论文标题
SOI上的异质整合ITO等离子马赫·齐汉德干涉量调节器
Heterogeneously Integrated ITO Plasmonic Mach-Zehnder Interferometric Modulator on SOI
论文作者
论文摘要
密集整合的主动光子学是下一代片网络的关键,以解决足迹和能源预算问题。但是,传统活性硅光电学中的弱点相互作用授权相当大的设备长度。理想的主动材料选择应利用高索引调制,同时易于集成到硅光子平台中。二锡氧化物(ITO)提供了此类功能,并且最近显示了有希望的调制能力。有趣的是,ITO的纳米薄统一指数调制协同结合了混合等离子体型中的高组索引与纳米级光学模式。在此设计范式之后,我们在这里演示了一个频谱宽带,f- ghz-fast-Zehnder干涉调制器,表现出高效的高效率,该效率由95个vum的微小VPL表示,基于杂物化的Iteo themics siliconics siliconics siloic siliconics symicable photifter heletos themice phote s seplosection vpl。此外,我们表明,该设备范式可以在红外C波段附近的整个电信中进行光谱宽带操作。这样的次波长短有效且快速调节器单一整合到硅平台中,为高密度光子电路打开了新的可能性,这对于光子神经网络的高互连密度或在GHz-fast-fast Optical phastical phase阵列中的应用至关重要。
Densely integrated active photonics is key for next generation on-chip networks for addressing both footprint and energy budget concerns. However, the weak light-matter interaction in traditional active Silicon optoelectronics mandates rather sizable device lengths. The ideal active material choice should avail high index modulation while being easily integrated into Silicon photonics platforms. Indium tin oxide (ITO) offers such functionalities and has shown promising modulation capacity recently. Interestingly, the nanometer-thin unity-strong index modulation of ITO synergistically combines the high group-index in hybrid plasmonic with nanoscale optical modes. Following this design paradigm, here, we demonstrate a spectrally broadband, GHz-fast Mach-Zehnder interferometric modulator, exhibiting a high efficiency signified by a miniscule VpL of 95 Vum, deploying an one-micrometer compact electrostatically tunable plasmonic phase-shifter, based on heterogeneously integrated ITO thin films into silicon photonics. Furthermore we show, that this device paradigm enables spectrally broadband operation across the entire telecommunication near infrared C-band. Such sub-wavelength short efficient and fast modulators monolithically integrated into Silicon platform open up new possibilities for high-density photonic circuitry, which is critical for high interconnect density of photonic neural networks or applications in GHz-fast optical phased-arrays, for example.