Alquliah Amged, Ha Jeongho, Ndao Abdoulaye
Opt Express. 2024 Mar 25;32(7):10979-10999. doi: 10.1364/OE.517313.
Mode-division multiplexing (MDM) in chip-scale photonics is paramount to sustain data capacity growth and reduce power consumption. However, its scalability hinges on developing efficient and dynamic modal switches. Existing active modal switches suffer from substantial static power consumption, large footprints, and narrow bandwidth. Here, we present, for the first time, to the best of our knowledge, a novel multiport, broadband, non-volatile, and programmable modal switch designed for on-chip MDM systems. Our design leverages the unique properties of integrating nanoscale phase-change materials (PCM) within a silicon photonic architecture. This enables independent manipulation of spatial modes, allowing for dynamic, non-volatile, and selective routing to six distinct output ports. Crucially, our switch outperforms current dynamic modal switches by offering non-volatile, energy-efficient multiport functionality and excels in performance metrics. Our switch exhibits exceptional broadband operating bandwidth exceeding 70 nm, with low loss (< 1 dB), and a high extinction ratio (> 10 dB). Our framework provides a step forward in chip-scale MDM, paving the way for future green and scalable data centers and high-performance computers.
芯片级光子学中的模式分割复用(MDM)对于维持数据容量增长和降低功耗至关重要。然而,其可扩展性取决于开发高效且动态的模式开关。现有的有源模式开关存在大量静态功耗、占用面积大以及带宽窄等问题。在此,据我们所知,我们首次展示了一种专为片上MDM系统设计的新型多端口、宽带、非易失性且可编程的模式开关。我们的设计利用了在硅光子架构中集成纳米级相变材料(PCM)的独特特性。这使得能够独立操纵空间模式,实现对六个不同输出端口的动态、非易失性和选择性路由。至关重要的是,我们的开关通过提供非易失性、节能的多端口功能,在性能指标方面优于当前的动态模式开关。我们的开关展现出超过70 nm的卓越宽带工作带宽,低损耗(< 1 dB)以及高消光比(> 10 dB)。我们的框架在芯片级MDM方面向前迈出了一步,为未来绿色且可扩展的数据中心和高性能计算机铺平了道路。