Characterization of a dielectric phantom for high-field magnetic resonance imaging applications.
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Daniel K Sodickson | Ryan Brown | Jeff H Duyn | Peter van Gelderen | Jacco A de Zwart | Qi Duan | Natalia Gudino | J. Duyn | D. Sodickson | P. van Gelderen | J. A. de Zwart | Ryan Brown | Q. Duan | N. Gudino | J. D. de Zwart
[1] M. Cavagnaro,et al. Design and realisation of tissue-equivalent dielectric simulators for dosimetric studies on microwave antennas for interstitial ablation. , 2012, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[2] Koichi Shibuya,et al. Development of a human-tissue-like phantom for 3.0-T MRI. , 2011, Medical physics.
[3] R. W. Lau,et al. The dielectric properties of biological tissues: III. Parametric models for the dielectric spectrum of tissues. , 1996, Physics in medicine and biology.
[4] R. W. Lau,et al. The dielectric properties of biological tissues: II. Measurements in the frequency range 10 Hz to 20 GHz. , 1996, Physics in medicine and biology.
[5] Q. Balzano,et al. Formulation and characterization of tissue equivalent liquids used for RF densitometry and dosimetry measurements , 2004, IEEE Transactions on Microwave Theory and Techniques.
[6] S. Watanabe,et al. Dielectric properties of non-toxic tissue-equivalent liquids for radiowave safety tests , 2005, IEEE International Conference on Dielectric Liquids, 2005. ICDL 2005..
[7] Yoshio Hiraki,et al. Development of a tissue‐equivalent MRI phantom using carrageenan gel , 2003, Magnetic resonance in medicine.
[8] Daniel K Sodickson,et al. Method for in situ characterization of radiofrequency heating in parallel transmit MRI , 2013, Magnetic resonance in medicine.
[9] G Hartsgrove,et al. Simulated biological materials for electromagnetic radiation absorption studies. , 1987, Bioelectromagnetics.
[10] Mark Dewhirst,et al. A heterogeneous human tissue mimicking phantom for RF heating and MRI thermal monitoring verification , 2012, Physics in medicine and biology.
[11] Daniel K Sodickson,et al. Design and Application of Combined 8-Channel Transmit and 10-Channel Receive Arrays and Radiofrequency Shimming for 7-T Shoulder Magnetic Resonance Imaging , 2014, Investigative radiology.
[12] T Ishida,et al. Development of an agar phantom adaptable for simulation of various tissues in the range 5-40 MHz. , 1987, Physics in medicine and biology.
[13] H. Merkle,et al. Transmit B1‐field correction at 7T using actively tuned coupled inner elements , 2011, Magnetic resonance in medicine.
[14] M. Takahashi,et al. The SAR evaluation method by a combination of thermographic experiments and biological tissue-equivalent phantoms , 2000 .
[15] J A de Zwart,et al. Fast lipid‐suppressed MR temperature mapping with echo‐shifted gradient‐echo imaging and spectral‐spatial excitation , 1999, Magnetic resonance in medicine.
[16] E. Madsen,et al. Tissue-mimicking phantom materials for narrowband and ultrawideband microwave applications , 2005, Physics in medicine and biology.
[17] Bastien Guerin,et al. An anatomically realistic temperature phantom for radiofrequency heating measurements , 2015, Magnetic resonance in medicine.
[18] Koichi Ito,et al. Development and characteristics of a biological tissue‐equivalent phantom for microwaves , 2001 .
[19] A. Guy,et al. Formulas for preparing phantom muscle tissue at various radiofrequencies. , 1984, Bioelectromagnetics.
[20] Masaharu Takahashi,et al. Biological Tissue-Equivalent Agar-Based Solid Phantoms and SAR Estimation Using the Thermographic Method in the Range of 3-6 GHz , 2005, IEICE Trans. Commun..