Low field SQUID MRI devices, components and methods
Low field SQUID MRI devices, components and methods are disclosed. They include a portable low field (SQUID)-based MRI instrument and a portable low field SQUID-based MRI system to be operated under a bed where a subject is adapted to be located. Also disclosed is a method of distributing wires on an image encoding coil system adapted to be used with an NMR or MRI device for analyzing a sample or subject and a second order superconducting gradiometer adapted to be used with a low field SQUID-based MRI device as a sensing component for an MRI signal related to a subject or sample.
1. A second order superconducting gradiometer adapted to be used with a low field superconducting quantum interference device (SQUID)-based magnetic resonance imaging (MRI) device as a sensing component for an MRI signal related to a subject or sample, the second order superconducting gradiometer comprising:
first and second end loops; and
first and second middle loops located between the first and second end loops, wherein the first and the second middle loops are configured to be sensing loops and the first and second end loops are configured to be non-sensing loops of the second order superconducting gradiometer.
2. The second order superconductive gradiometer of claim 1 , wherein the subject or sample is placed, during operation, between the first and second middle loops.
3. The second order superconductive gradiometer of claim 1 , the gradiometer being placed in an enclosure, the enclosure defining a region between the first and the second middle loops where the subject or sample is adapted to be placed.
4. The second order superconductive gradiometer of claim 1 , wherein the first and second middle loops are placed at a distance from each other to allow placement of the subject or sample between the first and the second middle loops during operation of the second order superconductive gradiometer.
5. The second order superconductive gradiometer of claim 1 , wherein the first and second middle loops are spaced from each other to define an imaging volume of the second order superconductive gradiometer.
6. The second order superconductive gradiometer of claim 1 , further comprising an imaging area located between the first middle loops and the second middle loops.
7. The second order superconductive gradiometer of claim 6 , wherein the first middle loops and the second middle loops are located symmetrically with respect to the imaging area.
8. The second order superconductive gradiometer of claim 1 , wherein the first and second middle loops are configured to be sensing loops and the first and second end loops are configured to be non-sensing loops of the second order superconducting gradiometer by providing an imaging area limited to a region between the first and second middle loops.