Integration of Plasmonic Antenna on Quantum Cascade Laser Facets for Chip-scale Molecular Sensing

被引:2
|
作者
Dey, Dibyendu [1 ]
Kohoutek, John [1 ]
Gelfand, Ryan M. [1 ]
Bonakdar, Alireza [1 ]
Mohseni, Hooman [1 ]
机构
[1] Northwestern Univ, Dept Elect Engn & Comp Sci, Bioinspired Sensors & Optoelect Lab, Evanston, IL 60208 USA
来源
关键词
OPTICAL ANTENNAS;
D O I
10.1109/ICSENS.2010.5690172
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Many important bio-molecules, such as proteins and pharmaceuticals, have their natural resonances in the mid-infrared (2-30 mu m) region of the optical spectrum. The primary challenge of sensing these molecules is to increase the interaction between them and light with such long wavelengths. This can be overcome by exploiting optical nano-antennas which can squeeze the optical mode into a volume much smaller than the operating wavelength. We present a novel antenna design based on hybrid materials composed of a coupled Au-SiO2-Au nanorod integrated on the facet of a quantum cascade laser (QCL) operating in the mid-infrared region of the optical spectrum. FDTD simulations showed that for sandwiched dielectric thicknesses within the range of 20 to 30 nm, peak optical intensity at the top of the antenna ends is 4000 times greater than the incident field intensity. The device was fabricated using focused ion beam milling. Apertureless mid-infrared near field optical microscopy (NSOM) showed that the device can generate a spatially confined spot within a nanometric size about 12 times smaller than the operating wavelength. Such high intensity, hot spot locations can be exploited to enhance the photon interaction for bio-molecules for sensing applications.
引用
收藏
页码:454 / 458
页数:5
相关论文
共 50 条
  • [41] Chip-Scale Integration of a SERF-Regime Optical Magnetometer
    Wu, Lei
    Shang, Jintang
    Gan, Qi
    Ji, Yu
    2016 IEEE 66TH ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE (ECTC), 2016, : 863 - 868
  • [42] Chip-Scale Integration of Nanophotonic-Atomic Magnetic Sensors
    Sebbag, Yoel
    Naiman, Alex
    Talker, Eliran
    Barash, Yefim
    Levy, Uriel
    ACS PHOTONICS, 2021, 8 (01) : 142 - 146
  • [43] HORIZONTAL CHIP-SCALE CASCADE IMPACTOR WITH INTEGRATED RESONANT MASS BALANCES
    Maldonado-Garcia, M.
    Wilson, J. C.
    Pourkamali, S.
    2016 IEEE 29TH INTERNATIONAL CONFERENCE ON MICRO ELECTRO MECHANICAL SYSTEMS (MEMS), 2016, : 1070 - 1073
  • [44] Toward a chip-scale multiwavelength modelocked semiconductor laser
    Mielke, MM
    Delfyett, PJ
    ENABLING PHOTONIC TECHNOLOGIES FOR AEROSPACE APPLICATIONS VI, 2004, 5435 : 36 - 47
  • [45] Integration of Chip-Scale SERF Atomic Magnetometers for Magnetoencephalography Measurement
    Li, Guoliang
    Shang, Jintang
    Ji, Yu
    Lu, Lin
    Pan, Zhihua
    2018 IEEE 68TH ELECTRONIC COMPONENTS AND TECHNOLOGY CONFERENCE (ECTC 2018), 2018, : 802 - 807
  • [46] Chip-Scale Silicon Ring Resonators for Cryogenic Temperature Sensing
    You, Minmin
    Lin, Zude
    Li, Xiuyan
    Liu, Jingquan
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2020, 38 (20) : 5768 - 5773
  • [47] Terahertz quantum cascade lasers with angled facets for monolithic integration
    Salih, Mohammed
    Dean, Paul
    Cunningham, John
    Khanna, Suraj P.
    Li, Lianhe
    Chen, Li
    Davies, A. Giles
    Linfield, Edmund H.
    35TH INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES (IRMMW-THZ 2010), 2010,
  • [48] High-extinction chip-scale shuttering for quantum technologies
    Perez, Maximillian A.
    Kross, Steffen
    DeNatale, Jeff
    Mihailovich, Rob
    Ramirez-Serrano, Jaime
    Ivory, Megan
    NOVEL OPTICAL SYSTEMS, METHODS, AND APPLICATIONS XXII, 2019, 11105
  • [49] Chip-scale simulations in a quantum-correlated synthetic space
    Javid, Usman A.
    Lopez-Rios, Raymond
    Ling, Jingwei
    Graf, Austin
    Staffa, Jeremy
    Lin, Qiang
    NATURE PHOTONICS, 2023, 17 (10) : 883 - +
  • [50] A Multiport Chip-Scale Dielectric Resonator Antenna for CMOS THz Transmitters
    Buadana, Nadav
    Jameson, Samuel
    Socher, Eran
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2020, 68 (09) : 3621 - 3632