• Journal of Infrared and Millimeter Waves
  • Vol. 42, Issue 2, 229 (2023)
Yu-Hang LI1、2, De-Hai ZHANG1、*, Jin MENG1, and Lu-Wei QI3
Author Affiliations
  • 1Key Laboratory of Microwave Remote Sensing, National Space Science Center, Chinese Academy of Sciences, Beijing 100190, China
  • 2University of Chinese Academy of Sciences, Beijing 100049, China
  • 3Nanjing Electronic Devices Institute, Nanjing 210016, China
  • show less
    DOI: 10.11972/j.issn.1001-9014.2023.02.013 Cite this Article
    Yu-Hang LI, De-Hai ZHANG, Jin MENG, Lu-Wei QI. 335 GHz unbalanced Schottky diode frequency tripler[J]. Journal of Infrared and Millimeter Waves, 2023, 42(2): 229 Copy Citation Text show less
    References

    [1] X Zheng, C Liu. Recent development of THz technology and its application in radar and communication system. Journal of Microwaves, 27, 1-5(2011).

    [2] C Wang, C Lin, Q Chen et al. A 10-Gbit/s wireless communication link using 16-QAM modulation in 140-GHz band. IEEE Transactions on Microwave Theory & Techniques, 61, 2737-2746(2013).

    [3] T C Bowman, M El-Shenawee, L K Campbell. Terahertz imaging of excised breast tumor tissue on paraffin sections. IEEE Transactions on Antennas & Propagation, 63, 2088-2097(2015).

    [4] D Jasteh, E G Hoare, M Cherniakov et al. Experimental low-terahertz radar image analysis for automotive terrain sensing. IEEE Geoscience & Remote Sensing Letters, 13, 490-494(2016).

    [5] B Thomas, M Brandt, A Walber et al. Submillimetre-wave receiver developments for ICI onboard MetOP-SG and ice cloud remote sensing instruments(2012).

    [6] V Kangas, S D'Addio, U Klein et al. Ice cloud imager instrument for MetOp second generation(2014).

    [7] L Yuan, I Mehdi, A Maestrini et al. A broadband 900-GHz silicon micromachined two-anode frequency tripler. IEEE Transactions on Microwave Theory & Techniques, 59, 1673-1681(2011).

    [8] H Wang, D Pardo, M Merritt et al. 280 GHz frequency multiplied source for meteorological Doppler radar applications(2015).

    [9] J Jiang, P Chen, H E Yue et al. 0.68 THz and 1.00 THz triplers based on discrete Schottky diodes and quartz glass. Journal of Infrared and Millimeter Waves, 48, 154-159(2019).

    [10] Yao-Ling TIAN, Kun HUANG, Ji-Na CEN et al. High power single and power-combined 100~115GHz Schottky balanced doublers. Journal of Infrared and Millimeter Waves, 40, 13-18(2021).

    [11] A Maestrini, C Tripon-Canseliet, J S Ward et al. A high efficiency multiple-anode 260-340 GHz frequency tripler(2006).

    [12] Zhong-Fei CHEN. Research on 340 GHz solid-state frequency multiplier technology(2016).

    [13] Ze-Zu MENG. Research on 330 GHz Terahertz Multiplier Chain(2017).

    [14] Xiaolin Lv. 0.3 THz Monolithic Integrated Frequency Multiplier(2020).

    [15] X Deng, Y Tian, K Huang et al. A 315–340 GHz frequency amplifier/multiplier chain with 8.5 dBm peak output power(2020).

    [16] H J Scott. The hyperbolic transmission line as a matching section. Proceedings of the Ire, 41, 1654-1657(1953).

    [17] R W Klopfenstein. A transmission line taper of improved design. Proceedings of the Ire, 44, 31-35(2007).

    Yu-Hang LI, De-Hai ZHANG, Jin MENG, Lu-Wei QI. 335 GHz unbalanced Schottky diode frequency tripler[J]. Journal of Infrared and Millimeter Waves, 2023, 42(2): 229
    Download Citation