Su Kangyu, Qiu Zhang, Xu Jian
College of Information and Electronics Engineering, Zhejiang University, Hangzhou 310027, China.
MOE Frontier Science Center for Brain Science and Brain-Machine Integration, Zhejiang University, Hangzhou 310058, China.
Micromachines (Basel). 2023 Oct 28;14(11):2001. doi: 10.3390/mi14112001.
Electrical stimulation is an important technique for modulating the functions of the nervous system through electrical stimulus. To implement a more competitive prototype that can tackle the domain-specific difficulties of existing electrical stimulators, three key techniques are proposed in this work. Firstly, a load-adaptive power saving technique called over-voltage detection is implemented to automatically adjust the supply voltage. Secondly, redundant digital calibration (RDC) is proposed to improve current accuracy and ensure safety during long-term electrical stimulation without costing too much circuit area and power. Thirdly, a flexible waveform generator is designed to provide arbitrary stimulus waveforms for particular applications. Measurement results show the stimulator can adjust the supply voltage from 12 V to 100 V automatically, and the measured effective resolution of the stimulation current reaches 14 bits in a full range of 6.5 mA. Without applying charge balancing techniques, the average mismatch between the cathodic and anodic current pulses in biphasic stimulus is 0.0427%. The proposed electrical stimulator can generate arbitrary stimulus waveforms, including sine, triangle, rectangle, etc., and it is supposed to be competitive for implantable and wearable devices.
电刺激是一种通过电刺激来调节神经系统功能的重要技术。为了实现一个更具竞争力的原型,以解决现有电刺激器在特定领域的难题,本文提出了三项关键技术。首先,实施一种名为过电压检测的负载自适应节能技术,以自动调整电源电压。其次,提出了冗余数字校准(RDC)技术,以提高电流精度,并在长期电刺激过程中确保安全,同时不会占用过多的电路面积和功耗。第三,设计了一种灵活的波形发生器,为特定应用提供任意刺激波形。测量结果表明,该刺激器可自动将电源电压从12V调整到100V,在6.5mA的全范围内,测量得到的刺激电流有效分辨率达到14位。在不应用电荷平衡技术的情况下,双相刺激中阴极和阳极电流脉冲之间的平均失配为0.0427%。所提出的电刺激器可生成任意刺激波形,包括正弦波、三角波、矩形波等,有望在植入式和可穿戴设备方面具有竞争力。