Institute of Cardiothoracic Surgery at Changhai Hospital , Second Military Medical University , Shanghai 200433 , China.
National Key Laboratory of Science and Technology on Micro/Nano Fabrication, Key Laboratory for Thin Film and Microfabrication of the Ministry of Education, Department of Micro/Nano Electronics , Shanghai Jiao Tong University , Shanghai 200240 , China.
ACS Nano. 2019 Mar 26;13(3):2822-2830. doi: 10.1021/acsnano.8b08567. Epub 2019 Feb 20.
Implantable medical devices are widely used for monitoring and treatment of severe diseases. In particular, an implantable cardiac pacemaker is the most effective therapeutic device for treating bradyrhythmia, however its surgical replacement is inevitable every 5-12 years due to the limited life of the built-in battery. Although several approaches of energy harvesting have been explored in this decade for powering cardiac pacemakers, the modern, commercial, and full-function pacemaker has never been powered effectively yet. Here, we report an integrated strategy for directly powering a modern and full-function cardiac pacemaker, which can pace the porcine heart in vivo by harvesting the natural energy of a heartbeat, without using any external energy storage element. The generator includes an elastic skeleton and two piezoelectric composites, which could generate a high-output current of 15 μA in vivo over state-of-the-art performance. This study makes an impressive step toward fabricating a self-powered cardiac pacemaker and resolving the power issue of implantable medical devices by piezoelectric harvesting technology.
植入式医疗器械被广泛用于监测和治疗严重疾病。特别是,植入式心脏起搏器是治疗心动过缓最有效的治疗设备,但其内置电池的寿命有限,每 5-12 年就需要进行外科更换。尽管在过去十年中已经探索了几种能量收集方法来为心脏起搏器供电,但现代商业的全功能起搏器仍然没有得到有效的供电。在这里,我们报告了一种直接为现代全功能心脏起搏器供电的综合策略,该起搏器可以通过收集心跳的自然能量来起搏猪的心脏,而无需使用任何外部储能元件。该发生器包括一个弹性骨架和两个压电复合材料,可在体内产生 15μA 的高输出电流,性能达到了现有技术的最高水平。这项研究朝着制造自供电心脏起搏器迈出了令人印象深刻的一步,并通过压电采集技术解决了植入式医疗器械的电源问题。