Return
WDM-enabled multi-core parallel programmable photonic signal processor
DOI:10.1038/s41467-026-75557-w.png)
Abstract
En 中文
As a frontier in integrated photonics, 2D waveguide mesh-based programmable processors offer compact, reconfigurable platforms. However, conventional Mach–Zehnder interferometer (MZI)-based designs rely on wavelength-agnostic routing, which monopolizes the entire mesh for a single functionality at a time, leaving the wavelength domain untapped and bottlenecking parallel processing. Here, we demonstrate a wavelength-division multiplexing (WDM)-enabled multi-core parallel programmable photonic processor using a reconfigurable hexagonal mesh. Our architecture utilizes MZIs integrated with over-coupled microring resonators as wavelength-selective phase shifters. Exploiting sharp phase transitions, these units achieve 1 THz free spectral range and 4.3 mW/π tuning power. By synergistically integrating spatial and wavelength degrees of freedom, our processor allows a single mesh to host distinct network configurations simultaneously. This enables multi-threaded execution and enhanced functional density, demonstrated through flex-grid WDM, parallel optical computation, and microwave photonic dual-beamforming. This work establishes WDM-enabled processing as a promising route toward large-scale, highly parallel integrated photonic systems. Conventional Mach–Zehnder interferometer-based processors rely exclusively on wavelength-agnostic spatial routing. Here, the authors demonstrate a multi-core parallel programmable photonic processor enabling independent control of both phase and amplitude for specific wavelength channels.
Journal
IF:
15.7
Papers:
9.3W
Citations:
91.2W

