多路复用
全息术
瓶颈
光学
光电子学
光子学
波分复用
材料科学
物理
色散(光学)
波前
频分复用
频率梳
千兆位
光通信
波长
计算全息
多模光纤
集成光学
红外线的
计算机科学
作者
Yongyao Yin,T Liu,Jingpu Lin,Qiang Jiang,Yongtian Wang,Xianwen Liu,Lingling Huang
摘要
Achieving high-density wavelength multiplexing is essential for expanding the capacity of optical information processing. However, traditional optical components lack sufficient dispersion control, hindering high-efficiency, low-crosstalk wavefront manipulation across densely spaced channels. Here, we overcome this bottleneck by introducing a double-layer cascaded metasurface architecture engineered via an end-to-end differentiable design framework. Through joint optimization, this cascaded design yields a 25-fold increase in multiplexing density over single-layer approaches, theoretically enabling 64-channel holographic multiplexing with a tight 4.3-nm spacing in the visible spectrum. Furthermore, we experimentally validate this architecture in the infrared band by utilizing a terahertz-spaced microresonator frequency comb as a multi-wavelength coherent source. This first-of-its-kind integration of differentiable cascaded metasurfaces with on-chip microresonator frequency combs provides a compact, highly efficient pathway for next-generation wavelength-division multiplexing, high-capacity data communications, and integrated photonic systems.
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