arXiv:2411.16698physics.opticscs.LG2024-11被引 6

用深度光子网络实现芯片级通用偏振处理,支持多种功能且快速优化。

Universal on-chip polarization handling with deep photonic networks

  • 通过级联马赫-曾德尔干涉仪,训练双偏振相位差实现通用偏振调控。
  • 三种器件均实现超20 dB消光比,120 nm带宽内平坦传输,性能业界领先。
  • 设计效率高,单设备优化不到1分钟,适合光通信与集成光计算应用。

我们提出一种新型深度光子网络设计范式,基于级联马赫-曾德尔干涉仪(MZI),实现芯片级通用偏振处理。通过软件定义的物理信息神经框架,对双偏振通道的干涉臂相位差进行调制,覆盖宽波段操作。三个概念验证器件包括偏振分束器、偏振无关功率分束器和任意偏振依赖分束器,均能实现用户指定的偏振-波长响应函数。所有器件性能通过转移矩阵计算优化,并经3D-FDTD仿真验证。各项指标均达业界领先水平:消光比超过20 dB,120 nm带宽内保持平坦传输。每个器件的优化时间均低于1分钟,凸显该设计范式的高效性。结果表明,该深度光子网络在偏振管理中具有高度灵活性与扩展性,为光通信、传感与计算等先进片上应用提供广阔前景。

原文摘要 · Abstract (English)

We propose a novel design paradigm for arbitrarily capable deep photonic networks of cascaded Mach-Zehnder Interferometers (MZIs) for on-chip universal polarization handling. Using a device architecture made of cascaded Mach-Zehnder interferometers, we modify and train the phase difference between interferometer arms for both polarizations through wide operation bandwidths. Three proof-of-concept polarization handling devices are illustrated using a software-defined, physics-informed neural framework, to achieve user-specified target device responses as functions of polarization and wavelength. These devices include a polarization splitter, a polarization-independent power splitter, and an arbitrary polarization-dependent splitter to illustrate the capabilities of the design framework. The performance for all three devices is optimized using transfer matrix calculations; and their final responses are verified through 3D-FDTD simulations. All devices demonstrate state-of-the-art performance metrics with over 20 dB extinction, and flat-top transmission bands through bandwidths of 120 nm. In addition to the functional diversity enabled, the optimization for each device is completed in under a minute, highlighting the computational efficiency of the design paradigm presented. These results demonstrate the versatility of the deep photonic network design ecosystem in polarization management, unveiling promising prospects for advanced on-chip applications in optical communications, sensing, and computing.

光子网络偏振控制芯片集成深度学习

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