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Development of an opto-thermally responsive nanocomposite with potential applications as nanovalves for in vitro single cell addressable delivery systems.

机译:光热响应性纳米复合材料的开发及其作为体外单细胞可寻址递送系统的纳米阀的潜在应用。

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This work describes the synthesis pathways to the development of optically and thermally responsive nanovalves with fast response times in nanoporous membranes. As an approach, we developed synthesis pathways to couple a thermally responsive polymer with metallic nanoparticles and build a nanocomposite that synergizes the capability of metallic nanoparticles to convert light into heat, and the fast thermal response exhibited by the polymeric material. In addition, we developed a technique to immobilize the synthesized nanocomposite to the surface of nanoporous membranes, which allowed building valves with light and heat triggering responses.;This dissertation describes two syntheses pathways developed to produce optically and thermally responsive nanocomposites by coupling metallic nanoparticles, gold and silver, with a thermally responsive polymer, p-N-isopropyl acrylamide PNIPAM). The coupling is achieved by using PNIPAM as a capping and nucleating agent in the in situ redox reaction of a silver salt with sodium borohydride, and using PNIPAM as a capping and stabilizing agent in the redox reaction of a gold salt with ascorbic acid. The size and shape of the nanoparticles were controlled and the synthesized nanocomposites exhibit "cocoon-like" structures due to the PNIPAM surrounding the metal nanoparticles, giving the capability to aggregate and resolubilize, through many thermal (shown for gold and silver nanocomposites) and optical (shown by exposing to 532 nm wavelength low-power lasers) cycles.;The steady state and dynamic heat conduction of the heat generated from the particles was modeled and the results agreed with the observed optical switching at our experimental conditions.;Finally, a method to incorporate nanocomposites into nanoporous membranes (NPM) was developed. It involved prior immobilization of PNIPAM through plasma-induced grafting, followed by a reduction in situ of a metallic salt. The composite NPMs showed thermal responses and through simulation of heat conduction within the pores using the model developed in this work we were able to conclude that the synthesized composite membranes will exhibit optical switching when exposed to focused low power lasers.;The nanovalves developed in this work have potential applications as opto-thermally responsive valves for the spatio-temporal delivery of bioactive agents, cell array, and advanced cell culture systems.
机译:这项工作描述了在纳米多孔膜中具有快速响应时间的光学和热响应纳米阀的开发合成途径。作为一种方法,我们开发了将热响应性聚合物与金属纳米颗粒偶联并构建纳米复合材料的合成途径,该复合材料可协同金属纳米颗粒将光转化为热的能力以及聚合材料表现出的快速热响应。此外,我们还开发了一种将合成的纳米复合材料固定在纳米多孔膜表面的技术,该技术可以构建具有光和热触发响应的阀门。本论文描述了通过合成金属纳米颗粒而产生光学和热响应纳米复合材料的两种合成途径,金和银,以及具有热响应性的聚合物(pN-异丙基丙烯酰胺PNIPAM)。通过在银盐与硼氢化钠的原位氧化还原反应中使用PNIPAM作为封端和成核剂,在金盐与抗坏血酸的氧化还原反应中使用PNIPAM作为封端和稳定剂来实现。纳米粒子的尺寸和形状受到控制,并且由于PNIPAM围绕金属纳米粒子,因此合成的纳米复合材料表现出“类茧状”的结构,并通过许多热(对于金和银纳米复合材料显示)和光学方法具有聚集和再溶解的能力。 (通过暴露于532 nm波长的低功率激光器显示)周期。对颗粒产生的热量的稳态和动态热传导进行了建模,结果与在我们的实验条件下观察到的光学开关相符。开发了将纳米复合材料掺入纳米多孔膜(NPM)的方法。它涉及事先通过等离子诱导的接枝固定PNIPAM,然后原位还原金属盐。复合NPM表现出热响应,并通过使用在这项工作中开发的模型对孔内的热传导进行模拟,我们可以得出结论,合成的复合膜在聚焦的低功率激光下会显示出光学转换。作为光热响应阀,生物活性剂,细胞阵列和先进细胞培养系统的时空传递具有潜在的应用前景。

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