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Probing the electrical switching of a memristive optical antenna by STEM EELS

机译:通过STEM EELS探测忆阻光学天线的电开关

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摘要

The scaling of active photonic devices to deep-submicron length scales has been hampered by the fundamental diffraction limit and the absence of materials with sufficiently strong electro-optic effects. Plasmonics is providing new opportunities to circumvent this challenge. Here we provide evidence for a solid-state electro-optical switching mechanism that can operate in the visible spectral range with an active volume of less than (5 nm)3 or ∼10−6 λ3, comparable to the size of the smallest electronic components. The switching mechanism relies on electrochemically displacing metal atoms inside the nanometre-scale gap to electrically connect two crossed metallic wires forming a cross-point junction. These junctions afford extreme light concentration and display singular optical behaviour upon formation of a conductive channel. The active tuning of plasmonic antennas attached to such junctions is analysed using a combination of electrical and optical measurements as well as electron energy loss spectroscopy in a scanning transmission electron microscope.
机译:基本的衍射极限和缺乏具有足够强电光效应的材料已阻碍了有源光子器件按比例缩放至深亚微米长度尺度。 Plasmonics正在提供新的机会来规避这一挑战。在这里,我们提供了一种固态光电开关机制的证据,该机制可以在可见光谱范围内以小于(5 nm) 3 或〜10 -6 < / sup>λ 3 ,相当于最小的电子组件的尺寸。切换机制依赖于电化学位移纳米级间隙内的金属原子,以电连接形成交叉点结的两条交叉的金属线。这些结在形成导电通道时会提供极高的光聚集度并显示出奇异的光学行为。使用电学和光学测量以及在扫描透射电子显微镜中的电子能量损失谱的组合,分析了连接到此类结的等离激元天线的有源调谐。

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