Title :
Time reversal terahertz imaging
Author :
Ruffin, A. Boh ; Van Rudd, J. ; Decker, Joan ; Sanchez-Palencia, Laurent ; Hors, Lenaic Le ; Whitaker, John F. ; Norris, Theodore B.
Author_Institution :
Center for Ultrafact Opt. Sci., Michigan Univ., Ann Arbor, MI, USA
fDate :
8/1/2002 12:00:00 AM
Abstract :
We describe a technique for imaging in the terahertz regime using time reversal of single-cycle pulses. Specifically, the time-reversal symmetry of Maxwell´s wave equation is exploited to reconstruct the transmission function of a diffracting aperture by inverting the diffracted fields. After deriving a time-reversed form of the Huygens-Fresnel diffraction integral, we demonstrate through simulation and experiment the reconstruction of one-dimensional and two-dimensional (2-D) objects. A means to obtain data efficiently for reconstruction of 2-D apertures is described. The spatial resolution determined by the Sparrow criterion is found to correspond to approximately 30% of the peak wavelength and 85% of the mean wavelength of the power spectrum of the single-cycle waveform. Finally, the modulation transfer function for the imaging method is simulated and is shown to be nearly diffraction-limited when compared to an ideal imaging system.
Keywords :
Fresnel diffraction; Maxwell equations; electromagnetic wave diffraction; image reconstruction; image resolution; inverse problems; submillimetre wave imaging; wave equations; 2-D apertures; Huygens-Fresnel diffraction integral; Maxwell wave equation; Sparrow criterion; diffracted fields; diffracting aperture; diffraction-limited imaging method; mean wavelength; modulation transfer function; one-dimensional objects; peak wavelength; power spectrum; reconstruction; simulation; single-cycle pulses; single-cycle waveform; spatial resolution; time reversal terahertz imaging; time-reversal symmetry; transmission function; two-dimensional objects; Acoustic pulses; Image reconstruction; Inverse problems; Light scattering; Optical diffraction; Optical imaging; Optical pulses; Optical refraction; Optical scattering; Ultrafast optics;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2002.801007