DocumentCode :
1116580
Title :
Frequency-Doubled Fiber Lasers for RF Spectrum Analysis in Spectral-Hole-Burning Media
Author :
Colice, Max ; Xiong, Jingyi ; Wagner, Kelvin H.
Author_Institution :
Optoelectron. Comput. Syst. Center, Univ. of Colorado at Boulder, Boulder, CO
Volume :
44
Issue :
6
fYear :
2008
fDate :
6/1/2008 12:00:00 AM
Firstpage :
587
Lastpage :
594
Abstract :
We demonstrate an RF spectrum analyzer based on spectral-hole burning (SHB) that operates with unity probability of intercept and resolution under 100 kHz. An SHB crystal, which consists of rare-earth ions doped into a crystal host, records the power spectrum of an RF signal modulated onto an optical carrier as a series of spectral holes that persist for about 10 ms. While the crystal´s homogeneous and inhomogeneous linewidths place the fundamental limits on resolution and bandwidth, respectively, the practical limits depend on the lasers used to interrogate the record stored in the crystal´s absorption profile. Up to now, SHB spectrum analyzers have used chirped beams from externally modulated, stabilized lasers, which have linewidths of under 10 kHz but cannot chirp over much more than octave bandwidths, or directly modulated diode lasers, which can chirp over more than 20GHz but have linewidths of about 1 MHz. Switching to chirped fiber lasers, which have natural linewidths of under 2 kHz and chirping linewidths on the order of 10 kHz, produces a measurement with fine resolution without any laser stabilization. In addition, by chirping the fiber laser with a sufficiently fast piezo, the resulting chirp could extend over tens of gigahertz in under 10 ms, yielding both fine resolution and broad bandwidth without extraordinary stabilization schemes.
Keywords :
fibre lasers; optical hole burning; crystal absorption profile; frequency 100 kHz; frequency doubled fiber lasers; optical carrier; power spectrum; rare earth ions; rf spectrum analysis; spectral hole burning media; Bandwidth; Chirp modulation; Fiber lasers; Laser stability; Optical modulation; Optical recording; Particle beam optics; Radio frequency; Signal resolution; Spectral analysis; Optical fiber lasers; Optical-hole burning; RF photonic signal processing; spectral analysis;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/JQE.2008.917965
Filename :
4479651
Link To Document :
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