论文标题

集成在硅微孔谐振器上的高反应石墨烯光电探测器

High-responsivity graphene photodetectors integrated on silicon microring resonators

论文作者

Schuler, Simone, Muench, Jakob E., Ruocco, Alfonso, Balci, Osman, van Thourhout, Dries, Sorianello, Vito, Romagnoli, Marco, Watanabe, Kenji, Taniguchi, Takashi, Goykhman, Ilya, Ferrari, Andrea C., Mueller, Thomas

论文摘要

石墨烯集成光子学提供了比常规SI光子学的几个优点。单层石墨烯(SLG)可实现快速,宽带和节能的电光调节器,光学开关和光电探测器(GPD),并且与任何光学波导兼容。与常规PDS相比,基于SLG的光接收器的最后一个主要障碍在于GPD的响应性低 - 通过光学输入的电输出。在这里,我们通过将照片 - 热电GPD与SI微林共振器整合在一起来克服这一短缺。在关键的耦合下,我们沿Si WaveGuide获得了$ \ sim $ 6 $μ$ M SLG通道的$> $ 90%的光吸收。利用腔体增强的光效率相互作用,导致SLG中的运营商达到$ \ sim $ 400 k的输入功率$ \ sim $ 0.6兆瓦,我们得到了电压响应$ \ sim $ 90 v/w,证明了我们方法的可行性。我们的设备能够检测到高达20 GBIT/s的数据速率,接收器敏感性使其能够以10 $^{ - 9} $ bit-Error速率运行,并且与成熟的半导体技术相同。与传统的基于半导体的接收器相比,自然的电压而不是电流的自然产生消除了对透射率放大的需求,并减少了每位能量的成本和足迹。

Graphene integrated photonics provides several advantages over conventional Si photonics. Single layer graphene (SLG) enables fast, broadband, and energy-efficient electro-optic modulators, optical switches and photodetectors (GPDs), and is compatible with any optical waveguide. The last major barrier to SLG-based optical receivers lies in the low responsivity - electrical output per optical input - of GPDs compared to conventional PDs. Here we overcome this shortfall by integrating a photo-thermoelectric GPD with a Si microring resonator. Under critical coupling, we achieve $>$90% light absorption in a $\sim$6 $μ$m SLG channel along the Si waveguide. Exploiting the cavity-enhanced light-matter interaction, causing carriers in SLG to reach $\sim$400 K for an input power of $\sim$0.6 mW, we get a voltage responsivity $\sim$90 V/W, demonstrating the feasibility of our approach. Our device is capable of detecting data rates up to 20 Gbit/s, with a receiver sensitivity enabling it to operate at a 10$^{-9}$ bit-error rate, on par with mature semiconductor technology. The natural generation of a voltage rather than a current, removes the need for transimpedance amplification, with a reduction of the energy-per-bit cost and foot-print, when compared to a traditional semiconductor-based receiver.

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