DocumentCode :
1386478
Title :
SQUID-Based Low Field MRI System for Small Animals
Author :
Hatta, Junichi ; Miyamoto, Masakazu ; Adachi, Yoshiaki ; Kawai, Jun ; Uehara, Gen ; Kado, Hisashi
Author_Institution :
Appl. Electron. Lab., Kanazawa Inst. of Technol., Ishikawa, Japan
Volume :
21
Issue :
3
fYear :
2011
fDate :
6/1/2011 12:00:00 AM
Firstpage :
526
Lastpage :
529
Abstract :
Low field MRI and MEG are based on the ability of SQUID sensors to detect femtotesla magnetic fields. We are now developing a low field MRI system which can be integrated with the MEG system for small animals. The fast switching of the polarizing field inherently induces large transient signals in low field MRI experiments. We have optimized our system to minimize its influence and to improve the SNR of the MRI signal, by modifying a SQUID gradiometer and FLL (fluxed-locked loop) circuit and by reducing the back electromotive force of the polarizing coil. Our system includes five sets of magnetic field and gradient coils. Employing the “target field method” for the design of shielded planar coils, we achieved the measurement field homogeneity of 0.5% over 40 mm DSV (diameter sphere volume). We observed 4 pT NMR signal from 30 ml water by applying the polarizing field of 4.4 mT and the measurement field of 47 μT (1.9 kHz). The magnetic field noise spectral density is 9 fT/√Hz.
Keywords :
SQUID magnetometers; biomedical MRI; biomedical NMR; biomedical equipment; coils; electromagnets; magnetoencephalography; MRI signal SNR; NMR signal; SQUID based small animal MRI system; SQUID gradiometer; SQUID sensors; back electromotive force reduction; fast polarizing field switching; femtotesla magnetic fields; fluxed locked loop circuit; frequency 1.9 kHz; gradient coils; low field MEG; low field MRI; magnetic field coils; magnetic field noise spectral density; magnetic flux density 4 pT; magnetic flux density 4.4 mT; magnetic flux density 47 muT; polarizing coil; shielded planar coil design; size 40 mm; target field method; Animals; Coils; Magnetic noise; Magnetic resonance imaging; Magnetic shielding; Nuclear magnetic resonance; SQUIDs; Low field MRI; NMR signal; SQUID;
fLanguage :
English
Journal_Title :
Applied Superconductivity, IEEE Transactions on
Publisher :
ieee
ISSN :
1051-8223
Type :
jour
DOI :
10.1109/TASC.2010.2091101
Filename :
5643131
Link To Document :
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