Localized surface plasmon resonance with broadband ultralow reflectivity from metal nanoparticles on glass and silicon subwavelength structures

被引:32
作者
Tan, Chee Leong [1 ]
Jang, Sung Jun [2 ]
Lee, Yong Tak [1 ,2 ,3 ]
机构
[1] GIST, Sch Photon Sci & Technol, Kwangju 500712, South Korea
[2] GIST, Sch Informat & Commun, Kwangju 500712, South Korea
[3] GIST, Dept Nanobio Mat & Elect, Kwangju 500712, South Korea
来源
OPTICS EXPRESS | 2012年 / 20卷 / 16期
基金
新加坡国家研究基金会;
关键词
SOLAR-CELLS; LIGHT; ANTIREFLECTION;
D O I
10.1364/OE.20.017448
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Metal nanoparticles (NPs) are well known to increase the efficiency of photovoltaic devices by reducing reflection and increasing light trapping within device. However, metal NPs on top flat surface suffer from high reflectivity losses due to the backscattering of the NPs itself. In this paper, we experimentally demonstrate a novel structure that exhibits localized surface plasmon resonance (LSPR) along with broadband ultralow reflectivity over a wide range of wavelength. Experimental results show that by depositing Ag NPs and Au NPs onto glass subwavelength structures (SWS) the backscattering effect of NPs can be suppressed, and the reflections can be considerably reduced by up to 87.5% and 66.7% respectively, compared to NPs fabricated on a flat glass substrate. Broadband ultralow reflection (< 2%) is also observed in the case of Ag NPs and Au NPs fabricated on cone shaped SWS silicon substrate over a wavelength range from 200 nm to 800 nm. This broadband ultralow reflectivity of Ag NPs and Au NPs on silicon SWS structure leads to a substantial enhancement of average absorption by 66.53% and 66.94%, respectively, over a broad wavelength range (200-2000 nm). This allows light absorption by NPs on SWS silicon structure close to 100% over a wavelength range from 300 nm to 1000 nm. The mechanism responsible for the increased light absorption is also explained. (C) 2012 Optical Society of America
引用
收藏
页码:17448 / 17455
页数:8
相关论文
共 15 条
  • [1] Biosensing with plasmonic nanosensors
    Anker, Jeffrey N.
    Hall, W. Paige
    Lyandres, Olga
    Shah, Nilam C.
    Zhao, Jing
    Van Duyne, Richard P.
    [J]. NATURE MATERIALS, 2008, 7 (06) : 442 - 453
  • [2] Bohren C.F, 2008, Absorption and Scattering of Light by Small Particles
  • [3] Catchpole KR, 2008, OPT EXPRESS, V16, P21793, DOI 10.1364/OE.16.021793
  • [4] Plasmonics and nanophotonics for photovoltaics
    Catchpole, Kylie R.
    Mokkapati, Sudha
    Beck, Fiona
    Wang, Er-Chien
    McKinley, Arnold
    Basch, Angelika
    Lee, Jaret
    [J]. MRS BULLETIN, 2011, 36 (06) : 461 - 467
  • [5] Improved broadband and quasi-omnidirectional anti-reflection properties with biomimetic silicon nanostructures
    Huang, Yi-Fan
    Chattopadhyay, Surojit
    Jen, Yi-Jun
    Peng, Cheng-Yu
    Liu, Tze-An
    Hsu, Yu-Kuei
    Pan, Ci-Ling
    Lo, Hung-Chun
    Hsu, Chih-Hsun
    Chang, Yuan-Huei
    Lee, Chih-Shan
    Chen, Kuei-Hsien
    Chen, Li-Chyong
    [J]. NATURE NANOTECHNOLOGY, 2007, 2 (12) : 770 - 774
  • [6] Antireflection behavior of silicon subwavelength periodic structures for visible light
    Lalanne, P
    Morris, GM
    [J]. NANOTECHNOLOGY, 1997, 8 (02) : 53 - 56
  • [7] Improved light absorption in thin-film silicon solar cells by integration of silver nanoparticles
    Moulin, E.
    Sukmanowski, J.
    Luo, P.
    Carius, R.
    Royer, F. X.
    Stiebig, H.
    [J]. JOURNAL OF NON-CRYSTALLINE SOLIDS, 2008, 354 (19-25) : 2488 - 2491
  • [8] Ordered arrays of faceted gold nanoparticles obtained by dewetting and nanosphere lithography
    Mueller, Claudia Manuela
    Mornaghini, Flavio Carlo Filippo
    Spolenak, Ralph
    [J]. NANOTECHNOLOGY, 2008, 19 (48)
  • [9] Surface-plasmon-enhanced light emitters based on InGaN quantum wells
    Okamoto, K
    Niki, I
    Shvartser, A
    Narukawa, Y
    Mukai, T
    Scherer, A
    [J]. NATURE MATERIALS, 2004, 3 (09) : 601 - 605
  • [10] Surface plasmon enhanced silicon solar cells
    Pillai, S.
    Catchpole, K. R.
    Trupke, T.
    Green, M. A.
    [J]. JOURNAL OF APPLIED PHYSICS, 2007, 101 (09)