RF Penetration in Ultra High Field MRI: Challenges in Visualizing Details Within the Center of the Human Brain
- 1 November 1999
- journal article
- research article
- Published by Wolters Kluwer Health in Journal of Computer Assisted Tomography
- Vol. 23 (6) , 845-849
- https://doi.org/10.1097/00004728-199911000-00006
Abstract
The purpose of this work is to discuss radio frequency (RF) penetration and its relevance to imaging the human head and to acquire images containing intricate structures located at the center of the brain with ultra high field MRI (UHFMRI). A simple plane wave analysis of RF penetration was performed based on Maxwell equations as a function of frequency up to 900 MHz. Gradient-recalled images were acquired at 8 T (340 MHz) using an RF resonator operating in quadrature. Typical acquisition parameters were as follows: TR = 750 ms, TE = 17 ms, slice thickness = 2 mm, FOV = 20 x 20 cm, matrix = 1,024 x 1,024. The specific absorption rate was well below 1 W/kg. A simple analytical treatment, for a plane wave up to 900 MHz, reveals a lack of decreasing penetration depth with frequency beyond 200 MHz. Gradient-recalled echo images acquired from the human head displayed good contrast, homogeneity, and resolution. Importantly, excellent structural detail was observed on the resulting MR images, demonstrating that RF penetration is not a problem at 8 T. Images reveal excellent detail including the red nucleus, anterior commissure, fornix, mamillary body, pineal gland, and ependymal lining of the fourth ventricle. Structures located at the center of the human brain can be clearly visualized at 8 T with no detectable loss in signal intensity arising from RF penetration. The ability to examine these structures with UHFMRI will provide a powerful new modality for diagnostic radiology.Keywords
This publication has 15 references indexed in Scilit:
- Design and Assembly of an 8 Tesla Whole-Body MR ScannerJournal of Computer Assisted Tomography, 1999
- Acquisition of Human Multislice MR Images at 8 TeslaJournal of Computer Assisted Tomography, 1999
- SAR and B1 field distributions in a heterogeneous human head model within a birdcage coilMagnetic Resonance in Medicine, 1998
- Human magnetic resonance imaging at 8 TNMR in Biomedicine, 1998
- The Intrinsic Signal-to-Noise Ratio in Human Cardiac Imaging at 1.5, 3, and 4 TJournal of Magnetic Resonance, 1997
- Computation of electromagnetic fields for high-frequency magnetic resonance imaging applicationsPhysics in Medicine & Biology, 1996
- In vivo magnetic resonance imaging and spectroscopy of humans with a 4 t whole‐body magnetNMR in Biomedicine, 1990
- Radiofrequency penetration and absorption in the human body: Limitations to high‐field whole‐body nuclear magnetic resonance imagingMedical Physics, 1987
- The field dependence of NMR imaging. I. Laboratory assessment of signal‐to‐noise ratio and power depositionMagnetic Resonance in Medicine, 1986
- Power deposition in whole-body NMR imagingMedical Physics, 1981