IEEE Trans Neural Syst Rehabil Eng. 2022;30:1755-1765. doi: 10.1109/TNSRE.2022.3186801. Epub 2022 Jul 6.
Electrical stimulation is widely used in nerve regulation and treatment. The detection of the distribution of stimulation current in tissues is of great significance to improve the accuracy of electrical stimulation, but the current technical means are still difficult to achieve the non-invasive detection of stimulation current. This study proposes a non-invasive detection method of electrical stimulation current based on the magneto-acoustic (MA) effect, which has the advantages of high spatial resolution and high spatial contrast. In this study, continuous sine waves with the frequency of 20kHz are used to stimulate samples. The MA signal generated by the stimulation current in the samples in a stable magnetic field is detected by lock-in amplifier, and the two-dimensional distribution of sound source is extracted. The current density distribution of samples is simulated by the method of finite element analysis, and the simulation results are verified by experiments. The results show that under the electrical stimulation of the order of 0.01A, the location measurement of two-dimensional surface sound source with millimeter accuracy can be achieved non-invasively in isolated pork and pig brain, and the measurement accuracy of weak MA signal can reach 10Pa. In short, the stimulation current detection method based on MA effect can achieve the non-invasive and high-precision detection of electrical stimulation current distribution, which is of great significance to improve the stimulation accuracy and study the neural regulation mechanism of electrical stimulation.
电刺激在神经调节和治疗中得到了广泛应用。检测组织中刺激电流的分布对于提高电刺激的准确性具有重要意义,但目前的技术手段仍然难以实现对刺激电流的非侵入式检测。本研究提出了一种基于磁声(MA)效应的电刺激电流非侵入式检测方法,该方法具有高空间分辨率和高空间对比度的优点。在本研究中,使用频率为 20kHz 的连续正弦波刺激样品。通过锁相放大器检测稳定磁场中样品中刺激电流产生的 MA 信号,并提取声源的二维分布。通过有限元分析方法模拟样品的电流密度分布,并通过实验验证了模拟结果。结果表明,在 0.01A 量级的电刺激下,可以非侵入式地实现毫米级精度的离体猪肉和猪脑二维表面声源的位置测量,并且可以达到 10Pa 的弱 MA 信号测量精度。总之,基于 MA 效应的刺激电流检测方法可以实现电刺激电流分布的非侵入式和高精度检测,这对于提高刺激准确性和研究电刺激的神经调节机制具有重要意义。