Plasmon-Assisted Audio Recording

被引:0
|
作者
Hao Chen
Abdul M. Bhuiya
Qing Ding
Kimani C. Toussaint
机构
[1] University of Illinois Urbana–Champaign,Department of Mechanical Science and Engineering
[2] University of Illinois Urbana–Champaign,Department of Electrical and Computer Engineering
[3] Visiting Associate Professor,Department of Mechanical Engineering
[4] Massachusetts Institute of Technology,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
We present the first demonstration of the recording of optically encoded audio onto a plasmonic nanostructure. Analogous to the “optical sound” approach used in the early twentieth century to store sound on photographic film, we show that arrays of gold, pillar-supported bowtie nanoantennas could be used in a similar fashion to store sound information that is transferred via an amplitude modulated optical signal to the near field of an optical microscope. Retrieval of the audio information is achieved using standard imaging optics. We demonstrate that the sound information can be stored either as time-varying waveforms or in the frequency domain as the corresponding amplitude and phase spectra. A “plasmonic musical keyboard” comprising of 8 basic musical notes is constructed and used to play a short song. For comparison, we employ the correlation coefficient, which reveals that original and retrieved sound files are similar with maximum and minimum values of 0.995 and 0.342, respectively. We also show that the pBNAs could be used for basic signal processing by ablating unwanted frequency components on the nanostructure thereby enabling physical notch filtering of these components. Our work introduces a new application domain for plasmonic nanoantennas and experimentally verifies their potential for information processing.
引用
收藏
相关论文
共 50 条
  • [41] Multiline Operation from a Single Plasmon-Assisted Laser
    Hernandez-Pinilla, D.
    Molina, P.
    de las Heras, C.
    Bravo-Abad, J.
    Bausa, L. E.
    Ramirez, M. O.
    ACS PHOTONICS, 2018, 5 (02): : 406 - 412
  • [42] A review of recent progress in plasmon-assisted nanophotonic devices
    Jian WANG
    Frontiers of Optoelectronics, 2014, 7 (03) : 320 - 337
  • [43] Thermal effects - an alternative mechanism for plasmon-assisted photocatalysis
    Dubi, Yonatan
    Un, Ieng Wai
    Sivan, Yonatan
    CHEMICAL SCIENCE, 2020, 11 (19) : 5017 - 5027
  • [44] Plasmon-assisted radiolytic energy conversion in aqueous solutions
    Baek Hyun Kim
    Jae W. Kwon
    Scientific Reports, 4
  • [45] Modeling Nanoscale Plasmon-assisted Bubble Nucleation and Applications
    Furlani, Edward P.
    Swihart, Mark T.
    Litchinitser, Natalia
    Delametter, Christopher N.
    Carter, Melissa
    NANOTECHNOLOGY 2011: ELECTRONICS, DEVICES, FABRICATION, MEMS, FLUIDICS AND COMPUTATIONAL, NSTI-NANOTECH 2011, VOL 2, 2011, : 470 - 473
  • [46] Plasmon-Assisted Nanopoling of Poly(Vinyl Difluoride) Films
    Chen, Fangqi
    Wang, Yunxia
    Wang, Shuangshuang
    Zhai, Baoxing
    Lu, Xiaolin
    Sun, Bo
    Ding, Tao
    ADVANCED OPTICAL MATERIALS, 2021, 9 (10)
  • [47] Plasmon-Assisted Directional Infrared Photoluminescence of HgTe Nanocrystals
    Bossavit, Erwan
    Dang, Tung Huu
    He, Puyuan
    Cavallo, Mariarosa
    Khalili, Adrien
    Dabard, Corentin
    Zhang, Huichen
    Gacemi, Djamal
    Silly, Mathieu G. G.
    Abadie, Claire
    Gallas, Bruno
    Pierucci, Debora
    Todorov, Yanko
    Sirtori, Carlo
    Diroll, Benjamin T. T.
    Degiron, Aloyse
    Lhuillier, Emmanuel
    Vasanelli, Angela
    ADVANCED OPTICAL MATERIALS, 2023, 11 (22)
  • [48] Biochemical Sensing with Surface Plasmon-Assisted Optical Fibers
    Caucheteur, Christophe
    Voisin, Valerie
    Megret, Patrice
    2013 15TH INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS (ICTON 2013), 2013,
  • [49] Plasmon-assisted optical trapping and anti-trapping
    Aliaksandra Ivinskaya
    Mihail I Petrov
    Andrey A Bogdanov
    Ivan Shishkin
    Pavel Ginzburg
    Alexander S Shalin
    Light: Science & Applications, 2017, 6 : e16258 - e16258
  • [50] Plasmon-assisted transparency in metal-dielectric microspheres
    Rohde, Charles
    Hasegawa, Keisuke
    Deutsch, Miriam
    OPTICS LETTERS, 2007, 32 (04) : 415 - 417