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首页> 外文期刊>The Journal of Supercritical Fluids >Three-dimensional optofluidic waveguides in hydrophobic silica aerogels via supercritical fluid processing
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Three-dimensional optofluidic waveguides in hydrophobic silica aerogels via supercritical fluid processing

机译:通过超临界流体处理在疏水性二氧化硅气凝胶中的三维光流体波导

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Optofluidic components enable flexible routing and transformations of light beams in integrated lab-on-a-chip systems with the use of carefully shaped fluid parcels. For structural integrity reasons, the working fluid is typically contained within a solid-material chip. One of the outstanding challenges in optofluidics is the preparation and processing of optofluidic waveguides. These require solid cladding materials that are sufficiently strong to contain the fluid while possessing optical properties that allow efficient confinement of light within fluidic channels. Here, we report on a new technique to obtain liquid-core optofluidic waveguides based on total internal reflection of light in three-dimensional water-filled channels embedded in hydrophobic silica aerogel. To form the channels, we employ a fiber made of cagelike silicon-oxygen compound - trifluoropropyl polyhedral oligomeric silsesquioxane (trifluoropropyl POSS) - which has high solubility in supercritical CO2 (scCO2). A U-shaped fiber made of trifluoropropyl POSS is obtained by melt/freeze processing of POSS powder and subsequently placed in a silicate sol. After gelation of the sol and aging of the gel, scCO2 extraction is used to dry the wet gel and extract the POSS fiber, yielding a dry silica aerogel with a U-shaped empty channel inside it Finally, the silanol groups at the surface of the aerogel are reacted with hexamethyldisilazane (HMDS) in the presence of scCO2 to render the aerogel surface hydrophobic and the channel is filled with water. We demonstrate efficient waveguiding by coupling light into the water-filled channel and monitoring the channel output. The presented procedure opens up new possibilities for creating complex three-dimensional networks of liquid channels in aerogels for optofluidic applications.
机译:借助光流体组件,可以通过精心设计的流体包裹,在集成的芯片实验室系统中灵活地路由和转换光束。出于结构完整性的原因,工作流体通常包含在固体材料芯片中。光流体领域的突出挑战之一是光流体波导的制备和加工。这些要求固体覆层材料足够坚固以容纳流体,同时具有允许将光有效地限制在流体通道内的光学特性。在这里,我们报告了一种新技术,该技术基于嵌入在疏水性硅胶气凝胶中的三维注水通道中的光的全内反射来获得液芯光流体波导。为了形成通道,我们使用由笼状硅氧化合物三氟丙基多面体低聚倍半硅氧烷(三氟丙基POSS)制成的纤维,该纤维在超临界CO2(scCO2)中具有高溶解度。通过对POSS粉末进行熔融/冷冻处理,获得由三氟丙基POSS制成的U形纤维,然后将其置于硅酸盐溶胶中。溶胶凝胶化并凝胶老化后,使用scCO2萃取法干燥湿凝胶并萃取POSS纤维,得到干燥的二氧化硅气凝胶,其内部具有U形的空通道。最后,在硅橡胶表面上的硅烷醇基团气凝胶在scCO2存在下与六甲基二硅氮烷(HMDS)反应,使气凝胶表面具有疏水性,通道中充满水。我们通过将光耦合到充满水的通道并监视通道输出来演示有效的波导。提出的程序为在光凝胶应用的气凝胶中创建复杂的三维液体通道网络开辟了新的可能性。

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