Toward Topology-Optimized Foundry PDKs: A Seeded Design Framework for Multimode Interferometers
Jacob M. Hiesener, Archana Kaushalram, Joshua J. Wong, Robert P. Pesch, Stephen E. Ralph
Abstract
We present an end-to-end design methodology for multimode interferometer (MMI)-based photonic devices that combines parameter optimization (PO) on analytical models with seeded topology optimization (TO) to maximize performance while preserving foundry design-rule compliance. A PO seed device is further refined via seeded TO, accessing a larger design space than analytical or parameterized methods alone can reach. We validate this pipeline on a 1x2 splitter, a TE modal multiplexer, and a polarization splitter, fabricating and measuring the first two on a commercial foundry process. Seeded TO reduces the measured insertion loss of the 1x2 splitter from 0.20 to 0.14 dB and improves TE00 transmission of the modal multiplexer from -2.79 to -1.01 dB over O-band. Applying this pipeline to a commercial foundry process design kit (PDK)-provided 1x2 and 2x2 splitter improves simulated transmission and tightens the 2x2 splitting ratio from 0.524 to 0.506, along with improved fabrication robustness, offering a practical, foundry-validated route toward incorporating TO-designed components into commercial PDKs.
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