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Wideband Self-Grounded Bow-Tie Antenna for Thermal MR.
Eigentler, Thomas Wilhelm; Winter, Lukas; Han, Haopeng; Oberacker, Eva; Kuehne, Andre; Waiczies, Helmar; Schmitter, Sebastian; Boehmert, Laura; Prinz, Christian; Trefna, Hana Dobsicek; Niendorf, Thoralf.
  • Eigentler TW; Berlin Ultrahigh Field Facility (B.U.F.F.), Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, Berlin, Germany.
  • Winter L; Technische Universität Berlin, Chair of Medical Engineering, Berlin, Germany.
  • Han H; Berlin Ultrahigh Field Facility (B.U.F.F.), Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, Berlin, Germany.
  • Oberacker E; Physikalisch-Technische Bundesanstalt (PTB), Braunschweig und Berlin, Berlin, Germany.
  • Kuehne A; Berlin Ultrahigh Field Facility (B.U.F.F.), Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, Berlin, Germany.
  • Waiczies H; Institute of Computer Science, Humboldt-Universitätzu Berlin, Berlin, Germany.
  • Schmitter S; Berlin Ultrahigh Field Facility (B.U.F.F.), Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, Berlin, Germany.
  • Boehmert L; MRI.TOOLS GmbH, Berlin, Germany.
  • Prinz C; MRI.TOOLS GmbH, Berlin, Germany.
  • Trefna HD; Physikalisch-Technische Bundesanstalt (PTB), Braunschweig und Berlin, Berlin, Germany.
  • Niendorf T; Berlin Ultrahigh Field Facility (B.U.F.F.), Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, Berlin, Germany.
NMR Biomed ; 33(5): e4274, 2020 05.
Article en En | MEDLINE | ID: mdl-32078208
ABSTRACT
The objective of this study was the design, implementation, evaluation and application of a compact wideband self-grounded bow-tie (SGBT) radiofrequency (RF) antenna building block that supports anatomical proton (1 H) MRI, fluorine (19 F) MRI, MR thermometry and broadband thermal intervention integrated in a whole-body 7.0 T system. Design considerations and optimizations were conducted with numerical electromagnetic field (EMF) simulations to facilitate a broadband thermal intervention frequency of the RF antenna building block. RF transmission (B1+ ) field efficiency and specific absorption rate (SAR) were obtained in a phantom, and the thigh of human voxel models (Ella, Duke) for 1 H and 19 F MRI at 7.0 T. B1+ efficiency simulations were validated with actual flip-angle imaging measurements. The feasibility of thermal intervention was examined by temperature simulations (f = 300, 400 and 500 MHz) in a phantom. The RF heating intervention (Pin = 100 W, t = 120 seconds) was validated experimentally using the proton resonance shift method and fiberoptic probes for temperature monitoring. The applicability of the SGBT RF antenna building block for in vivo 1 H and 19 F MRI was demonstrated for the thigh and forearm of a healthy volunteer. The SGBT RF antenna building block facilitated 19 F and 1 H MRI at 7.0 T as well as broadband thermal intervention (234-561 MHz). For the thigh of the human voxel models, a B1+ efficiency ≥11.8 µT/√kW was achieved at a depth of 50 mm. Temperature simulations and heating experiments in a phantom demonstrated a temperature increase ΔT >7 K at a depth of 10 mm. The compact SGBT antenna building block provides technology for the design of integrated high-density RF applicators and for the study of the role of temperature in (patho-) physiological processes by adding a thermal intervention dimension to an MRI device (Thermal MR).
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Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Imagen por Resonancia Magnética / Termometría Límite: Humans Idioma: En Año: 2020 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Asunto principal: Imagen por Resonancia Magnética / Termometría Límite: Humans Idioma: En Año: 2020 Tipo del documento: Article