Sir Peter Mansfield Imaging Centre, School of Physics and Astronomy, University of Nottingham, University Park, Nottingham NG7 2RD, UK; Cerca Magnetics Limited, Unit 2 Castlebridge Office Village, Kirtley Drive, Nottingham NG7 1LD, UK.
Cerca Magnetics Limited, Unit 2 Castlebridge Office Village, Kirtley Drive, Nottingham NG7 1LD, UK; Sir Peter Mansfield Imaging Centre, School of Physics and Astronomy, University of Nottingham, University Park, Nottingham NG7 2RD, UK.
Neuroimage. 2023 Jul 1;274:120157. doi: 10.1016/j.neuroimage.2023.120157. Epub 2023 May 5.
The ability to collect high-quality neuroimaging data during ambulatory participant movement would enable a wealth of neuroscientific paradigms. Wearable magnetoencephalography (MEG) based on optically pumped magnetometers (OPMs) has the potential to allow participant movement during a scan. However, the strict zero magnetic field requirement of OPMs means that systems must be operated inside a magnetically shielded room (MSR) and also require active shielding using electromagnetic coils to cancel residual fields and field changes (due to external sources and sensor movements) that would otherwise prevent accurate neuronal source reconstructions. Existing active shielding systems only compensate fields over small, fixed regions and do not allow ambulatory movement. Here we describe the matrix coil, a new type of active shielding system for OPM-MEG which is formed from 48 square unit coils arranged on two planes which can compensate magnetic fields in regions that can be flexibly placed between the planes. Through the integration of optical tracking with OPM data acquisition, field changes induced by participant movement are cancelled with low latency (25 ms). High-quality MEG source data were collected despite the presence of large (65 cm translations and 270° rotations) ambulatory participant movements.
在可移动参与者运动期间收集高质量神经影像学数据的能力将能够实现大量神经科学范式。基于光泵磁力计 (OPM) 的可穿戴脑磁图 (MEG) 有可能允许参与者在扫描期间移动。然而,OPM 的严格零磁场要求意味着系统必须在磁屏蔽室 (MSR) 内运行,并且还需要使用电磁线圈进行主动屏蔽,以消除由于外部源和传感器运动而导致的残余场和场变化,否则这会阻止准确的神经元源重建。现有的主动屏蔽系统仅补偿小的固定区域的场,并且不允许可移动运动。在这里,我们描述了矩阵线圈,这是一种用于 OPM-MEG 的新型主动屏蔽系统,它由两个平面上的 48 个正方形单元线圈组成,可以在两个平面之间灵活放置的区域中补偿磁场。通过将光学跟踪与 OPM 数据采集集成,参与者运动引起的磁场变化可以以低延迟(25 毫秒)进行消除。尽管存在大的(65 厘米平移和 270°旋转)可移动参与者运动,但仍收集到了高质量的 MEG 源数据。