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arXiv · 2509.03107

Towards a 384-channel magnetoencephalography system based on optically pumped magnetometers

Abstract

Magnetoencephalography using optically pumped magnetometers (OPM-MEG) is gaining significant traction as a neuroimaging tool, with the potential for improved performance and practicality compared to conventional instrumentation. However, OPM-MEG has so far lagged conventional-MEG in terms of the number of independent measurements of magnetic field that can be made across the scalp (i.e. the number of channels). This is important since increasing channel count offers improvements in sensitivity, spatial resolution and coverage. Unfortunately, increasing channel count also poses significant technical and practical challenges. Here, we describe a new OPM-MEG array which exploits triaxial sensors and integrated miniaturised electronic control units to measure MEG data from up to 384 channels. We also introduce a high-speed calibration method to ensure the that the fields measured by this array are high fidelity. The system was validated using a phantom, with results showing that dipole localisation accuracy is better than 1 mm, and correlation between the measured magnetic fields and a dipole model is >0.998. We then demonstrate utility in human MEG acquisition: via measurement of visual gamma oscillations we demonstrate the improvements in sensitivity that are afforded by high channel density, and via a moviewatching paradigm we quantify improvements in spatial resolution. In sum, we show the first OPM-MEG system with a channel count larger than that of typical conventional MEG devices. This represents a significant step on the path towards OPMs becoming the sensor of choice for MEG measurement.

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BibTeXRIS

Holly Schofield, Ryan M. Hill, Lukas Rier, Ewan Kennett, Gonzalo Reina Rivero, Joseph Gibson, Ashley Tyler, Zoe Tanner, Frank Worcester, Tyler Hayward, James Osborne, Cody Doyle, Vishal Shah, Elena Boto, Niall Holmes, Matthew J. Brookes. 2025-09-03. Towards a 384-channel magnetoencephalography system based on optically pumped magnetometers. https://arxiv.org/abs/2509.03107

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