Gold nano-urchins for plasmonic enhancement of random lasing in a dye-doped polymer

被引:9
|
作者
Gummaluri, Venkata Siva [1 ]
Gayathri, R. [1 ,2 ]
Vijayan, C. [2 ]
Murukeshan, Vadakke Matham [1 ]
机构
[1] Nanyang Technol Univ NTU, Ctr Opt & Laser Engn COLE, Sch Mech & Aerosp Engn, Singapore 639798, Singapore
[2] Indian Inst Technol Madras, Dept Phys, Chennai 600036, Tamil Nadu, India
关键词
random laser; plasmonics; spectroscopy; gold nano-urchins; RANDOM LASER; NANOSTARS;
D O I
10.1088/2040-8986/ab896b
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We report our results on a plasmonic random laser with three-dimensional (3D) gold nano-urchins as scatterers distributed in rhodamine 6G dye-doped polymer film. The performance of anisotropic urchin scatterers is first studied using electromagnetic simulations for absorption/scattering cross-section and local field enhancement. This is compared to gold nanospheres of similar size. The simulation results indicate a two-fold local field enhancement, a higher scattering cross-section, and a low absorption cross-section in the 400 nm-570 nm spectral region of interest for nano-urchins. The effective scattering mean free path for urchins is calculated to be 90 mu m less than nanoparticles. This suggests nano-urchins are efficient scatterers over conventional nanospheres for random lasing. A random laser is then experimentally demonstrated using gold nano-urchin scatterers, and incoherent lasing emission is observed for very low urchin number density of order similar to 10(8) cm(-3). A three-fold increase in scatterer concentration is shown to reduce the threshold energy from 0.8 mJ to 0.28 mJ per pulse. This is accompanied by a linewidth decrease from the rhodamine 6G emission bandwidth of 58 nm to up to 3 nm. Along with particle scattering, the waveguiding mechanism is identified to provide additional feedback for the lasing. This has been validated by the angular measurement of emission and by using spot pumping scheme. With low gold nano-urchin concentration, being incoherent and in film form, this plasmonic random laser could be an economical solution for speckle-free imaging applications.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Random lasing in dye doped with silica nano-powder
    Li, W. (chao121328@sohu.com), 1798, Editorial Office of High Power Laser and Particle Beams, P.O. Box 919-805, Mianyang, 621900, China (25):
  • [32] Tunable random lasing in dye-doped mesoporous silica SBA-15
    De Vicente, Fabio S.
    Moreno, Leandro X.
    Prado, Marcus V. A.
    Abegao, Luis M. G.
    Melo, Leandro A.
    Rodrigues Jr, Jose J.
    Alencar, Marcio A. R. C.
    PHYSICAL REVIEW MATERIALS, 2021, 5 (02):
  • [33] Manganese-doped feroxyhyte nano-urchins produced by chemical methods
    Nishida, Naoki
    Amagasa, Shota
    Ito, Honami
    Kobayashi, Yoshio
    Yamada, Yasuhiro
    HYPERFINE INTERACTIONS, 2018, 239
  • [34] Electrospun polyvinylidene fluoride mats as a novel platform for dye-doped random lasing
    Padiyakkuth, Nideesh
    Antoine, Rodolphe
    Kalarikkal, Nandakumar
    JOURNAL OF LUMINESCENCE, 2022, 252
  • [35] Random lasing and weak localization of light in dye-doped nematic liquid crystals
    Strangi, G.
    Ferjani, S.
    Barna, V.
    De Luca, A.
    Versace, C.
    Scaramuzza, N.
    Bartolino, R.
    OPTICS EXPRESS, 2006, 14 (17): : 7737 - 7744
  • [36] Random lasing in dye-doped electrospun PMMA fibers with different emission modes
    Lv, Hao
    Shi, Bingrong
    Shen, Yanli
    Wang, Maorong
    Zhang, Shuaiyi
    Ma, Lili
    Wang, Xia
    OPTICS AND LASER TECHNOLOGY, 2024, 170
  • [37] Analysis of Lasing in Dye-Doped Photonic Crystals
    Reddy, M. Srinivas
    Kedia, Sunita
    Vijaya, Ramarao
    Ray, Alok Kumar
    Sinha, Sucharita
    Rukhlenko, Ivan D.
    Premaratne, Malin
    IEEE PHOTONICS JOURNAL, 2013, 5 (01):
  • [38] Microring lasing from a dye-doped polymer-coated silica fiber
    Peter, Jaison
    Vallabhan, C. P. G.
    Radhakrishnan, P.
    Nampoori, V. P. N.
    Kailasnath, M.
    LASER PHYSICS, 2013, 23 (11)
  • [39] High efficiency lasing of a dye-doped polymer laser with 1.06 μm pumping
    Bezrodnyi, VI
    Ishchenko, AA
    APPLIED PHYSICS B-LASERS AND OPTICS, 2001, 73 (03): : 283 - 285
  • [40] Manganese-doped feroxyhyte nano-urchins produced by chemical methods
    Naoki Nishida
    Shota Amagasa
    Honami Ito
    Yoshio Kobayashi
    Yasuhiro Yamada
    Hyperfine Interactions, 2018, 239