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Nanopaper as an Optical Sensing Platform

机译:纳米纸作为光学传感平台

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Bacterial cellulose nanopaper (BC) is a multifunctional material known for numerous desirable properties: sustainability, biocompatibility, biodegradability, optical transparency, thermal properties, flexibility, high mechanical strength, hydrophilicity, high porosity, broad chemical-modification capabilities and high surface area. Herein, we report various nanopaper-based optical sensing platforms and describe how they can be tuned, using nanomaterials, to exhibit plasmonic or photoluminescent properties that can be exploited for sensing applications. We also describe several nanopaper configurations, including cuvettes, plates and spots that we printed or punched on BC. The platforms include a colorimetric-based sensor based on nanopaper containing embedded silver and gold nanoparticles; a photoluminescent-based sensor, comprising CdSe@ZnS quantum dots conjugated to nanopaper; and a potential up-conversion sensing platform constructed from nanopaper functionalized with NaYF4:Yb3+@Er3+ &SiO2 nanoparticles. We have explored modulation of the plasmonic or photoluminescent properties of these platforms using various model biologically relevant analytes. Moreover, we prove that BC is and advantageous preconcentration platform that facilitates the analysis of small volumes of optically active materials (similar to 4 mu L). We are confident that these platforms will pave the way to optical (bio)sensors or theranostic devices that are simple, transparent, flexible, disposable, lightweight, miniaturized and perhaps wearable.
机译:细菌纤维素纳米纸(BC)是一种多功能材料,以多种理想特性而著称:可持续性,生物相容性,生物降解性,光学透明性,热特性,柔韧性,高机械强度,亲水性,高孔隙率,广泛的化学改性能力和高表面积。在本文中,我们报告了各种基于纳米纸的光学传感平台,并描述了如何使用纳米材料对其进行调谐,以展现可用于传感应用的等离激元或光致发光特性。我们还将描述几种纳米纸的配置,包括在BC上印刷或打孔的比色杯,板和斑点。该平台包括基于比色的传感器,该传感器基于包含嵌入的银和金纳米颗粒的纳米纸;一种基于光致发光的传感器,包括与纳米纸共轭的CdSe @ ZnS量子点;以及由用NaYF4:Yb3 + @ Er3 +&SiO2纳米粒子功能化的纳米纸构建的潜在的上转换传感平台。我们已经使用各种模型生物学相关的分析物探索了这些平台的等离子体或光致发光特性的调制。此外,我们证明BC是有利的预浓缩平台,可促进分析少量光学活性物质(类似于4μL)。我们相信,这些平台将为简单,透明,灵活,一次性,轻便,小型化甚至可穿戴的光学(生物)传感器或医疗诊断设备铺平道路。

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