Title :
THz and mm-Wave Sensing of Corneal Tissue Water Content: Electromagnetic Modeling and Analysis
Author :
Taylor, Zachary D. ; Garritano, James ; Sung, Shijun ; Bajwa, Neha ; Bennett, David B. ; Nowroozi, Bryan ; Tewari, Priyamvada ; Sayre, James ; Hubschman, Jean-Pierre ; Deng, Sophie ; Brown, Elliott R. ; Grundfest, Warren S.
Author_Institution :
Dept. of Bioeng., Univ. of California (UCLA), Los Angeles, CA, USA
Abstract :
Terahertz (THz) spectral properties of human cornea are explored as a function of central corneal thickness (CCT) and corneal water content, and the clinical utility of THz-based corneal water content sensing is discussed. Three candidate corneal tissue water content (CTWC) perturbations, based on corneal physiology, are investigated that affect the axial water distribution and total thickness. The THz frequency reflectivity properties of the three CTWC perturbations were simulated and explored with varying system center frequency and bandwidths (Q-factors). The modeling showed that at effective optical path lengths on the order of a wavelength the cornea presents a lossy etalon bordered by air at the anterior and the aqueous humor at the posterior. The simulated standing wave peak-to-valley ratio is pronounced at lower frequencies and its effect on acquired data can be modulated by adjusting the bandwidth of the sensing system. These observations are supported with experimental spectroscopic data. The results suggest that a priori knowledge of corneal thickness can be utilized for accurate assessments of corneal tissue water content. The physiologic variation of corneal thickness with respect to the wavelengths spanned by the THz band is extremely limited compared to all other structures in the body making CTWC sensing unique amongst all proposed applications of THz medical imaging.
Keywords :
bio-optics; biological tissues; eye; millimetre wave spectra; terahertz wave spectra; CTWC perturbations; Q-factors; THz wave sensing; axial water distribution; center frequency; central corneal thickness; corneal physiology; effective optical path length; electromagnetic modeling; human corneal tissue water content; mm wave sensing; standing wave peak-to-valley ratio; terahertz spectr; total thickness; Cornea; Educational institutions; Physiology; Sensitivity; Sensors; Surgery; Water; Biological and medical imaging; clinical instruments; hydration interactions; medical diagnostics;
Journal_Title :
Terahertz Science and Technology, IEEE Transactions on
DOI :
10.1109/TTHZ.2015.2392619