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Sub-wavelength fluorescent polymer coatings to convert standard glass capillaries into robust microfluidic refractometric sensors

机译:亚波长荧光聚合物涂层,可将标准的玻璃毛细管转变为坚固的微流折光传感器

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A capillary microresonator platform for label-free refractometric sensing is demonstrated by coating the interior of thick-walled silica capillaries with a sub-wavelength layer of high refractive index, dye-doped polymer. No intermediate processing, such as etching or tapering, of the capillary is required. Side illumination and detection of the polymer layer reveals a fluorescence spectrum that is periodically modulated by the presence of whispering gallery modes within the layer. The fabricated capillary resonators exhibited sensitivities to changes in internal refractive index of up to 29.44 nm/RIU, demonstrated by flowing through aqueous dilutions of glucose. Thick walled capillaries are used in order to readily allow interfacing with existing biological and chemical sensing and separation platforms such as capillary electrophoresis or gas chromatography where such capillaries are routinely used. The interior polymer coating method described here could enable the use of a wide range of materials for the design of optofluidic label-free sensors integrated with industry standard (bio)chemical analytical separation platforms.
机译:通过用高折射率,染料掺杂的聚合物的亚波长层覆盖厚壁二氧化硅毛细管的内部,证明了用于无标记折光检测的毛细管微谐振器平台。不需要毛细管的中间处理,例如蚀刻或逐渐变细。聚合物层的侧面照明和检测显示出荧光光谱,该光谱被层内耳语通道模式的存在周期性地调节。所制造的毛细管谐振器对高达29.44 nm / RIU的内部折射率的变化表现出敏感性,这是通过流过葡萄糖的水稀释液来证明的。使用厚壁的毛细管是为了容易地与现有的生物和化学传感和分离平台(例如毛细管电泳或气相色谱法)连接,而在常规情况下使用此类毛细管。本文所述的内部聚合物涂层方法可以使多种材料用于设计与工业标准(生物)化学分析分离平台集成在一起的无液流无标签传感器。

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