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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >An integrated micro-volume fiber-optic sensor for oxygen determination in exhaled breath based on iridium(iii) complexes immobilized in fluorinated xerogels
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An integrated micro-volume fiber-optic sensor for oxygen determination in exhaled breath based on iridium(iii) complexes immobilized in fluorinated xerogels

机译:基于固定在氟化干凝胶中的铱(iii)配合物的用于呼出气中氧气测定的集成式微体积光纤传感器

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摘要

A novel integrated fiber-optic sensor with micro detection volume is developed and evaluated for O_2 determination on a breath-by-breath basis in human health monitoring applications. The sensing element was fabricated by dip-coating an uncladded optical fiber with [Ir(piq) _2(acac)]-doped hybrid fluorinated ORMOSIL (organically modified silicate) film, which was prepared from 3,3,3-trifluoropropyltrimethoxysilane (TFP-TriMOS) and n-propyltrimethoxysilane (n-propyl-TriMOS). The sensor was then constructed by inserting the prepared optical fiber into a transparent capillary. A microchannel formed between the optical fiber and the capillary inner wall acted as a flow cell for the sample flowing through. The evanescent wave (EW) field produced on the fiber core surface can excite the O _2-sensitive fluorophores of [Ir(piq)_2(acac)] to produce emission fluorescence. O_2 can be sensed by its quenching effect on the emission fluorescence intensity. Spectroscopic properties have been characterized by FTIR and fluorescence measurements. Stern-Volmer and Demas models were both employed to analyse the sensor sensitivity, which is 13.0 with the LOD = 0.009% (3σ) and the response time is about 1 s. By integrating the sensing and detection elements on the optical fiber, the novel configuration showed advantages of easy fabrication and low cost. Parameters of sensitivity, response time, repeatability, humidity effect and temperature effect were discussed in detail. The proposed sensor showed potential for practical in-breath O_2 analysis application due to its advantages of easy fabrication, low cost, fast response, excellent hydrophobicity, negligible temperature interference and suitable sensitivity.
机译:开发了一种新型的具有微探测量的集成式光纤传感器,并在人体健康监测应用中逐个呼吸地评估O_2的确定性。通过用[Ir(piq)_2(acac)]掺杂的杂化氟化ORMOSIL(有机改性硅酸盐)薄膜浸涂未包层的光纤制成传感元件,该薄膜由3,3,3-三氟丙基三甲氧基硅烷(TFP- TriMOS)和正丙基三甲氧基硅烷(n-丙基-TriMOS)。然后通过将准备好的光纤插入透明毛细管中来构造传感器。在光纤和毛细管内壁之间形成的微通道充当样品流过的流通池。纤维纤芯表面产生的e逝波(EW)场可以激发[Ir(piq)_2(acac)]的O _2敏感荧光团,从而产生发射荧光。 O_2可以通过其对发射荧光强度的猝灭效应来感知。通过FTIR和荧光测量来表征光谱性质。 Stern-Volmer模型和Demas模型均用于分析传感器灵敏度,LOD = 0.009%(3σ)时为13.0,响应时间约为1 s。通过将感测和检测元件集成到光纤上,这种新颖的配置显示出易于制造且成本低廉的优点。详细讨论了灵敏度,响应时间,重复性,湿度效应和温度效应的参数。所提出的传感器由于其易于制造,成本低,响应速度快,疏水性好,温度干扰可忽略以及合适的灵敏度等优点而在呼吸内O_2分析中具有实际应用潜力。

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