Title :
Gradient-excitation encoding combined with frequency and phase encodings for three-dimensional ultra-low-field MRI
Author :
Dabek, J. ; Zevenhoven, K.C.J. ; Nieminen, J.O. ; Vesanen, P.T. ; Sepponen, Raimo ; Ilmoniemi, R.J.
Author_Institution :
Sch. of Sci., Dept. of Biomed. Eng. & Comput. Sci., Aalto Univ., Aalto, Finland
fDate :
Aug. 28 2012-Sept. 1 2012
Abstract :
Ultra-low-field magnetic resonance imaging (ULF MRI) in microtesla fields is a new technology with features unseen in tesla-range MRI. Instead of induction coils as sensors, superconducting quantum interference device (SQUID) sensors are used, providing a frequency-independent signal-to-noise ratio (SNR). Owing to its tolerance for large relative imaging-field inhomogeneities, electromagnet shimming is not necessary. ULF MRI can also be combined with magnetoencephalography (MEG) to image the brain with close to millimetre-millisecond resolution. In this paper, the hybrid MEG-MRI device developed at Aalto University will be presented, as well as a 3D imaging scheme combining gradient-excitation encoding with frequency and phase and encodings. It is noteworthy that, regarding the presented gradient-excitation encoding in ULF MRI, the kilohertz-range Larmor frequencies allow MR signals to propagate unattenuated through tissue, which is not the case in tesla-range MRI with Larmor frequencies even above 100 MHz. Thus, the presented encoding method is especially compatible with ULF MRI, where the use of three different encoding mechanisms for three-dimensional imaging is possible. The feasibility of image reconstruction with the gradient-excitation-encoding method is demonstrated by simulations.
Keywords :
SQUIDs; biological tissues; biomedical MRI; biomedical equipment; image coding; image reconstruction; image resolution; magnetoencephalography; medical image processing; superconducting coils; 3D imaging scheme; MEG-MRI device; SQUID sensors; brain imaging; frequency encoding; frequency-independent signal-to-noise ratio; gradient-excitation encoding; image reconstruction; induction coils; kilohertz-range Larmor frequencies; magnetoencephalography; microtesla fields; millimetre-millisecond image resolution; phase encoding; superconducting quantum interference device sensors; three-dimensional ultralow-field MRI; tissue; ultralow-field magnetic resonance imaging; Coils; Educational institutions; Encoding; Image coding; Image reconstruction; Magnetic resonance imaging; Humans; Imaging, Three-Dimensional; Magnetic Resonance Imaging; Models, Theoretical;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2012 Annual International Conference of the IEEE
Conference_Location :
San Diego, CA
Print_ISBN :
978-1-4244-4119-8
Electronic_ISBN :
1557-170X
DOI :
10.1109/EMBC.2012.6346125