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基于柔性微 ZnO 复合材料的生物传感器压电响应增强的优化策略。

Optimization Strategies Used for Boosting Piezoelectric Response of Biosensor Based on Flexible Micro-ZnO Composites.

机构信息

Electrical Department, LGEF, Université Lyon, INSA-Lyon, EA682, F-69621 Villeurbanne, France.

CNRS, Grenoble INP, LMGP, Université Grenoble Alpes, F-38000 Grenoble, France.

出版信息

Biosensors (Basel). 2022 Apr 14;12(4):245. doi: 10.3390/bios12040245.

Abstract

Piezoelectric ZnO-based composites have been explored as a flexible and compact sensor for the implantable biomedical systems used in cardio surgery. In this work, a progressive development route was investigated to enhance the performance of piezoelectric composites incorporated with different shape, concentration and connectivity of ZnO fillers. ZnO microrods (MRs) have been successfully synthesized homogeneously in aqueous solution using a novel process-based on chemical bath deposition (CBD) method. The morphological analysis along with Raman scattering and cathodoluminescence spectroscopy of ZnO MRs confirm their high crystalline quality, their orientation along the polar -axis and the presence of hydrogen-related defects acting as shallow donors in their center. The experimental characterizations highlight that ZnO MR-based composites, with a higher aspect ratio (AR), lead to a significant improvement in the mechanical, dielectric and piezoelectric properties as opposed to the ZnO microparticles (MP) counterparts. The dielectrophoretic (DEP) process is then subjected to both ZnO MP- and MR-based composites, whose performance is expected to be improved as compared to the randomly dispersed composites, thanks to the creation of chain-like structures along the electric field direction. Furthermore, a numerical simulation using COMSOL software is developed to evaluate the influence of the material structuration as well as the filler's shape on the electric field distribution within different phases (filler, matrix and interface) of the composites. Finally, the aligned MR piezoelectric composites are revealed to be high potential in the development of innovative compact and biocompatible force-sensing devices. Such a technological breakthrough allows the achievement of a real-time precise characterization of mitral valve (MV) coaptation to assist surgeons during MV repair surgery.

摘要

压电 ZnO 基复合材料已被探索用于心脏手术中使用的可植入生物医学系统的柔性和紧凑型传感器。在这项工作中,研究了一种渐进的开发途径,以提高与不同形状、浓度和 ZnO 填料连通性的压电复合材料的性能。使用基于化学浴沉积 (CBD) 方法的新型工艺,成功地在水溶液中均匀合成了 ZnO 微米棒 (MR)。通过 ZnO MR 的形态分析以及拉曼散射和阴极发光光谱学证实了它们的高结晶质量、沿极轴取向以及存在作为浅施主的与氢相关的缺陷。实验表征强调,与 ZnO 微米颗粒 (MP) 相比,具有更高纵横比 (AR) 的 ZnO MR 基复合材料在机械、介电和压电性能方面有显著改善。然后对基于 ZnO MP 和 MR 的复合材料进行电介质电泳 (DEP) 处理,由于在电场方向上形成链状结构,预计其性能会得到改善。此外,使用 COMSOL 软件开发了数值模拟,以评估材料结构化以及填料形状对复合材料不同相(填料、基体和界面)内电场分布的影响。最后,发现排列整齐的 MR 压电复合材料在开发创新的紧凑型和生物兼容力感测设备方面具有很大潜力。这一技术突破允许对二尖瓣 (MV) 闭合进行实时精确表征,以在 MV 修复手术期间协助外科医生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a091/9029272/ea785d23b5b1/biosensors-12-00245-g001.jpg

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