Quantitative conductivity and permittivity imaging of the human brain using electric properties tomography

介电常数 电场 电导率 材料科学 断层摄影术 核磁共振 相对介电常数 电阻率和电导率 电介质 相(物质) 生物医学工程 物理 光学 医学 光电子学 量子力学
作者
Tobias Voigt,Ulrich Katscher,Olaf Doessel
出处
期刊:Magnetic Resonance in Medicine [Wiley]
卷期号:66 (2): 456-466 被引量:202
标识
DOI:10.1002/mrm.22832
摘要

Abstract The electric properties of human tissue can potentially be used as an additional diagnostic parameter, e.g., in tumor diagnosis. In the framework of radiofrequency safety, the electric conductivity of tissue is needed to correctly estimate the local specific absorption rate distribution during MR measurements. In this study, a recently developed approach, called electric properties tomography (EPT) is adapted for and applied to in vivo imaging. It derives the patient's electric conductivity and permittivity from the spatial sensitivity distributions of the applied radiofrequency coils. In contrast to other methods to measure the patient's electric properties, EPT does not apply externally mounted electrodes, currents, or radiofrequency probes, which enhances the practicability of the approach. This work shows that conductivity distributions can be reconstructed from phase images and permittivity distributions can be reconstructed from magnitude images of the radiofrequency transmit field. Corresponding numerical simulations using finite‐difference time‐domain methods support the feasibility of this phase‐based conductivity imaging and magnitude‐based permittivity imaging. Using this approximation, three‐dimensional in vivo conductivity and permittivity maps of the human brain are obtained in 5 and 13 min, respectively, which can be considered a step toward clinical feasibility for EPT. Magn Reson Med, 2011. © 2011 Wiley‐Liss, Inc.

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