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A lightweight magnetically shielded room with active shielding
Niall Holmes1, Molly Rea2, James Chalmers3
1Sir Peter Mansfield Imaging Centre, School of Physics and Astronomy, University of Nottingham, University Park, Nottingham, NG7 2RD, UK. niall.holmes@nottingham.ac.uk.
New magnetically shielded rooms (MSRs) and window coil systems offer lighter, smaller, and more affordable shielding for optically pumped magnetometer-magnetoencephalography (OPM-MEG) brain imaging systems.
Area of Science:
- Biophysics
- Neuroscience
- Materials Science
Background:
- Magnetically shielded rooms (MSRs) are crucial for high-precision magnetic field measurements like magnetoencephalography (MEG).
- Optically pumped magnetometers (OPMs) enable wearable MEG systems, promising high spatiotemporal resolution and motion tolerance.
- Current MSRs for OPM-MEG are bulky, costly, and have challenging siting requirements, limiting widespread adoption.
Purpose of the Study:
- To develop a lightweight and compact MSR design for OPM-MEG.
- To create an effective active shielding system to minimize remnant magnetic fields within the MSR.
- To reduce the cost and installation complexity of MSRs for broader OPM-MEG deployment.
Main Methods:
- Designed a novel lightweight MSR with reduced weight and dimensions.
- Developed a 'window coil' active shielding system using simple rectangular coils on MSR walls.
- Mapped remnant magnetic fields and coil-generated fields to determine optimal coil currents for field cancellation.
Main Results:
- Achieved a 30% weight reduction and 40-60% reduction in external dimensions for the MSR.
- Successfully canceled the remnant magnetic field within the central cubic meter to |B| = 670 ± 160 pT.
- Demonstrated a significant reduction in cost, installation time, and siting restrictions compared to existing MSRs.
Conclusions:
- The new MSR design and window coil system significantly address barriers to OPM-MEG deployment.
- These advancements facilitate the widespread adoption of wearable, high-resolution brain imaging technology.
- The developed MSR offers a more practical and accessible solution for advanced neuroimaging research and clinical applications.
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