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基于声悬浮技术的生物兼容无铅压电复合材料用于粒子操控。

Biologically Compatible Lead-Free Piezoelectric Composite for Acoustophoresis Based Particle Manipulation Techniques.

机构信息

Faculty of Mechanical Engineering and Design, Kaunas University of Technology, Studentu str. 56, LT-51424 Kaunas, Lithuania.

出版信息

Sensors (Basel). 2021 Jan 12;21(2):483. doi: 10.3390/s21020483.

Abstract

This research paper is concentrated on the design of biologically compatible lead-free piezoelectric composites which may eventually replace traditional lead zirconium titanate (PZT) in micromechanical fluidics, the predominantly used ferroelectric material today. Thus, a lead-free barium-calcium zirconate titanate (BCZT) composite was synthesized, its crystalline structure and size, surface morphology, chemical, and piezoelectric properties were analyzed, together with the investigations done in variation of composite thin film thickness and its effect on the element properties. Four elements with different thicknesses of BCZT layers were fabricated and investigated in order to design a functional acoustophoresis micromechanical fluidic element, based on bulk acoustic generation for particle control technologies. Main methods used in this research were as follows: FTIR and XRD for evaluation of chemical and phase composition; SEM-for surface morphology; wettability measurements were used for surface free energy evaluation; a laser triangular sensing system-for evaluation of piezoelectric properties. XRD results allowed calculating the average crystallite size, which was 65.68 Å confirming the formation of BCZT nanoparticles. SEM micrographs results showed that BCZT thin films have some porosities on the surface with grain size ranging from 0.2 to 7.2 µm. Measurements of wettability showed that thin film surfaces are partially wetting and hydrophilic, with high degree of wettability and strong solid/liquid interactions for liquids. The critical surface tension was calculated in the range from 20.05 to 27.20 mN/m. Finally, investigations of piezoelectric properties showed significant results of lead-free piezoelectric composite, i.e., under 5 N force impulse thin films generated from 76 mV up to 782 mV voltages. Moreover, an experimental analysis showed that a designed lead-free BCZT element creates bulk acoustic waves and allows manipulating bio particles in this fluidic system.

摘要

本研究论文集中于设计生物相容性的无铅压电复合材料,这些复合材料最终可能会替代目前在微机械流体系中主要使用的铁电材料锆钛酸钡(PZT)。因此,合成了一种无铅的钡钙锆钛酸盐(BCZT)复合材料,并对其晶体结构和尺寸、表面形貌、化学和压电性能进行了分析,同时还研究了复合材料薄膜厚度的变化及其对元素性能的影响。为了设计一种基于体声波产生的用于粒子控制技术的功能声流微机械流元件,我们制作和研究了四个具有不同 BCZT 层厚度的元件。本研究主要采用以下方法:FTIR 和 XRD 用于评估化学和相组成;SEM 用于表面形貌评估;润湿性测量用于表面自由能评估;激光三角感应系统用于评估压电性能。XRD 结果可以计算出平均晶粒尺寸,为 65.68 Å,证实了 BCZT 纳米粒子的形成。SEM 显微照片结果表明,BCZT 薄膜表面有一些孔隙,晶粒尺寸在 0.2 到 7.2 µm 之间。润湿性测量表明,薄膜表面部分润湿且亲水,液体具有高润湿性和强固液相互作用。临界表面张力计算范围为 20.05 至 27.20 mN/m。最后,对压电性能的研究表明,无铅压电复合材料的性能显著,即在 5 N 力脉冲下,薄膜可产生 76 mV 至 782 mV 的电压。此外,实验分析表明,设计的无铅 BCZT 元件可产生体声波,并允许在该流体系中操纵生物粒子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6752/7826690/29d8c4f870b6/sensors-21-00483-g001.jpg

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