An all solid-state, megawatt-class high power microwave system featuring a silicon carbide (SiC) photoconductive semiconductor switch (PCSS) and a ferrimagnetic-based, coaxial nonlinear transmission line (NLTL) is presented. A 1.62 cm2, 50 kV 4H-SiC PCSS is hard-switched to produce electrical pulses with 7 ns full width-half max (FWHM) pulse widths at 2 ns risetimes in single shot and burst-mode operation. The PCSS resistance drops to sub-ohm when illuminated with approximately 3 mJ of laser energy at 355 nm (tripled Nd:YAG) in a single pulse. Utilizing a fiber optic based optical delivery system, a laser pulse train of four 7 ns (FWHM) signals was generated at 65 MHz repetition frequency. The resulting electrical pulse train from the PCSS closely follows the optical input and is utilized to feed the NLTL generating microwave pulses with a base microwave-frequency of about 2.1 GHz at 65 MHz pulse repetition frequency (prf). Under typical experimental conditions, the NLTL produces sharpened output risetimes of 120 ps and microwave oscillations at 2–4 GHz that are generated due to damped gyromagnetic precession of the ferrimagnetic material's axially pre-biased magnetic moments. The complete system is discussed in detail with its output matched into 50 Ω, and results covering MHz-prf in burst-mode operation as well as frequency agility in single shot operation are discussed.
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May 2013
Research Article|
May 09 2013
All solid-state high power microwave source with high repetition frequency Available to Purchase
J.-W. B. Bragg;
J.-W. B. Bragg
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
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W. W. Sullivan, III;
W. W. Sullivan, III
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
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D. Mauch;
D. Mauch
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
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A. A. Neuber;
A. A. Neuber
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
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J. C. Dickens
J. C. Dickens
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
Search for other works by this author on:
J.-W. B. Bragg
W. W. Sullivan, III
D. Mauch
A. A. Neuber
J. C. Dickens
Department of Electrical and Computer Engineering, Center for Pulsed Power and Power Electronics,
Texas Tech University
, Lubbock, Texas 79409, USA
Rev. Sci. Instrum. 84, 054703 (2013)
Article history
Received:
December 12 2012
Accepted:
April 22 2013
Citation
J.-W. B. Bragg, W. W. Sullivan, D. Mauch, A. A. Neuber, J. C. Dickens; All solid-state high power microwave source with high repetition frequency. Rev. Sci. Instrum. 1 May 2013; 84 (5): 054703. https://doi.org/10.1063/1.4804196
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