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利用 GeSbTe 桥接的金属-电介质二聚体中从偶极子到电荷转移等离子体模式的转变进行光开关。

Optical Switching Using Transition from Dipolar to Charge Transfer Plasmon Modes in GeSbTe Bridged Metallodielectric Dimers.

机构信息

Department of Electrical and Computer Engineering, Florida International University, 10555 W Flagler St, Miami, Florida 33174, United States.

出版信息

Sci Rep. 2017 Feb 16;7:42807. doi: 10.1038/srep42807.

Abstract

Capacitive coupling and direct shuttling of charges in nanoscale plasmonic components across a dielectric spacer and through a conductive junction lead to excitation of significantly different dipolar and charge transfer plasmon (CTP) resonances, respectively. Here, we demonstrate the excitation of dipolar and CTP resonant modes in metallic nanodimers bridged by phase-change material (PCM) sections, material and electrical characteristics of which can be controlled by external stimuli. Ultrafast switching (in the range of a few nanoseconds) between amorphous and crystalline phases of the PCM section (here GeSbTe (GST)) allows for designing a tunable plasmonic switch for optical communication applications with significant modulation depth (up to 88%). Judiciously selecting the geometrical parameters and taking advantage of the electrical properties of the amorphous phase of the GST section we adjusted the extinction peak of the dipolar mode at the telecommunication band (λ1.55 μm), which is considered as the OFF state. Changing the GST phase to crystalline via optical heating allows for direct transfer of charges through the junction between nanodisks and formation of a distinct CTP peak at longer wavelengths (λ1.85 μm) far from the telecommunication wavelength, which constitutes the ON state.

摘要

在介电间隔层和导电结中,纳米级等离子体组件中的电容耦合和电荷直接输运分别导致显著不同的偶极子和电荷转移等离子体(CTP)共振的激发。在这里,我们展示了由相变材料(PCM)部分桥接的金属纳米二聚体中偶极子和 CTP 共振模式的激发,其材料和电学特性可以通过外部刺激来控制。PCM 部分(此处为 GeSbTe(GST))的非晶相和晶相之间的超快切换(在几纳秒范围内)允许设计用于光通信应用的可调谐等离子体开关,具有显著的调制深度(高达 88%)。通过明智地选择几何参数并利用 GST 部分非晶相的电学特性,我们调整了偶极子模式在电信波段(λ1.55μm)的消光峰,这被认为是关闭状态。通过光学加热将 GST 相变为晶相,可以通过纳米盘之间的结直接转移电荷,并在远离电信波长的较长波长(λ1.85μm)处形成明显的 CTP 峰,这构成了开启状态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e5b/5311934/97b29b5f2072/srep42807-f1.jpg

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