Literature DB >> 23162673

Low-Loss Transmission Lines for High-Power Terahertz Radiation.

Emilio A Nanni1, Sudheer K Jawla, Michael A Shapiro, Paul P Woskov, Richard J Temkin.   

Abstract

Applications of high-power Terahertz (THz) sources require low-loss transmission lines to minimize loss, prevent overheating and preserve the purity of the transmission mode. Concepts for THz transmission lines are reviewed with special emphasis on overmoded, metallic, corrugated transmission lines. Using the fundamental HE(11) mode, these transmission lines have been successfully implemented with very low-loss at high average power levels on plasma heating experiments and THz dynamic nuclear polarization (DNP) nuclear magnetic resonance (NMR) experiments. Loss in these lines occurs directly, due to ohmic loss in the fundamental mode, and indirectly, due to mode conversion into high order modes whose ohmic loss increases as the square of the mode index. An analytic expression is derived for ohmic loss in the modes of a corrugated, metallic waveguide, including loss on both the waveguide inner surfaces and grooves. Simulations of loss with the numerical code HFSS are in good agreement with the analytic expression. Experimental tests were conducted to determine the loss of the HE(11) mode in a 19 mm diameter, helically-tapped, three meter long brass waveguide with a design frequency of 330 GHz. The measured loss at 250 GHz was 0.029 ± 0.009 dB/m using a vector network analyzer approach and 0.047 ± 0.01 dB/m using a radiometer. The experimental results are in reasonable agreement with theory. These values of loss, amounting to about 1% or less per meter, are acceptable for the DNP NMR application. Loss in a practical transmission line may be much higher than the loss calculated for the HE(11) mode due to mode conversion to higher order modes caused by waveguide imperfections or miter bends.

Entities:  

Year:  2012        PMID: 23162673      PMCID: PMC3498493          DOI: 10.1007/s10762-012-9870-5

Source DB:  PubMed          Journal:  J Infrared Millim Terahertz Waves        ISSN: 1866-6892            Impact factor:   1.768


  18 in total

1.  Reduction of ion thermal diffusivity associated with the transition of the radial electric field in neutral-beam-heated plasmas in the large helical device.

Authors:  K Ida; H Funaba; S Kado; K Narihara; K Tanaka; Y Takeiri; Y Nakamura; N Ohyabu; K Yamazaki; M Yokoyama; S Murakami; N Ashikawa; P C deVries; M Emoto; M Goto; H Idei; K Ikeda; S Inagaki; N Inoue; M Isobe; K Itoh; O Kaneko; K Kawahata; K Khlopenkov; A Komori; S Kubo; R Kumazawa; Y Liang; S Masuzaki; T Minami; J Miyazawa; T Morisaki; S Morita; T Mutoh; S Muto; Y Nagayama; H Nakanishi; K Nishimura; N Noda; T Notake; T Kobuchi; S Ohdachi; K Ohkubo; Y Oka; M Osakabe; T Ozaki; R O Pavlichenko; B J Peterson; A Sagara; K Saito; S Sakakibara; R Sakamoto; H Sanuki; H Sasao; M Sasao; K Sato; M Sato; T Seki; T Shimozuma; M Shoji; H Suzuki; S Sudo; N Tamura; K Toi; T Tokuzawa; Y Torii; K Tsumori; T Yamamoto; H Yamada; I Yamada; S Yamaguchi; S Yamamoto; Y Yoshimura; K Y Watanabe; T Watari; Y Hamada; O Motojima; M Fujiwara
Journal:  Phys Rev Lett       Date:  2001-06-04       Impact factor: 9.161

2.  A 200 GHz dynamic nuclear polarization spectrometer.

Authors:  Brandon D Armstrong; Devin T Edwards; Richard J Wylde; Shamon A Walker; Songi Han
Journal:  Phys Chem Chem Phys       Date:  2010-05-12       Impact factor: 3.676

3.  Electron cyclotron emission diagnostic for ITER.

Authors:  W Rowan; M Austin; J Beno; R Ellis; R Feder; A Ouroua; A Patel; P Phillips
Journal:  Rev Sci Instrum       Date:  2010-10       Impact factor: 1.523

4.  Porous polymer fibers for low-loss Terahertz guiding.

Authors:  Alireza Hassani; Alexandre Dupuis; Maksim Skorobogatiy
Journal:  Opt Express       Date:  2008-04-28       Impact factor: 3.894

5.  Dielectric-lined cylindrical metallic THz waveguides: mode structure and dispersion.

Authors:  Oleg Mitrofanov; James A Harrington
Journal:  Opt Express       Date:  2010-02-01       Impact factor: 3.894

6.  Note: stacked rings for terahertz wave-guiding.

Authors:  E de Rijk; A Macor; J-Ph Hogge; S Alberti; J-Ph Ansermet
Journal:  Rev Sci Instrum       Date:  2011-06       Impact factor: 1.523

7.  Solid-state dynamic nuclear polarization at 263 GHz: spectrometer design and experimental results.

Authors:  Melanie Rosay; Leo Tometich; Shane Pawsey; Reto Bader; Robert Schauwecker; Monica Blank; Philipp M Borchard; Stephen R Cauffman; Kevin L Felch; Ralph T Weber; Richard J Temkin; Robert G Griffin; Werner E Maas
Journal:  Phys Chem Chem Phys       Date:  2010-05-07       Impact factor: 3.676

8.  Low-temperature dynamic nuclear polarization at 9.4 T with a 30 mW microwave source.

Authors:  Kent R Thurber; Wai-Ming Yau; Robert Tycko
Journal:  J Magn Reson       Date:  2010-03-23       Impact factor: 2.229

9.  Corrugated Waveguide and Directional Coupler for CW 250-GHz Gyrotron DNP Experiments.

Authors:  Paul P Woskov; Vikram S Bajaj; Melissa K Hornstein; Richard J Temkin; Robert G Griffin
Journal:  IEEE Trans Microw Theory Tech       Date:  2005-06       Impact factor: 3.599

10.  Metal wires for terahertz wave guiding.

Authors:  Kanglin Wang; Daniel M Mittleman
Journal:  Nature       Date:  2004-11-18       Impact factor: 49.962

View more
  10 in total

1.  Mode Content Determination of Terahertz Corrugated Waveguides Using Experimentally Measured Radiated Field Patterns.

Authors:  Sudheer K Jawla; Emilio A Nanni; Michael A Shapiro; Paul P Woskov; Richard J Temkin
Journal:  IEEE Trans Plasma Sci IEEE Nucl Plasma Sci Soc       Date:  2012-06       Impact factor: 1.222

2.  Corrugated Waveguide Mode Content Analysis Using Irradiance Moments.

Authors:  Sudheer K Jawla; Michael A Shapiro; Hiroshi Idei; Richard J Temkin
Journal:  IEEE Trans Plasma Sci IEEE Nucl Plasma Sci Soc       Date:  2014-10-21       Impact factor: 1.222

3.  Simple Expressions for the Design of Linear Tapers in Overmoded Corrugated Waveguides.

Authors:  S C Schaub; M A Shapiro; R J Temkin
Journal:  J Infrared Millim Terahertz Waves       Date:  2015-08-16       Impact factor: 1.768

4.  New insights from broadband simulations into small overmoded smooth and corrugated terahertz waveguides and transitions for NMR-DNP.

Authors:  F David Doty; Glenn N Doty; John P Staab; Yuriy Sizyuk; Paul D Ellis
Journal:  J Magn Reson Open       Date:  2021-01-16

5.  Second Harmonic 527-GHz Gyrotron for DNP-NMR: Design and Experimental Results.

Authors:  Sudheer K Jawla; Robert G Griffin; Ivan A Mastovsky; Michael A Shapiro; Richard J Temkin
Journal:  IEEE Trans Electron Devices       Date:  2019-12-10       Impact factor: 2.917

6.  Continuously Tunable 250 GHz Gyrotron with a Double Disk Window for DNP-NMR Spectroscopy.

Authors:  Sudheer Jawla; Qing Zhe Ni; Alexander Barnes; William Guss; Eugenio Daviso; Judith Herzfeld; Robert Griffin; Richard Temkin
Journal:  J Infrared Millim Terahertz Waves       Date:  2012-11-15       Impact factor: 1.768

7.  Dynamic Nuclear Polarization as an Enabling Technology for Solid State Nuclear Magnetic Resonance Spectroscopy.

Authors:  Adam N Smith; Joanna R Long
Journal:  Anal Chem       Date:  2015-12-17       Impact factor: 6.986

8.  Photonic-band-gap traveling-wave gyrotron amplifier.

Authors:  E A Nanni; S M Lewis; M A Shapiro; R G Griffin; R J Temkin
Journal:  Phys Rev Lett       Date:  2013-12-06       Impact factor: 9.161

9.  Design and characterization of a W-band system for modulated DNP experiments.

Authors:  Mallory L Guy; Lihuang Zhu; Chandrasekhar Ramanathan
Journal:  J Magn Reson       Date:  2015-10-14       Impact factor: 2.229

10.  Modular, triple-resonance, transmission line DNP MAS probe for 500 MHz/330 GHz.

Authors:  Marcel Reese; Christy George; Chen Yang; Sudheer Jawla; J Tassilo Grün; Harald Schwalbe; Christina Redfield; Richard J Temkin; Robert G Griffin
Journal:  J Magn Reson       Date:  2019-08-14       Impact factor: 2.229

  10 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.