Department of Electrical and Computer Engineering, University of Utah, Salt Lake City, USA.
Department of Biomedical Engineering, University of Utah, Salt Lake City, USA.
Sci Rep. 2023 Mar 1;13(1):3469. doi: 10.1038/s41598-023-30545-8.
Most neural stimulators do not have a high enough compliance voltage to pass current through the skin. The few stimulators that meet the high compliance voltage necessary for transcutaneous stimulation are typically large benchtop units that are not portable, and the stimulation waveforms cannot be readily customized. To address this, we present the design and validation of a portable, programmable, multichannel, noninvasive neural stimulator that can generate three custom bipolar waveforms at ± 150 V with microsecond temporal resolution. The design is low-cost, open-source, and validated on the benchtop and with a healthy population to demonstrate its functionality for sensory and motor stimulation. Sensory stimulation included electrocutaneous stimulation targeting cutaneous mechanoreceptors at the surface of the skin and transcutaneous nerve stimulation targeting the median nerve at the wrist. Both electrocutaneous stimulation on the hand and transcutaneous stimulation at the wrist can elicit isolated tactile percepts on the hand but changes in pulse frequency are more discriminable for electrocutaneous stimulation. Also, neuromuscular electrical stimulation of the flexor digiti profundus is evoked by applying electrical stimulation directly above the muscle in the forearm and to the median and ulnar nerves in the upper arm. Muscle and nerve stimulation evoked similar grip forces and force rise times, but nerve stimulation had a significantly slower fatigue rate. The development and validation of this noninvasive stimulator and direct comparison of common sensory and motor stimulation targets in a human population constitute an important step towards more widespread use and accessibility of neural stimulation for education and research.
大多数神经刺激器的顺应电压都不够高,无法让电流穿透皮肤。少数能够满足经皮刺激所需的高顺应电压要求的刺激器通常是大型台式设备,不便于携带,而且刺激波形无法轻易定制。为了解决这个问题,我们设计并验证了一种便携式、可编程、多通道、非侵入性的神经刺激器,它可以产生±150V 的三种定制双极波形,具有微秒级的时间分辨率。该设计成本低、开源,并且在台式机和健康人群中得到了验证,以证明其用于感觉和运动刺激的功能。感觉刺激包括针对皮肤表面机械感受器的电皮肤刺激和针对腕部正中神经的经皮神经刺激。手部的电皮肤刺激和腕部的经皮刺激都可以在手部引起孤立的触觉感知,但电皮肤刺激的脉冲频率变化更易于辨别。此外,在前臂直接刺激肌肉以及在上臂刺激正中神经和尺神经,可以诱发指深屈肌的神经肌肉电刺激。肌肉和神经刺激引起的握力和力上升时间相似,但神经刺激的疲劳速度明显较慢。这种非侵入性刺激器的开发和验证以及在人类群体中对常见感觉和运动刺激靶点的直接比较,是朝着更广泛地将神经刺激用于教育和研究的普及和可及性迈出的重要一步。