首页> 外文会议>Conference on Testing, Reliability, and Application of Micro- and Nano-Material Systems II; 20040315-20040317; San Diego,CA; US >Nanoscale non-destructive electric field probing in ferroelectrics, organic molecular films, and near-field optical nanodevices
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Nanoscale non-destructive electric field probing in ferroelectrics, organic molecular films, and near-field optical nanodevices

机译:铁电体,有机分子膜和近场光学纳米器件中的纳米级无损电场探测

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Inspecting and tuning electric fields on the nanometer scale offers a great potential in overcoming limitations inherent in assembling nanostructures. Both optical and electronic devices may be improved in performance provided that a quantitative knowledge on the strength and orientation of local (stray) fields is gained. Here we present nanoscale investigations of functional surfaces probing the surface potential and electronic properties of ferroelectric and ultra thin organic films. We developed methodologies that are able to non-invasively track the electric field both above and below interfaces, thus providing insight also into the sample. Hence, interface dipole formation and interface charging directly shows up in potential changes revealing the donor/acceptor characteristics of molecules, as well as the surface charge screening in ferroelectrics. Such inspections are possible using conventional scanning force microscopy operated in sophisticated modes measuring the electrostatic force or the inverse piezoelectric effect. Finally, electric fields are also probed in the optical regime using near-field optical methods. Examples are shown where the strength and frequency of surface plasmon resonances become tunable due to simple nanostructuring of metallic thin films.
机译:在纳米级检查和调节电场在克服组装纳米结构固有的局限性方面具有巨大潜力。只要获得有关局部(杂散)场的强度和方向的定量知识,光学和电子设备的性能都可以得到改善。在这里,我们介绍功能表面的纳米级研究,以探测铁电和超薄有机薄膜的表面电势和电子性能。我们开发了能够无创地跟踪界面上方和下方电场的方法,从而也可以深入了解样品。因此,界面偶极子的形成和界面电荷直接显示出电位变化,从而揭示了分子的供体/受体特性,以及铁电体中的表面电荷筛选。使用常规的扫描力显微镜可以进行这种检查,该显微镜以复杂的模式进行操作,以测量静电力或逆压电效应。最后,还使用近场光学方法在光学范围内探测电场。显示了一些示例,其中由于金属薄膜的简单纳米结构,表面等离子体激元共振的强度和频率变得可调。

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