生物医学应用中的超声波驱动三电和压电纳米发电机

Fu-Cheng Kao, Shih-Feng Hung, Chang-Chi Yang, Parag Parashar, Chun-Ju Huang, M. Hsieh, Jen‐Chung Liao, Po-Liang Lai, T. Fu, Tsung-Ting Tsai, Zong-Hong Lin
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引用次数: 0

摘要

微电子技术通过监测生理信号、治疗疾病和提高人类福祉,在医疗领域发挥着至关重要的作用。对于植入式和可穿戴设备来说,可靠、持续的能源是必不可少的。虽然传统的能源系统依赖电池和外部电源连接,但它们的缺点,包括需要频繁充电、电池寿命有限以及可能需要重新操作,限制了它们的实用性。因此,人们开始探索可自我维持的长效电源解决方案。超声波驱动的纳米发电机是一种前景广阔的能源,它能利用肌肉运动、心跳、呼吸和胃蠕动等活动产生的生物力学能量。它能将这种能量转化为电信号,从而实现生理和病理标记检测、心脏起搏、神经刺激、组织修复和体重管理。在这篇综述中,我们将概述利用超声波设计的三电(TENG)和压电(PENG)纳米发电机及其在生物医学中的应用,为未来自供电医疗设备的发展提供启示。这些设备具有多种应用潜力,包括伤口治疗、神经刺激和再生,以及为植入设备中的电池充电。
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Ultrasound-driven triboelectric and piezoelectric nanogenerators in biomedical application
Microelectronics play a crucial role in medical settings by monitoring physiological signals, treating illnesses, and enhancing human well-being. For implanted and wearable devices, a reliable and continuous energy source is essential. While conventional energy systems rely on batteries and external power connections, their drawbacks, including the need for frequent charging, limited battery lifespan, and the potential for reoperation, restrict their utility. This has spurred the exploration of self-sustaining, long-lasting power solutions. The ultrasound-driven nanogenerator, a promising energy source, harnesses biomechanical energy from activities like muscle movement, heartbeat, respiration, and gastric peristalsis. It converts this energy into electrical signals, enabling the detection of physiological and pathological markers, cardiac pacing, nerve stimulation, tissue repair, and weight management. In this review, we provide an overview of triboelectric (TENG) and piezoelectric (PENG) nanogenerator design with ultrasound and its applications in biomedicine, offering insights for the advancement of self-powered medical devices in the future. These devices hold potential for diverse applications, including wound treatment, nerve stimulation and regeneration, as well as charging batteries in implanted devices.
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