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
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.