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Fully Printed, Wireless, Stretchable Implantable Biosystem toward Batteryless, Real‐Time Monitoring of Cerebral Aneurysm Hemodynamics

机译:完全印刷,无线,可伸展的植入生物系统,朝向无电池实时监测脑动脉瘤血液动力学

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摘要

Abstract This study introduces a high‐throughput, large‐scale manufacturing method that uses aerosol jet 3D printing for a fully printed stretchable, wireless electronics. A comprehensive study of nanoink preparation and parameter optimization enables a low‐profile, multilayer printing of a high‐performance, capacitance flow sensor. The core printing process involves direct, microstructured patterning of biocompatible silver nanoparticles and polyimide. The optimized fabrication approach allows for transfer of highly conductive, patterned silver nanoparticle films to a soft elastomeric substrate. Stretchable mechanics modeling and seamless integration with an implantable stent display a highly stretchable and flexible sensor, deployable by a catheter for extremely low‐profile, conformal insertion in a blood vessel. Optimization of a transient, wireless inductive coupling method allows for wireless detection of biomimetic cerebral aneurysm hemodynamics with the maximum readout distance of 6 cm through meat. In vitro demonstrations include wireless monitoring of flow rates (0.05–1 m s−1) in highly contoured and narrow human neurovascular models. Collectively, this work shows the potential of the printed biosystem to offer a high throughput, additive manufacturing of stretchable electronics with advances toward batteryless, real‐time wireless monitoring of cerebral aneurysm hemodynamics.
机译:摘要本研究介绍了一种高吞吐量,大型制造方法,采用气溶胶喷射3D打印进行全印刷的可伸展无线电子设备。纳米思想和参数优化的综合研究使得能量流动传感器的低调,多层印刷。核心印刷过程涉及生物相容性银纳米粒子和聚酰亚胺的直接,微观结构的图案化。优化的制造方法允许将高导电,图案化的银纳米粒子膜转移到软弹性体基材上。可伸展的力学建模和带有可植入支架的无缝集成显示一个高度可伸缩和柔性的传感器,可由导管可展开,用于极其低调,在血管中的延伸插入。瞬态无线电感耦合方法的优化允许无线检测生物摩擦脑动脉瘤血流动力学,通过肉的最大读出距离为6厘米。体外示范包括高度瓣膜和狭窄的人类神经血管模型的流量率(0.05-1 m S-1)的无线监测。统称,这项工作显示了印刷生物系统的潜力,提供高吞吐量,可拉伸电子设备的添加剂制造,其具有远程,实时无线监测脑动脉瘤血液动力学。

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