论文标题

基于ITO的基于ITO的微型方法,用于可逆的相变材料的多阶段切换:朝着超过二进制重新配置的集成光子学的微型化

ITO-Based Microheaters for Reversible Multi-Stage Switching of Phase-Change Materials: Towards Miniaturized Beyond-Binary Reconfigurable Integrated Photonics

论文作者

Taghinejad, Hossein, Abdollahramezani, Sajjad, Eftekhar, Ali A., Fan, Tianren, Hosseinnia, Amir H., Hemmatyar, Omid, Dorche, Ali Eshaghian, Gallmon, Alexander, Adibi, Ali

论文摘要

诱导巨大的折射率变化是可重新配置的光子结构的圣杯,这个目标长期以来一直是发现新的光学材料平台的推动力。最近,基于GE-SB-TE(GST)基于GE-SB-TE(GST)的相位变化材料(PCMS)之间的前所未有的大型折射率对比,引起了对可重新配置综合纳米光子学的极大关注。在这里,我们介绍了一个微调平台,该平台采用光学透明和导电性依赖性二键蛋白氧化物(ITO)桥梁,用于在晶体和无定形状态之间的GST相的快速和可逆的电气切换。通过适当地施加到ITO微调器的电脉冲的适当分配,我们表明我们的平台允许将几乎任何中间晶体状态注册到集成在设计的微型盐的顶部的GST膜中。更重要的是,我们证明了无定形状态和结晶状态之间GST相的完全可逆性。为了显示使用此混合GST/ITO平台进行微型集成的纳米光子结构的可行性,我们将设计的微型手动器集成到马赫Zhhnder干涉仪的臂中,以与现有的集成光子架构相比,将电气重新配置的光学相位变速器与较小的电气尺度相结合。我们表明,使用可能小于单个波长的结构,可以在多个中间状态下逐渐移动光学信号的相位。我们认为,我们的研究表明,在混合PCM-光谱设备中,使用二元重新配置的二元重新配置,形成了一类新的小型小型重新配置的纳米光子学。

Inducing a large refractive-index change is the holy grail of reconfigurable photonic structures, a goal that has long been the driving force behind the discovery of new optical material platforms. Recently, the unprecedentedly large refractive-index contrast between the amorphous and crystalline states of Ge-Sb-Te (GST)-based phase-change materials (PCMs) has attracted tremendous attention for reconfigurable integrated nanophotonics. Here, we introduce a microheater platform that employs optically transparent and electrically conductive indium-tin-oxide (ITO) bridges for the fast and reversible electrical switching of the GST phase between crystalline and amorphous states. By the proper assignment of electrical pulses applied to the ITO microheater, we show that our platform allows for the registration of virtually any intermediate crystalline state into the GST film integrated on the top of the designed microheaters. More importantly, we demonstrate the full reversibility of the GST phase between amorphous and crystalline states. To show the feasibility of using this hybrid GST/ITO platform for miniaturized integrated nanophotonic structures, we integrate our designed microheaters into the arms of a Mach-Zehnder interferometer to realize electrically reconfigurable optical phase shifters with orders of magnitude smaller footprints compared to existing integrated photonic architectures. We show that the phase of optical signals can be gradually shifted in multiple intermediate states using a structure that can potentially be smaller than a single wavelength. We believe that our study showcases the possibility of forming a whole new class of miniaturized reconfigurable integrated nanophotonics using beyond-binary reconfiguration of optical functionalities in hybrid PCM-photonic devices.

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