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Thermo-optical characterization of fluorescent rhodamine B based temperature-sensitive nanosensors using a CMOS MEMS micro-hotplate

机译:使用CMOS MEMS微热板对基于荧光若丹明B的温度敏感纳米传感器进行热光学表征

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摘要

A custom designed microelectromechanical systems (MEMS) micro-hotplate, capable of operating at high temperatures (up to 700 °C), was used to thermo-optically characterize fluorescent temperature-sensitive nanosensors. The nanosensors, 550 nm in diameter, are composed of temperature-sensitive rhodamine B (RhB) fluorophore which was conjugated to an inert silica sol–gel matrix. Temperature-sensitive nanosensors were dispersed and dried across the surface of the MEMS micro-hotplate, which was mounted in the slide holder of a fluorescence confocal microscope. Through electrical control of the MEMS micro-hotplate, temperature induced changes in fluorescence intensity of the nanosensors was measured over a wide temperature range. The fluorescence response of all nanosensors dispersed across the surface of the MEMS device was found to decrease in an exponential manner by 94%, when the temperature was increased from 25 °C to 145 °C. The fluorescence response of all dispersed nanosensors across the whole surface of the MEMS device and individual nanosensors, using line profile analysis, were not statistically different (p < 0.05). The MEMS device used for this study could prove to be a reliable, low cost, low power and high temperature micro-hotplate for the thermo-optical characterisation of sub-micron sized particles. The temperature-sensitive nanosensors could find potential application in the measurement of temperature in biological and micro-electrical systems.
机译:定制设计的微机电系统(MEMS)微热板能够在高温(高达700°C)下运行,用于热光学表征荧光温度敏感型纳米传感器。直径为550 nm的纳米传感器由对温度敏感的若丹明B(RhB)荧光团与惰性硅胶溶胶-凝胶基质共轭而成。温度敏感的纳米传感器在MEMS微热板的表面上分散并干燥,该微热板安装在荧光共聚焦显微镜的载玻片支架中。通过MEMS微热板的电气控制,可以在较宽的温度范围内测量温度引起的纳米传感器荧光强度的变化。当温度从25°C升高到145°C时,发现分散在MEMS器件表面的所有纳米传感器的荧光响应都以指数方式降低了94%。使用线轮廓分析,整个MEMS器件整个表面上的所有分散纳米传感器和单个纳米传感器的荧光响应均无统计学差异(p <0.05)。用于这项研究的MEMS器件可以证明是一种可靠的,低成本,低功耗和高温的微型热板,用于亚微米尺寸颗粒的热光学表征。对温度敏感的纳米传感器可以在生物和微电子系统的温度测量中找到潜在的应用。

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