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Fabrication and optical stability of silanized gold nanorods asmultifunctional transducers of near infrared light

机译:硅烷化铝纳米杆的制造和光学稳定性近红外光函数换能器

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We give new insight into multifunctional nanoparticles with light extinction in the therapeutic window, optical stability even on aggregation, as well as possibility of bio-conjugation. The optical response of these particles rests on gold nanorods, which interact with near infrared (NIR) light via plasmonic oscillations, i.e. a boundary effect which depends on all physiochemical conditions at the interface with their environment. Therefore their feasibility for biomedical applications is challenged by a poor definition of their dispersion medium, aggregation (e.g. inside endocytic vesicles) and shape transformations, which typically occur in the biological sample and under excitation and jeopardize their optical features. Here silanization of the gold nanorods is proposed as one effective solution to overcome these issues. A shell of porous silica confers isolation from the local environment and additional stability, and also proves suitable for PEGylation and bio-conjugation with e.g. biological macromolecules. In particular we engineer models of aggregation of these particles, in order to investigate its principal effect on their optical response. While in the absence of silica gold nanorods undergo substantial degradation of their plasmon oscillations, silanization proves excellent to maintain pristine optical properties even after critical flocculation.
机译:我们对多功能纳米颗粒进行了新的洞察,在治疗窗口中具有透光,即使在聚集上也具有光学稳定性,以及生物缀合的可能性。这些颗粒的光学响应搁置在金纳米棒上,其通过等离子体振荡与近红外(NIR)光相互作用,即取决于与其环境的界面处的所有物理化学条件相互作用。因此,它们对生物医学应用的可行性受到它们的分散介质的差,聚集(例如内吞囊泡)和形状转化的差挑战,其通常在生物样品中和激发下发生并危及它们的光学特征。这里提出金纳米棒的硅烷化作为克服这些问题的一种有效解决方案。多孔二氧化硅的壳与局部环境分离和额外的稳定性,并且还可以用例如聚乙二醇化和生物缀合。生物大分子。特别是我们工程师的聚集模型,以研究其对其光学响应的​​主要影响。虽然在没有二氧化硅金纳米棒的情况下经历其等离子体振荡的实质性降解,但硅烷化也能够优异地证明即使在临界絮凝后也能保持原始光学性质。

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