DocumentCode
605694
Title
Alternative hybrid MPI-MRI imaging system design: Superconductive field generator topology
Author
Franke, J. ; Heinen, U. ; Niemann, V. ; Heidenreich, M. ; Buzug, T.
Author_Institution
Bruker BioSpin MRI GmbH, Ettlingen, Germany
fYear
2013
fDate
23-24 March 2013
Firstpage
1
Lastpage
1
Abstract
It was shown that a hybrid MPI-MRI MFG can be realized as superconductive topology which renders the possibility of acquiring sequentially high resolution MPI and high quality MRI data with versatile soft tissue contrast of mice and rats in a single device. Furthermore, depending on the technically feasible and biologically tolerable drive field strength and/or desired field of view, the superconductive MFG can be realized in a broad range in terms of the SF gradient strength independently to the magnetic field strength of the MRI region. This can be realized by selecting a dedicated gradient enhancing coil current density. As this MFG topology depicts two separated imaging regions for MPI and MRI, respectively, the subject hast to be transported by a simple translational movement whereas the signal detector of each modality can be located closely to the imaging volume which allows in both modalities high sensitivity receiving coils.
Keywords
biological tissues; biomedical MRI; nanomedicine; superconducting coils; SF gradient strength; alternative hybrid MPI-MRI imaging system design; biologically tolerable drive field strength; dedicated gradient enhancing coil current density; high resolution MPI data; high sensitivity receiving coils; imaging volume; magnetic field strength; mice; rats; simple translational movement; soft tissue contrast; superconductive field generator topology; Biomedical imaging; Coils; Magnetic fields; Magnetic resonance imaging; Superconductivity; Topology;
fLanguage
English
Publisher
ieee
Conference_Titel
Magnetic Particle Imaging (IWMPI), 2013 International Workshop on
Conference_Location
Berkeley, CA
Print_ISBN
978-1-4673-5520-9
Electronic_ISBN
978-1-4673-5521-6
Type
conf
DOI
10.1109/IWMPI.2013.6528367
Filename
6528367
Link To Document