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物理學(xué)與信息技術(shù)學(xué)院“70周年校慶系列講座” 暨恒元物理學(xué)講座(第025期):通過動態(tài)陰影增長技術(shù)制備納米功能材料

發(fā)布時間:2014-05-26 瀏覽:

講座題目:物理學(xué)與信息技術(shù)學(xué)院“70周年校慶系列講座”暨恒元物理學(xué)講座(第025期):通過動態(tài)陰影增長技術(shù)制備納米功能材料

講座人:趙奕平 教授(美國佐治亞大學(xué))

主持人:張中月 教授

講座時間:16:30

講座日期:2014-5-26

地點(diǎn):長安校區(qū) 物理學(xué)與信息技術(shù)學(xué)院六層學(xué)術(shù)報告廳(致知樓3623-3624)

主辦單位:物理學(xué)與信息技術(shù)學(xué)院

講座內(nèi)容:Dynamic shadowing growth (DSG) is a simple nanofabrication technique based on physical vapor deposition with substrate manipulation and deposition source control. The geometric shadowing effect is the dominant growth mechanism. By programming the substrate rotation in the polar and/or azimuthal direction, nanorod arrays with different geometric shapes can be designed. In addition, by combining this directed substrate motion with a programmed deposition procedure, such as multilayer deposition or co-deposition, one can design complex and multifunctional heterogeneous or composite nanostructures. Based on the material and morphology, applications of nanorods designed by DSG have been extended to many different areas, from fundamental understanding of wetting phenomena to biomedical applications. In this talk, I will first discuss our recent efforts in designing functional materials by DSG, especially heteronanorod and composite nanostructure fabrications. Then I will highlight two applications: the design of optical chiral metamaterials and the utilization of active nanomotors. By combining two-dimensional colloid monolayers and DSG, we have recently demonstrated that various chiral plasmonic nanostructures can be fabricated with tunable response in visible to near-infrared wavelengths. By asymmetrically coating nanorod backbones with thin catalyst layers, self-propelled, autonomously moving nanomotors and motor systems can be assembled, mimicking naturally occurring biological motors. Finally, we have demonstrated that by incorporating active nanomotors intothrombolytic therapy for stroke,the effectiveness of the drug can be doubled due to the enhanced mass transport, which could significantly lower the dose of the drug administrated and reduce the risk of theintracranial hemorrhages.

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