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Multi-dimensional data transmission using inverse-designed silicon photonics and microcombs
Ki Youl Yang1,2, Chinmay Shirpurkar3, Alexander D White1
1E.L.Ginzton Laboratory, Stanford University, Stanford, CA, USA.
Nature Communications
|December 21, 2022
Summary
We demonstrate a new silicon photonic circuit that combines wavelength- and mode-multiplexing for faster data transfer. This integrated multi-dimensional communication achieves 1.12 Tb/s error-free transmission, boosting silicon chip performance.
Area of Science:
- Photonics and Optical Communications
- Materials Science and Engineering
Background:
- High-performance silicon chips face data transfer limitations.
- Advancements in optical communication, particularly wavelength-division multiplexing, are crucial for increasing speed.
- New data transfer dimensions are needed to meet growing bandwidth demands.
Purpose of the Study:
- To demonstrate an integrated multi-dimensional communication scheme combining wavelength- and mode-multiplexing on a silicon photonic circuit.
- To achieve high-speed, error-free data transmission for silicon nanophotonics.
- To develop foundry-compatible devices for scalable optical interconnects.
Main Methods:
- Utilized foundry-compatible photonic inverse design for device fabrication.
- Employed spectrally flattened microcombs for data generation.
- Implemented inverse-designed surface-normal couplers for chip-to-chip optical transmission.
Main Results:
- Achieved 1.12 Tb/s natively error-free data transmission in a silicon nanophotonic waveguide.
- Demonstrated multimode optical transmission between separate silicon chips using matched fiber.
- All fabricated devices adhere to standard silicon photonic foundry process design rules.
Conclusions:
- The integrated multi-dimensional communication scheme significantly enhances data transfer capabilities.
- The developed approach is scalable and offers a multiplicative improvement over current silicon photonic transmitters.
- This technology addresses the critical need for faster optical interconnects in high-performance computing.

