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February 2, 2026Laser & Photonics Review0 citationsOpen Access

Monolithically Integrated Silicon Photonic Local Oscillator‐Free Homodyne Receiver

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JLJingchi LiHZHua ZhongYZYixiao Zhu

Key Points

  • To develop a silicon photonic receiver that eliminates the need for local oscillators in optical detection systems.
  • Introduced an integrated local oscillator-free homodyne detection scheme using a micro-ring resonator.
  • Fabricated a monolithically integrated silicon photonic receiver for 600-Gb/s signal transmission.
  • Validated multichannel operation across the C band for dense wavelength-division multiplexing compatibility.
  • Achieved a net transmission rate of 480-Gb/s per polarization over 80-km fiber.
  • Demonstrated an 86% improvement over previous self-coherent detection records.
  • Matched the performance of state-of-the-art integrated coherent systems.

Abstract

ABSTRACT The exponential growth of global data traffic driven by artificial intelligence and cloud computing necessitates cost‐efficient, ultrahigh‐capacity optical interconnects. Integrated photonic interconnect offers a promising solution but faces critical bottlenecks: integrated coherent receivers require local oscillator (LO) lasers, resulting in material incompatibility and cost challenges for monolithic integration, while integrated self‐coherent schemes fundamentally suffer from nonlinear distortions induced by the nonlinear beating process between signal inputs during optical‐to‐electrical mapping, which limits both capacity and spectral efficiency. Here, we present an integrated LO‐free homodyne detection scheme with superior linearity enabled by a micro‐ring filter. The Si 3 N 4 micro‐ring resonator effectively filters out the optical carrier for homodyne detection, saving the LO in coherent receivers and eliminating the second‐order nonlinear distortions commonly encountered in self‐coherent schemes. Our fabricated monolithically integrated silicon photonic receiver enables single‐polarization 600‐Gb/s 16‐ary quadrature amplitude modulated orthogonal frequency division multiplexing signal transmission over an 80‐km fiber, achieving a net 480‐Gb/s per polarization. This represents an 86% improvement over previous integrated self‐coherent detection records and matches that of state‐of‐the‐art integrated coherent systems. Multichannel validation across the C band further confirms the dense wavelength‐division multiplexing compatibility. This work provides an Optical communication, dense wavelength division multiplexing, direct detection, integrated photonic interconnects, silicon photonicsscalable and cost‐effective solution essential for future 1.6 Tb/s per lane optical interconnects.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6980fecbc1c9540dea81121chttps://doi.org/10.1002/lpor.202502793
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