Performance of Ultrafast, Nanoantenna-Based, Long-Wave Infrared Detectors in Vacuum

被引:3
|
作者
Finnan, Collin P. [1 ,2 ]
Kinzel, Edward C. [1 ,3 ]
Szakmany, Gergo P. [1 ]
Orlov, Alexei O. [1 ]
Aquino, Hadrian Renaldo O. [1 ]
Porod, Wolfgang [1 ]
Bernstein, Gary H. [1 ]
机构
[1] Univ Notre Dame, Dept Elect Engn, Notre Dame, IN 46556 USA
[2] Univ Calif Berkeley, Dept Elect Engn & Comp Sci, Berkeley, CA 94720 USA
[3] Univ Notre Dame, Dept Aerosp & Mech Engn, Notre Dame, IN 46556 USA
关键词
Detectors; Sensors; Antennas; Dipole antennas; Temperature measurement; Antenna measurements; Substrates; Frequency response; infrared (IR) detectors; nanoantennas; thermocouples; vacuum systems; HEAT-TRANSFER; SENSITIVITY IMPROVEMENTS; MICROBOLOMETER ARRAYS; TECHNOLOGY; SENSORS; THZ;
D O I
10.1109/JSEN.2024.3350384
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
This work investigates the speed and responsivity of thermoelectrically coupled nanoantennas (TECNAs) in a vacuum. TECNAs are long-wave infrared (IR) detectors that absorb electromagnetic (EM) radiation via a resonant dipole antenna. Joule heating within the antenna is converted to a voltage via a nanoscale thermocouple (NTC). Heat loss due to air is reduced under vacuum, allowing for improved device responsivity, but at the expense of speed. A finite difference model is introduced that calculates the steady-state and transient thermal transport within various TECNA designs across a range of ambient pressures. The modeled pressure dependence was derived from nanoscale convection coefficients found in the literature. Models were experimentally verified by studying the pressure-dependent and frequency-dependent voltage response of TECNAs exposed to modulated 10.6 mu m IR radiation. Improvements in responsivity ranging from 3x to 4.5x were demonstrated between atmosphere and vacuum, with 90% of improvement occurring between atmospheric pressure and 1 torr (rough vacuum) in each design. Devices exhibited bandwidths of at least 10 kHz (roughly 100x faster than common microbolometers) under vacuum with negligible signal attenuation, though future work is needed to fully characterize device frequency response.
引用
收藏
页码:6092 / 6102
页数:11
相关论文
共 50 条
  • [41] Compressive Spectroscopic Long-Wave Infrared Imaging
    Charsley, Jake M.
    Rutkauskas, Marius
    Altmann, Yoann
    Smith, Margaret
    Young, Christina
    Reid, Derryck T.
    2021 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE & EUROPEAN QUANTUM ELECTRONICS CONFERENCE (CLEO/EUROPE-EQEC), 2021,
  • [42] Multiband absorbers for the long-wave infrared regime
    Carey, Victoria A.
    Mirotznik, Mark S.
    APPLIED OPTICS, 2017, 56 (30) : 8403 - 8413
  • [43] Compressive Spectroscopic Long-Wave Infrared Imaging
    Charsley, Jake M.
    Rutkauskas, Marius
    Altmann, Yoann
    Smith, Margaret
    Young, Christina
    Reid, Derryck T.
    2021 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2021,
  • [44] FILTERING SYSTEM OF LONG-WAVE INFRARED SPECTROMETER
    CHERNYAVSKAYA, NA
    FOMINA, TN
    STANEVICH, AE
    SOMSIKOV, AI
    SOVIET JOURNAL OF OPTICAL TECHNOLOGY, 1988, 55 (04): : 249 - 251
  • [45] Color router-based long-wave infrared multispectral imaging
    Xu, Nan
    Zhuge, Zhengyue
    Li, Haoying
    Chen, Bingkun
    Xu, Zhihai
    Feng, Huajun
    Li, Qi
    Chen, Yuting
    OPTICS EXPRESS, 2024, 32 (21): : 36875 - 36887
  • [46] Long-wave infrared polarimetric cluster-based vehicle detection
    Dickson, Christopher N.
    Wallace, Andrew M.
    Kitchin, Matthew
    Connor, Barry
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA A-OPTICS IMAGE SCIENCE AND VISION, 2015, 32 (12) : 2307 - 2315
  • [47] Broadband long-wave infrared metamaterial absorbers based on germanium resonators
    Yang, Fuming
    Liang, Zhongzhu
    Shi, Xiaoyan
    Zhang, Xiqing
    Meng, Dejia
    Dai, Rui
    Zhang, Shoutao
    Jia, Yan
    Yan, Ningte
    Li, Sixuan
    Wang, Zihan
    RESULTS IN PHYSICS, 2023, 51
  • [48] Long-wave (10 μm) infrared light emitting diode device performance
    Das, Naresh C.
    Bradshaw, John
    Towner, Fred
    Leavitt, R.
    SOLID-STATE ELECTRONICS, 2008, 52 (11) : 1821 - 1824
  • [49] Spatial heterodyne spectroscopy for long-wave infrared: optical design and laboratory performance
    Han, Bin
    Feng, Yutao
    Zhang, Zhaohui
    Bai, Qinglan
    Wu, Junqiang
    Wu, Yang
    Chang, Chenguang
    Sun, Jian
    AOPC 2020: OPTICAL SPECTROSCOPY AND IMAGING; AND BIOMEDICAL OPTICS, 2020, 11566
  • [50] MAKO: A high-performance, airborne imaging spectrometer for the long-wave infrared
    Warren, D. W.
    Boucher, R. H.
    Gutierrez, D. J.
    Keim, E. R.
    Sivjee, M. G.
    IMAGING SPECTROMETRY XV, 2010, 7812