inner Mongolia University of Science and Technology
[2] Fundamental Aspects of Materials and Energy, Faculty of Applied Sciences , Delft University of
关键词
D O I
暂无
中图分类号
TB34 [功能材料]; TU228 [门、窗];
学科分类号
080501 ;
摘要
The increasing energy consumption in buildings due to cooling and heating,accounting for over one-third of the total energy consumption in society,has become a growing concern.Therefore,reducing building energy consumption has become an urgent issue for countries worldwide.Windows serve as the primary channel for energy exchange between the indoor and the outdoor environments.While providing natural lighting for occupants,windows are also the weakest link in terms of energy consumption.In recent years,there have been some new and superior coating glass technologies compared to traditional low-emissivity glass.These coatings utilize various optical functional materials to regulate the incident sunlight,aiming to save cooling and heating energy consumption.Materials,such as tungsten-based compounds,vanadium dioxide,lanthanum hexaboride,or copper monosulfide,can absorb near-infrared light to effectively control solar radiation by leveraging the localized surface plasmon resonance(LSPR) effect of nanoparticles.This paper mainly introduces the micro-mechanisms of these materials and provides a detailed summary of the latest advancements in coating materials.The application and effects of these coatings in building energy conservation are emphasized.Finally,the challenges and prospects of LSPRbased smart windows are discussed.It is expected that this review will provide new insights into the application of smart windows in green buildings.
引用
收藏
页码:711 / 731
页数:21
相关论文
共 50 条
  • [31] Localized surface plasmon resonance (LSPR) optical detection of hydrogen
    Sil, Devika
    Gilroy, Kyle
    Sylla, Safiya
    Neretina, Svetlana
    Borguet, Eric
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [32] Review of Surface Plasmon Resonance and Localized Surface Plasmon Resonance Sensor
    Chen, Yong
    Ming, Hai
    PHOTONIC SENSORS, 2012, 2 (01) : 37 - 49
  • [33] Review of surface plasmon resonance and localized surface plasmon resonance sensor
    Yong Chen
    Hai Ming
    Photonic Sensors, 2012, 2 (1) : 37 - 49
  • [34] Understanding localized surface plasmon resonance with propagative surface plasmon polaritons in optical nanogap antennas
    Hongwei Jia
    Fan Yang
    Ying Zhong
    Haitao Liu
    Photonics Research, 2016, (06) : 293 - 305
  • [35] Understanding localized surface plasmon resonance with propagative surface plasmon polaritons in optical nanogap antennas
    Hongwei Jia
    Fan Yang
    Ying Zhong
    Haitao Liu
    Photonics Research, 2016, 4 (06) : 293 - 305
  • [36] Understanding localized surface plasmon resonance with propagative surface plasmon polaritons in optical nanogap antennas
    Jia, Hongwei
    Yang, Fan
    Zhong, Ying
    Liu, Haitao
    PHOTONICS RESEARCH, 2016, 4 (06) : 293 - 305
  • [37] Biosensing Applications Using Nanostructure-Based Localized Surface Plasmon Resonance Sensors
    Kim, Dong Min
    Park, Jong Seong
    Jung, Seung-Woon
    Yeom, Jinho
    Yoo, Seung Min
    SENSORS, 2021, 21 (09)
  • [38] Optical Biochip with Multichannels for Detecting Biotin–Streptavidin Based on Localized Surface Plasmon Resonance
    Shaoli Zhu
    Yongqi Fu
    Plasmonics, 2009, 4 : 209 - 216
  • [39] A portable optical fiber biosensor for the detection of zearalenone based on the localized surface plasmon resonance
    Xu, Yichao
    Xiong, Meng
    Yan, Hui
    SENSORS AND ACTUATORS B-CHEMICAL, 2021, 336
  • [40] Photothermal optical coherence tomography based on the localized surface plasmon resonance of Au nanoring
    Chi, Ting-Ta
    Tu, Yi-Chou
    Li, Ming-Jyun
    Chu, Che-Kuan
    Chang, Yu-Wei
    Yu, Chih-Kang
    Kiang, Yean-Woei
    Yang, C. C.
    OPTICS EXPRESS, 2014, 22 (10): : 11754 - 11769