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用于液体中低噪声重量检测的无声学辐射表面声子晶体谐振器。

Acoustic radiation-free surface phononic crystal resonator for in-liquid low-noise gravimetric detection.

作者信息

Gao Feng, Bermak Amine, Benchabane Sarah, Robert Laurent, Khelif Abdelkrim

机构信息

College of Science and Engineering, Hamad Bin Khalifa University, Education City, Doha, Qatar.

Institut FEMTO-ST, CNRS, Université de Bourgogne-Franche-Comté, Besançon, France.

出版信息

Microsyst Nanoeng. 2021 Jan 18;7:8. doi: 10.1038/s41378-020-00236-9. eCollection 2021.

Abstract

Acoustic wave resonators are promising candidates for gravimetric biosensing. However, they generally suffer from strong acoustic radiation in liquid, which limits their quality factor and increases their frequency noise. This article presents an acoustic radiation-free gravimetric biosensor based on a locally resonant surface phononic crystal (SPC) consisting of periodic high aspect ratio electrodes to address the above issue. The acoustic wave generated in the SPC is slower than the sound wave in water, hence it prevents acoustic propagation in the fluid and results in energy confinement near the electrode surface. This energy confinement results in a significant quality factor improvement and reduces frequency noise. The proposed SPC resonator is numerically studied by finite element analysis and experimentally implemented by an electroplating-based fabrication process. Experimental results show that the SPC resonator exhibits an in-liquid quality factor 15 times higher than a conventional Rayleigh wave resonator at a similar operating frequency. The proposed radiation suppression method using SPC can also be applied in other types of acoustic wave resonators. Thus, this method can serve as a general technique for boosting the in-liquid quality factor and sensing performance of many acoustic biosensors.

摘要

声波谐振器是用于重量生物传感的有前景的候选者。然而,它们通常在液体中遭受强烈的声辐射,这限制了它们的品质因数并增加了它们的频率噪声。本文提出了一种基于由周期性高纵横比电极组成的局部共振表面声子晶体(SPC)的无声辐射重量生物传感器,以解决上述问题。在SPC中产生的声波比水中的声波慢,因此它阻止了声波在流体中的传播,并导致能量限制在电极表面附近。这种能量限制导致品质因数显著提高并降低了频率噪声。所提出的SPC谐振器通过有限元分析进行了数值研究,并通过基于电镀的制造工艺进行了实验实现。实验结果表明,在相似的工作频率下,SPC谐振器在液体中的品质因数比传统瑞利波谐振器高15倍。所提出的使用SPC的辐射抑制方法也可以应用于其他类型的声波谐振器。因此,该方法可以作为提高许多声学生物传感器在液体中的品质因数和传感性能的通用技术。

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