Title :
Design and Evaluation of a 1.1-GHz Surface Coil Resonator for Electron Paramagnetic Resonance-Based Tooth Dosimetry
Author :
Sugawara, H. ; Hirata, Hiroshi ; Petryakov, Sergey ; Lesniewski, Piotr ; Williams, Benjamin B. ; Flood, Ann Barry ; Swartz, Harold M.
Author_Institution :
Grad. Sch. of Inf. Sci. & Technol., Hokkaido Univ., Sapporo, Japan
Abstract :
This paper describes an optimized design of a surface coil resonator for in vivo electron paramagnetic resonance (EPR)-based tooth dosimetry. Using the optimized resonator, dose estimates with the standard error of the mean of approximately 0.5 Gy were achieved with irradiated human teeth. The product of the quality factor and the filling factor of the resonator was computed as an index of relative signal intensity in EPR tooth dosimetry by the use of 3-D electromagnetic wave simulator and radio frequency circuit design environment (ANSYS HFSS and Designer). To verify the simulated results of the signal intensity in our numerical model of the resonator and a tooth sample, we experimentally measured the radiation-induced signals from an irradiated tooth with an optimally designed resonator. In addition to the optimization of the resonator design, we demonstrated the improvement of the stability of EPR spectra by decontamination of the surface coil resonator using an HCl solution, confirming that contamination of small magnetic particles on the silver wire of the surface coil had degraded the stability of the EPR spectral baseline.
Keywords :
EPR imaging; biomedical MRI; coils; dentistry; dosimetry; resonators; 3D electromagnetic wave simulator; ANSYS HFSS; Designer; EPR spectra stability; EPR spectral baseline; EPR-based tooth dosimetry; HCl solution; decontamination; dose estimates; electron paramagnetic resonance-based tooth dosimetry; filling factor; frequency 1.1 GHz; in vivo electron paramagnetic resonance; irradiated human teeth; numerical model; optimization; optimized design; optimized resonator; quality factor; radiation-induced signals; radio frequency circuit design environment; relative signal intensity; silver wire; small magnetic particles; surface coil resonator; Biomedical measurement; Coils; Dosimetry; Magnetic fields; Pollution measurement; Radio frequency; Teeth; Design optimization; dosimetry; electromagnetic modeling; in vivo; spectroscopy;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2014.2310217