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拉制微毛细管管谐振器,具有电读取功能,用于质量传感应用。

Pulled microcapillary tube resonators with electrical readout for mass sensing applications.

机构信息

School of Mechanical and Aerospace Engineering, Seoul National University, Seoul, 08826, Korea.

School of Materials Science and Engineering, Nanyang Technological University, Singapore, 639798, Singapore.

出版信息

Sci Rep. 2016 Oct 3;6:33799. doi: 10.1038/srep33799.

Abstract

This paper reports a microfabrication-free approach to make hollow channel mass sensors by pulling a glass capillary and suspending it on top of a machined jig. A part of the pulled section makes simple contact with an actuation node and a quartz tuning fork (QTF) which acts as a sensing node. The two nodes define a pulled micro capillary tube resonator (PμTR) simply supported at two contacts. While a piezo actuator beneath the actuation node excites the PμTR, the QTF senses the resonance frequency of the PμTR. The proposed concept was validated by electrical and optical measurements of resonant spectra of PμTR. Then, different liquid samples including water, ethanol, glycerol, and their binary mixtures were introduced into the PμTR and the resonance frequency of the PμTR was measured as a function of liquid density. Density responsivity of -3,088 Hz-g cm obtained is comparable to those of microfabricated hollow resonators. With a micro droplet generation chip configured in series with the PμTR, size distribution of oil droplets suspended in water was successfully measured with the radius resolution of 31 nm at the average droplet radius, 28.47 μm. Overall, typical off-the-shelf parts simply constitute a resonant mass sensing system along with a convenient electrical readout.

摘要

本文报道了一种无微纳加工的方法,通过拉伸玻璃毛细管并将其悬挂在加工夹具上来制作中空通道质量传感器。拉伸部分的一部分与激励节点和石英音叉(QTF)简单接触,石英音叉作为传感节点。两个节点在两个接触点处简单支撑着被拉伸的微毛细管管谐振器(PμTR)。在激励节点下方的压电致动器激励 PμTR 的同时,QTF 感测 PμTR 的谐振频率。通过对 PμTR 的谐振谱进行电和光测量验证了该概念的有效性。然后,将不同的液体样品(包括水、乙醇、甘油及其二元混合物)引入 PμTR,并测量 PμTR 的谐振频率作为液体密度的函数。获得的密度响应值为-3,088 Hz-g-cm,与微加工中空谐振器相当。通过与 PμTR 串联配置的微液滴生成芯片,成功测量了水中悬浮油滴的尺寸分布,平均液滴半径为 28.47 μm 时的半径分辨率为 31 nm。总体而言,典型的现成部件简单地构成了一个谐振质量传感系统,同时还具有方便的电读取功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e08/5046181/871edfbc6736/srep33799-f1.jpg

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