Centre for Human Brain Health, School of Psychology, University of Birmingham, Edgbaston, Birmingham B15 2SA, United Kingdom; Centre for Human Brain Health, School of Psychology, University of Birmingham, Edgbaston, Birmingham B15 2SA, United Kingdom.
School of Physics and Astronomy, University of Birmingham, Edgbaston, Birmingham B15 2TT, United Kingdom.
Neuroimage. 2021 Feb 1;226:117497. doi: 10.1016/j.neuroimage.2020.117497. Epub 2020 Oct 24.
Optically Pumped Magnetometers (OPMs) have been hailed as the future of human magnetoencephalography, as they enable a level of flexibility and adaptability that cannot be obtained with systems based on superconductors. While OPM sensors are already commercially available, there is plenty of room for further improvements and customization. In this work, we detected auditory evoked brain fields using an OPM based on the nonlinear magneto-optical rotation (NMOR) technique. Our sensor head, containing only optical and non-magnetizable elements, is connected to an external module including all the electronic components, placed outside the magnetically shielded room. The use of the NMOR allowed us to detect the brain signals in non-zero magnetic field environments. In particular, we were able to detect auditory evoked fields in a background field of 70 nT. We benchmarked our sensor with conventional SQUID sensors, showing comparable performance. We further demonstrated that our sensor can be employed to detect modulations of brain oscillations in the alpha band. Our results are a promising stepping-stone towards the realization of resilient OPM-based magnetoencephalography systems that do not require active compensation.
光泵磁强计(OPM)被誉为人类脑磁图的未来,因为它们能够实现超导系统无法获得的灵活性和适应性。虽然 OPM 传感器已经商业化,但仍有很大的改进和定制空间。在这项工作中,我们使用基于非线性磁光旋转(NMOR)技术的 OPM 检测听觉诱发脑场。我们的传感器头仅包含光学和非磁性元件,与包含所有电子元件的外部模块相连,放置在磁屏蔽室外部。NMOR 的使用使我们能够在非零磁场环境中检测脑信号。特别是,我们能够在背景磁场为 70nT 的情况下检测到听觉诱发场。我们使用传统的 SQUID 传感器对我们的传感器进行了基准测试,结果表明性能相当。我们进一步证明,我们的传感器可以用于检测 alpha 波段脑振荡的调制。我们的研究结果为实现不需要主动补偿的基于 OPM 的稳健脑磁图系统迈出了有希望的一步。