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首页> 外文期刊>International Journal of Thermophysics >Influences of Detection Pinhole and Sample Flow on Thermal Lens Detection in Microfluidic Systems
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Influences of Detection Pinhole and Sample Flow on Thermal Lens Detection in Microfluidic Systems

机译:检测针孔和样品流量对微流控系统中热透镜检测的影响

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摘要

Thermal lens microscopy (TLM), due to its high temporal () and spatial resolution (), has been coupled to lab-on-chip chemistry for detection of a variety of compounds in chemical or biological fields. Due to the very short optical path length (usually below 100 ) in a microchip, the sensitivity of TLM is unfortunately still 10 to 100 times lower than conventional TLS with 1 cm sample length. Optimization of the TLM optical configuration was made with respect to different pinhole aperture-to-beam size ratios for the best signal-to-noise ratio. In the static mode, the instrumental noise comes mainly from the shot noise of the probe beam when the chopper frequency is over 1 kHz or from the flicker noise of the probe beam at low frequencies. In the flowing mode, the flow-induced noise becomes dominant when the flow rate is high. At a given flow rate, fluids with a higher density and/or a higher viscosity will cause larger flow-induced noise. As an application, a combined microfluidic flow injection analysis ()-TLM device was developed for rapid determination of pollutants by colorimetric reactions. Hexavalent chromium [Cr(VI)] was measured as a model analyte. Analytical signals for 12 sample injections in 1 min have been recorded by the FIA-TLM. For injections of sub-L samples into the microfluidic stream in a deep microchannel, a limit of detection of was achieved for Cr(VI) in water at 60 mW excitation power.
机译:热透镜显微镜(TLM)由于具有较高的时间()和空间分辨率(),已与芯片实验室化学结合使用,以检测化学或生物领域中的多种化合物。由于微芯片中的光路长度非常短(通常小于100),因此TLM的灵敏度仍然比传统TLS(样品长度为1 cm)低10到100倍。针对不同的针孔孔径与光束尺寸比,对TLM光学配置进行了优化,以获得最佳的信噪比。在静态模式下,仪器噪声主要来自斩波频率超过1 kHz时探测光束的散粒噪声,或者来自低频探测光束的闪烁噪声。在流动模式下,流速高时,由流动引起的噪声占主导地位。在给定的流速下,具有较高密度和/或较高粘度的流体将引起较大的流动引起的噪声。作为一种应用,开发了一种组合式微流体流动注射分析()-TLM装置,用于通过比色反应快速测定污染物。测量六价铬[Cr(VI)]作为模型分析物。 FIA-TLM记录了1分钟内进行12次样品进样的分析信号。对于在深微通道中将亚L样品注入微流中,在60 mW激发功率下水中的Cr(VI)的检出限达到了极限。

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