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基于薄壁毛细管耦合多孔玻璃微球光学谐振器的集成化学气相传感器。

Integrated Chemical Vapor Sensor Based on Thin Wall Capillary Coupled Porous Glass Microsphere Optical Resonator.

作者信息

Wang Hanzheng, Yuan Lei, Kim Cheol-Woon, Lan Xinwei, Huang Jie, Ma Yinfa, Xiao Hai

机构信息

Department of Electrical and Computer Engineering, Clemson University, Clemson, SC 29631, USA.

MO-SCI Corporation, 4040 HyPoint North, Rolla, Missouri 65401, USA.

出版信息

Sens Actuators B Chem. 2015 Sep;216:332-336. doi: 10.1016/j.snb.2015.04.012. Epub 2015 Apr 17.

Abstract

A miniaturized chemical vapor sensor probe was developed using a porous glass microsphere (PGM) as the alignment-free optical microresonator. The porous microsphere was placed inside a thin wall silica capillary tube that was fusion-spliced to an optical fiber. The whispering gallery modes (WGMs) of the microsphere were excited by the evanescent field of the light propagating inside the capillary thin wall. Adsorption of chemical vapor molecules into the pores led to a refractive index change of the PGM and thus the resonance wavelength shift of the WGMs. To facilitate the in-taking of chemical vapor molecules into the PGM, a micro window was opened at the backend of the capillary tube using femtosecond laser micromachining. Ethanol vapor was used to demonstrate the probe for chemical vapor sensing. With a miniaturized size, integrated structure and reflection mode of operation, the proposed probe may find useful in many practical applications such as environmental monitoring and biomedical sensing.

摘要

一种微型化学气相传感器探头被开发出来,它使用多孔玻璃微球(PGM)作为无对准光学微谐振器。多孔微球被放置在薄壁石英毛细管内,该毛细管与光纤熔接在一起。微球的回音壁模式(WGMs)由在毛细管薄壁内传播的光的倏逝场激发。化学蒸汽分子吸附到孔隙中导致PGM的折射率变化,从而使WGMs的共振波长发生偏移。为了便于化学蒸汽分子进入PGM,使用飞秒激光微加工在毛细管后端开了一个微窗口。使用乙醇蒸汽对该化学气相传感探头进行了演示。由于具有小型化尺寸、集成结构和反射操作模式,所提出的探头可能在许多实际应用中有用,如环境监测和生物医学传感。

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