arXiv · 2007.12472
Optically tunable photoluminescence and upconversion lasing on a chip
Abstract
The ability to tune the wavelength of light emission on a silicon chip is important for scalable photonic networks, distributed photonic sensor networks and next generation computer architectures. Here we demonstrate light emission in a chip-scale optomechanical device, with wide tunablity provided by a combination of radiation pressure and photothermal effects. To achieve this, we develop an optically active double-disk optomechanical system through implantation of erbium ions. We observe frequency tuning of photoluminescence in the telecommunications band with a wavelength range of 520 pm, green upconversion lasing with a threshold of $340\pm 70 \; \mu$W, and optomechanical self-pulsing caused by the interplay of radiation pressure and thermal effects. These results provide a path towards widely-tunable micron-scale lasers for photonic networks.
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Christiaan J. Bekker, Christopher G. Baker, Warwick P. Bowen. 2020-07-24. Optically tunable photoluminescence and upconversion lasing on a chip. https://doi.org/10.1103/physrevapplied.15.034022
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