能量收集
灵活性(工程)
有限元法
压电
电压
数码产品
材料科学
铅(地质)
功率(物理)
机械能
电气工程
机械工程
生物医学工程
计算机科学
工程类
结构工程
统计
物理
数学
量子力学
地貌学
地质学
作者
Zhe Xü,Congran Jin,Andrew Cabe,Danny Escobedo,Aleksandra Gruslova,Scott Jenney,Andrew B. Closson,Lin Dong,Zi Chen,Marc D. Feldman,John X. J. Zhang
标识
DOI:10.1002/adhm.202002100
摘要
Harvesting biomechanical energy to power implantable electronics such as pacemakers has been attracting great attention in recent years because it replaces conventional batteries and provides a sustainable energy solution. However, current energy harvesting technologies that directly interact with internal organs often lack flexibility and conformability, and they usually require additional implantation surgeries that impose extra burden to patients. To address this issue, here a Kirigami inspired energy harvester, seamlessly incorporated into the pacemaker lead using piezoelectric composite films is reported, which not only possesses great flexibility but also requires no additional implantation surgeries. This lead-based device allows for harvesting energy from the complex motion of the lead caused by the expansion-contraction of the heart. The device's Kirigami pattern has been designed and optimized to attain greatly improved flexibility which is validated via finite element method (FEM) simulations, mechanical tensile tests, and energy output tests where the device shows a power output of 2.4 µW. Finally, an in vivo test using a porcine model reveals that the device can be implanted into the heart straightforwardly and generates voltages up to ≈0.7 V. This work offers a new strategy for designing flexible energy harvesters that power implantable electronics.
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