Abstract
Resonant modulators encode electrical data onto wavelength-multiplexed optical carriers. Today, silicon microring modulators are perceived as promising to implement such links; however, they provide limited bandwidth and need thermal stabilization systems. Here we present plasmonic micro-racetrack modulators as a potential successor of silicon microrings: they are equally compact and compatible with complementary-metal–oxide–semiconductor-level driving voltages, but offer electro-optical bandwidths of 176 GHz, a 28 times improved stability against operating temperature changes and no self-heating effects. The temperature-resistant organic electro-optic material enables operation at 85 °C device temperature. We show intensity-modulated transmission of up to 408 Gbps at 12.3 femtojoules per bit with a single resonant modulator. Plasmonic micro-racetrack modulators offer a solution to encode high data rates (for example, the 1.6 Tbps envisioned by next-generation communications links) at a small footprint, with low power consumption and marginal, if no, temperature control.
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CITATION STYLE
Eppenberger, M., Messner, A., Bitachon, B. I., Heni, W., Blatter, T., Habegger, P., … Leuthold, J. (2023). Resonant plasmonic micro-racetrack modulators with high bandwidth and high temperature tolerance. Nature Photonics, 17(4), 360–367. https://doi.org/10.1038/s41566-023-01161-9
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