摩擦电效应
材料科学
纳米发生器
振膜(声学)
膈神经
刺激
机械能
生物医学工程
医学
电气工程
内科学
呼吸系统
工程类
压电
物理
扬声器
复合材料
功率(物理)
量子力学
作者
Hao Zhong,Qian Zhang,Mi Zhou,Cong Xing,Yang An,Qi Zhang,Junrui Guo,Song Liu,Zhigang Qu,Shiqing Feng,Guangzhi Ning
标识
DOI:10.1021/acsami.4c03715
摘要
Spinal cord injury poses considerable challenges, particularly in diaphragm paralysis. To address limitations in existing diaphragm pacing technologies, we report an implantable, self-driven diaphragm pacing system based on a microvibration triboelectric nanogenerator (MV-TENG). Leveraging the efficient MV-TENG, the system harvests micromechanical energy and converts this energy into pulses for phrenic nerve stimulation. In vitro tests confirm a stable MV-TENG output, while subcutaneous implantation of the device in rats results in a constant amplitude over 4 weeks with remarkable energy-harvesting efficacy. The system effectively induces diaphragmatic motor-evoked potentials, triggering contractions of the diaphragm. This proof-of-concept system has potential clinical applications in implantable phrenic nerve stimulation, presenting a novel strategy for advancing next-generation diaphragm pacing devices.
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