首页> 外文会议>Conference on Nonlinear Optics and Applications IX >All-optically tunable EIT-like dielectric metasurfaces hybridized with thin-phase change material layers
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All-optically tunable EIT-like dielectric metasurfaces hybridized with thin-phase change material layers

机译:与薄相变材料层杂交的全光学调谐EIT样电介质元件

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Electromagnetically induced transparency (EIT), a pump-induced narrow transparency window within the absorption region of a probe, had offered new perspectives in slow-light control in atomic physics. For applications in nanophotonics, the implementation on chip-scaled devices has later been obtained by mimicking this effect by metallic metamaterials. High losses in visible and near infrared range of metal-based metamaterialls have recently opened a new field of all-dielectric metamaterials; a proper configuration of high refractive index dielectric nanoresonators can mimick this effect without losses to get high Q, slow-light response. The next step would be the ability to tune their optical response, and in this work we investigate thin layers of phase change materials (PCM) for all-optical control of EIT-like all-dielectric metamaterials. PCM can be nonvolatively and reversibly switched between two stable phases that differ in optical properties by applying a visible laser pulse. The device is based on Si nanoresonators covered by a thin layer of PCM GeTe; optical and transient thermal simulations have been done to find and optimize the fabrication parameters and switching parameters such as the intensity and duration of the pulse. We have found that the EIT-like response can be switched on and off by applying the 532nm laser pulse to change the phase of the upper GeTe layer. We strongly believe that such approach could open new perspectives in all-optically controlled slow-light metamaterials.
机译:电磁诱导的透明度(EIT)是探针的吸收区域内的泵诱导的窄透明度窗口,在原子物理学中的慢光控制中提供了新的视角。对于纳米光电学的应用,通过模拟金属超材料模仿这种效果,可以获得芯片缩放器件上的实施。最近打开了全介电超材料的新领域适当的高折射率介电纳米管构造可以在没有损失的情况下模仿这种效果,以获得高Q,慢光响应。下一步将是调整光学响应的​​能力,并且在这项工作中,我们研究了用于EIT样全电介质超材料的全光控制的相变材料(PCM)的薄层。通过施加可见激光脉冲,可以非偏振并且可在两个稳定相之间的稳定相之间可逆地切换。该器件基于由薄的PCM Gete覆盖的Si纳米管;已经完成了光学和瞬态热模拟以查找和优化制造参数和切换参数,例如脉冲的强度和持续时间。我们已经发现,可以通过施加532nm激光脉冲来改变上gete层的相位来打开和关闭EIT样响应。我们强烈认为,这种方法可以在全光学控制的慢光超级材料中开辟新的视角。

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