School of Physical Electronics
University Electronic Science and Technology of China
China
HomepageSchool of Physical Electronics
University of Electronic Science and Technology of China
China
Homepage1. Enander, B. and G. Larson, "Measurements of thermal electromagnetic radiation from the human body at microwave frequencies,", TRITA-TET-7602, Division of Electromagnetic Theory, Tire Royal Institute of Technology, Stockholm, Sweden, Mar. 1976.
doi:10.1088/0031-9155/29/10/002 Google Scholar
2. Gore, J. C. and Y. S. Kang, "Measurement of radiation dose distributions by nuclear magnetic resonance (NMR) imaging," Physics in Medicine and Biology, Vol. 29, No. 10, 1189, 1984.
doi:10.1364/AO.47.000561 Google Scholar
3. Zhang, E., J. Laufer, and P. Beard, "Backward-mode multiwavelength photoacoustic scanner using a planar Fabry-Perot polymer film ultrasound sensor for high-resolution three-dimensional imaging of biological tissues," Applied Optics, Vol. 47, No. 4, 561-577, 2008.
doi:10.1109/10.532121 Google Scholar
4. Semenov, S. Y., R. H. Svenson, A. E. Boulyshev, et al. "Microwave tomography: Two-dimensional system for biological imaging," IEEE Transactions on Biomedical Engineering, Vol. 43, No. 9, 869-877, 1996.
doi:10.1109/TMTT.1979.1129561 Google Scholar
5. Jacobi, J. H., L. E. Larsen, and C. T. Hast, "Water-immersed microwave antennas and their application to microwave interrogation of biological targets," IEEE Trans. Microwave Theory Tech., Vol. 27, No. 1, 70-78, 1979.
doi:10.1109/10.52331 Google Scholar
6. Jofre, L., M. S. Hawley, A. Broquetas, et al. "Medical imaging with a microwave tomographic scanner," IEEE Transactions on Biomedical Engineering, Vol. 37, No. 3, 303-312, 1990. Google Scholar
7. Schwan, H. P., "Radiation biology, medical applications, andradiation hazards," Microwave Power Engineering, E. C. Okress (ed.), Vol. 2, 215–232, Academic, New York, 1968.
doi:10.1109/TMTT.1977.1129191 Google Scholar
8. Yamaura, I., "Measurements of 1.8–2.7 GHz microwave attenuation in the human torso," IEEE Trans. Microwave Theory Tech., Vol. 25, 707-710, Aug. 1977. Google Scholar
9. CST Studio Suite 2014, CST Computer Simulation Technology AG, Available at: www.cst.com. Google Scholar
10. Shao, Y. F., "A simplified design of wide band ridged horn antenna," Modern Radar, 2004 (in Chinese).
doi:10.1109/TMTT.1957.1125084 Google Scholar
11. Chen, T. S., "Calculation of the parameters of ridge waveguides," IRE Transactions on Microwave Theory & Techniques, Vol. 5, No. 1, 12-17, 2003.
doi:10.1109/TAP.2016.2562669 Google Scholar
12. Morabito, A. F., R. Palmeri, and T. Isernia, "A compressive-sensing-inspired procedure for array antenna diagnostics by a small number of phaseless measurements," IEEE Transactions on Antennas and Propagation, Vol. 64, No. 7, 3260-3265, 2016.
doi:10.1109/MSMW.2004.1346178 Google Scholar
13. Meriakri, V. V. and E. E. Chigrai, "Determination of alcohol and sugar content in water solutions by means of microwave," International Kharkov Symposium on Physics and Engineering of Microwaves, Millimeter, and Submillimeter Waves, Vol. 2, 821-823, IEEE, 2004.
doi:10.1007/BF01008897 Google Scholar
14. Liebe, H. J., G. A. Hufford, and T. Manabe, "A model for the complex permittivity of water at frequencies below 1 THz," International Journal of Infrared & Millimeter Waves, Vol. 12, No. 7, 659-675, 1991. Google Scholar
15. Peng, Y., "Numerical simulation of the dielectric properties of biological tissue in the terahertz band,", Lanzhou Jiaotong University, 2015 (in Chinese). Google Scholar