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首页> 外文期刊>Advanced Functional Materials >Forming Antifouling Organic Multilayers on Porous Silicon Rugate Filters Towards In Vivo/Ex Vivo Biophotonic Devices
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Forming Antifouling Organic Multilayers on Porous Silicon Rugate Filters Towards In Vivo/Ex Vivo Biophotonic Devices

机译:朝着体内/体外生物光子器件在多孔硅质Rugate过滤器上形成防污有机多层

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摘要

We describe the development and optimization of porous silicon photonic crystal surface chemistry towards implantable optical devices. Porous silicon rugate filters were prepared to obtain a narrow linewidth reflectivity peak in the near-infrared (700-1000 nm) with low background reflectivity elsewhere. The morphology of the mesoporous structures (pore diameter < 50 nm) was such that only small proteins could infiltrate the pores whereas larger proteins were excluded. To provide stability in biological media, we established an approach to build organic multilayers containing hexa(ethylene oxide) moieties in porous silicon. The optical changes associated with organic derivatization were monitored concurrently with FTIR characterization. Furthermore, the antifouling capability of our chemical strategy is assessed and the penetration of different sized proteins into the structure was determined. The structural stability in biological environments was evaluated by incubation in human blood plasma over time while monitoring the optical signature of the photonic crystal.
机译:我们描述了对可植入光学器件的多孔硅光子晶体表面化学的发展和优化。制备多孔的皱褶硅滤光片,以在近红外(700-1000 nm)处获得较窄的线宽反射率峰,而其他地方的背景反射率低。介孔结构的形态(孔径<50 nm)使得只有小蛋白可以渗入毛孔,而大蛋白则被排除。为了在生物介质中提供稳定性,我们建立了一种在多孔硅中构建包含六(环氧乙烷)部分的有机多层的方法。与FTIR表征同时监测与有机衍生化相关的光学变化。此外,评估了我们化学策略的防污能力,并确定了不同大小的蛋白质进入结构的渗透性。通过在一段时间内在人血浆中孵育同时监测光子晶体的光学特征来评估生物环境中的结构稳定性。

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