Title :
Self-Mixing Interferometry With Terahertz Quantum Cascade Lasers
Author :
Valavanis, Alex ; Dean, Paul ; Lim, Yah Leng ; Alhathlool, Raed ; Nikolić, Milan ; Kliese, Russell ; Khanna, Suraj P. ; Indjin, Dragan ; Wilson, Stephen J. ; Rakić, Aleksandar D. ; Linfield, Edmund H. ; Davies, Giles
Author_Institution :
Sch. of Electron. & Electr. Eng., Univ. of Leeds, Leeds, UK
Abstract :
Terahertz frequency quantum cascade lasers (THz QCLs) are compact sources of coherent THz radiation with potential applications that include astronomy, trace-gas sensing, and security imaging. However, the reliance on slow and incoherent thermal detectors has limited their practical use in THz systems. We demonstrate THz sensing using self-mixing (SM) interferometry, in which radiation is reflected from an object back into the QCL cavity, causing changes in the laser properties; the THz QCL thus acts simultaneously as both a source and detector. Well-established SM theory predicts a much weaker coupling in THz QCLs than in diode lasers, yielding a near-linear relationship between the phase of SM signals and the external cavity length. We demonstrate velocimetry of an oscillating reflector by monitoring SM-induced changes in the QCL drive voltage. We show that this yields data equivalent to that obtained by sensing the emitted THz power, thus allowing phase-sensitive THz-SM sensing without any external detector. We also demonstrate high-resolution SM-imaging at a round-trip distance of 21 m in air-the longest-range interferometric sensing with a THz QCL to date.
Keywords :
image sensors; laser cavity resonators; light interferometry; microwave photonics; quantum cascade lasers; terahertz wave detectors; QCL cavity; QCL drive voltage; SM signals; SM theory; THz QCL; coherent THz radiation; distance 21 m; emitted THz power; external cavity length; high-resolution SM-imaging; interferometric sensing; laser properties; oscillating reflector; phase-sensitive THz-SM sensing; round-trip distance; self-mixing interferometry; terahertz frequency quantum cascade lasers; velocimetry; Cavity resonators; Imaging; Measurement by laser beam; Optical attenuators; Quantum cascade lasers; Sensors; Voltage measurement; Imaging; infrared sensors; interferometry; laser feedback; laser velocimetry; quantum cascade lasers; submillimeter wave technology;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2012.2218594