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首页> 外文期刊>ACS nano >Self-Powered Direct Muscle Stimulation Using a Triboelectric Nanogenerator (TENG) Integrated with a Flexible Multiple-Channel Intramuscular Electrode
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Self-Powered Direct Muscle Stimulation Using a Triboelectric Nanogenerator (TENG) Integrated with a Flexible Multiple-Channel Intramuscular Electrode

机译:使用摩擦纳米电磁炉(滕)与柔性多通道肌内电极集成的自动直接肌肉刺激

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摘要

Muscle function loss can result from multiple nervous system diseases including spinal cord injury (SCI), stroke, and multiple sclerosis (MS). Electrical muscle stimulation is clinically employed for rehabilitative and therapeutic purpose and typically requires mA-level stimulation current. Here, we report electrical muscle stimulation, which is directly powered by a stacked-layer triboelectric nanogenerator (TENG) through a flexible multiple-channel intramuscular electrode. This multiple-channel intramuscular electrode allows mapping of motoneurons that is sparsely distributed in the muscle tissue and thus enables high efficiency TENG muscle stimulation, although the short-circuit current of the TENG is only 35 mu A. With a stimulation efficiency matrix, we find the electrical muscle stimulation efficiency is affected by two factors, namely, the electrode-motoneuron position, and the stimulation waveform polarity. To test whether it is a universal phenomenon for electrical stimulation, we then further investigate with the conventional square wave current stimulation and confirm that the stimulation efficiency is also affected by these two factors. Thus, we develop a self-powered direct muscle stimulation system with a TENG as power source and waveform generator, and a multiple-channel intramuscular electrode to allow motoneuron mapping for stimulation efficiency optimization. We believe such self-powered system could be potentially used for rehabilitative and therapeutic purpose to treat muscle function loss.
机译:肌肉功能损失可能是由于多发性神经系统疾病导致,包括脊髓损伤(SCI),中风和多发性硬化症(MS)。电肌刺激在临床上用于康复和治疗目的,通常需要MA级刺激电流。在这里,我们报告电肌刺激,通过柔性多通道肌肉电极直接由堆叠层摩擦纳米电极(Teng)提供动力。这种多通道肌肉电极允许稀疏分布在肌肉组织中的运动神经元的映射,从而实现高效率腾肌刺激,尽管龄的短路电流仅为35亩A.具有刺激效率矩阵,我们发现电肌刺激效率受到两个因素的影响,即电极 - 运动神经元位置和刺激波形极性。为了测试它是否是电刺激的普遍现象,我们进一步研究了传统的方波电流刺激,并确认刺激效率也受到这两个因素的影响。因此,我们用滕作为电源和波形发生器和多通道腔内电极开发一个自给自足的直接肌肉刺激系统,以及允许Motoneuron映射进行刺激效率优化。我们相信这种自我支持的系统可能是恢复和治疗目的来治疗肌肉功能损失。

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