IEEE Trans Neural Syst Rehabil Eng. 2022;30:1267-1276. doi: 10.1109/TNSRE.2022.3173682. Epub 2022 May 17.
Brain-Machine Interfaces (BMI) offer the potential to modulate dysfunctional neurological networks by electrically stimulating the cerebral cortex via chronically-implanted microelectrodes. Wireless transmitters worn by BMI recipients must operate within electromagnetic emission and tissue heating limits, such as those prescribed by the IEEE and International Commission on Non-Ionizing Radiation Protection (ICNIRP), to ensure that radiofrequency emissions of BMI systems are safe. Here, we describe an approach to generating pre-compliance safety data by simulating the Specific Absorption Rate (SAR) and tissue heating of a multi-layered human head model containing a system of wireless, modular BMIs powered and controlled by an externally worn telemetry unit. We explore a number of system configurations such that our approach can be utilized for similar BMI systems, and our results provide a benchmark for the electromagnetic emissions of similar telemetry units. Our results show that the volume-averaged SAR per 10g of tissue exposed to our telemetry field complies with ICNIRP and IEEE reference levels, and that the maximum temperature increase in tissues was within permissible limits. These results were unaffected by the number of implants in the system model, and therefore we conclude that the electromagnetic emissions our BMI in any configuration are safe.
脑机接口 (BMI) 通过对慢性植入的微电极进行皮层电刺激,为调节功能失调的神经网络提供了可能。BMI 接受者佩戴的无线发射器必须在电磁发射和组织加热限制范围内运行,例如 IEEE 和国际非电离辐射防护委员会 (ICNIRP) 规定的限制,以确保 BMI 系统的射频发射是安全的。在这里,我们描述了一种通过模拟包含由外部佩戴的遥测单元供电和控制的无线、模块化 BMI 系统的多层人头模型中的比吸收率 (SAR) 和组织加热来生成预合规安全数据的方法。我们探索了多种系统配置,以便我们的方法可以用于类似的 BMI 系统,我们的结果为类似遥测单元的电磁发射提供了基准。我们的结果表明,暴露于我们的遥测场的每 10 克组织的体积平均 SAR 符合 ICNIRP 和 IEEE 参考水平,并且组织中的最大温升在允许范围内。这些结果不受系统模型中植入物数量的影响,因此我们得出结论,任何配置下的 BMI 的电磁发射都是安全的。