The effect of the refractive index profile on the optical response of plasmonic nanostructures inside semiconductors

被引:5
作者
Rex, Zachary T. [1 ,2 ]
Di Vece, Marcel [1 ,2 ]
机构
[1] Univ Milan, Interdisciplinary Ctr Nanostruct Mat & Interfaces, Via Celoria 16, I-20133 Milan, Italy
[2] Univ Milan, Phys Dept Aldo Pontremoli, Via Celoria 16, I-20133 Milan, Italy
关键词
Semiconductors; Plasmonic nanostructures; Solar cells; FDTD simulations; SILICON; ABSORPTION; GOLD; ENHANCEMENT; DISPERSION; DESIGN; SIZE;
D O I
10.1016/j.optmat.2019.109314
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The inclusion of plasmonic nanostructures inside semiconductors has been explored over the last decades with the prominent application of increasing the efficiency in solar cells. The plasmonic properties were often only phenomenologically explained by comparison of experiments with simulations. In this work we investigated the plasmonic properties of a silver particle inside virtual semiconductors with varying band gaps. Because the particle plasmon peaks strictly followed the virtual semiconductor band gap, it was found that only the maxima in the real part of the refractive index were responsible for the presence of particle plasmon peaks. This model, in which the plasmonic response is to a large extent determined by the semiconductor refractive index profile, explains previous investigations of plasmonic nanostructures inside semiconductors in a simple way and will enable a detailed design and explanation of future nanostructured plasmonic systems for solar cells and other devices.
引用
收藏
页数:5
相关论文
共 50 条
  • [21] Triple narrow-band plasmonic perfect absorber for refractive index sensing applications of optical frequency
    Cheng, Yongzhi
    Luo, Hui
    Chen, Fu
    Gong, Rongzhou
    [J]. OSA CONTINUUM, 2019, 2 (07) : 2113 - 2122
  • [22] Double-Doppler wavelength conversion of infrared optical pulses by moving grating of refractive index in semiconductors
    Igor Scherbatko
    [J]. Optical and Quantum Electronics, 1999, 31 : 965 - 979
  • [23] Double-Doppler wavelength conversion of infrared optical pulses by moving grating of refractive index in semiconductors
    Scherbatko, I
    [J]. OPTICAL AND QUANTUM ELECTRONICS, 1999, 31 (9-10) : 965 - 979
  • [24] Effect of dip in refractive index profile on fiber Raman gain amplifier performance
    Pramanik, Sanchita
    Sarkar, Somenath
    [J]. OPTICS COMMUNICATIONS, 2014, 329 : 145 - 150
  • [25] Comparative Analysis of the Near- and Far-Field Optical Response of Thin Plasmonic Nanostructures
    Zundel, Lauren
    Gieri, Paul
    Sanders, Stephen
    Manjavacas, Alejandro
    [J]. ADVANCED OPTICAL MATERIALS, 2022, 10 (09):
  • [26] Measurement of optical nonlinear refractive index response of graphene nanoparticles dispersed in an aqueous solution by Z scan technique
    Jimenez-Perez, J. L.
    Gutierrez-Fuentes, R.
    Lopez-Gamboa, G.
    Sanchez-Ramirez, J. F.
    Correa-Pacheco, Z. N.
    Carbajal-Valdez, R.
    [J]. OPTICAL MATERIALS, 2018, 84 : 236 - 241
  • [27] Multipole Plasmonic Optical Properties of the Au Cone-On-Plate Nanostructure: Change the Effective Mean Free Path to Improve Refractive Index Sensing
    Guo, Yu-Bo
    Zhu, Jian
    Weng, Guo-Jun
    Li, Jian-Jun
    Zhao, Jun-Wu
    [J]. PLASMONICS, 2023, 18 (01) : 407 - 420
  • [28] Measuring the nonlinear refractive index of graphene using the optical Kerr effect method
    Dremetsika, Evdokia
    Dlubak, Bruno
    Gorza, Simon-Pierre
    Ciret, Charles
    Martin, Marie-Blandine
    Hofmann, Stephan
    Seneor, Pierre
    Dolfi, Daniel
    Massar, Serge
    Emplit, Philippe
    Kockaert, Pascal
    [J]. OPTICS LETTERS, 2016, 41 (14) : 3281 - 3284
  • [29] Preparation of gold nanorods with different aspect ratio and the optical response to solution refractive index
    Feng, Lili
    Xuan, Zhenwen
    Ma, Jiebing
    Chen, Jun
    Cui, Daxiang
    Su, Changwei
    Guo, Junming
    Zhang, Yingjie
    [J]. JOURNAL OF EXPERIMENTAL NANOSCIENCE, 2015, 10 (04) : 258 - 267
  • [30] Model and algorithm of optimization of a refractive index profile of single-mode fibers for optical communication networks
    Burdin, VA
    Andreev, RV
    Praporshchikov, DE
    [J]. OPTICAL TECHNOLOGIES FOR COMMUNICATIONS, 2004, 5485 : 63 - 74