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- W2236697097 abstract "Photonic signal processing requires efficient on-chip light sources with higher modulation bandwidths. Today’s conventional fastest semiconductor diode lasers exhibit modulation speeds only on the order of a few tens of GHz due to gain compression effects and parasitic electrical capacitances. Here we theoretically show an electrically-driven carbon nanotube (CNT)-based laser utilizing strong light-matter-interaction via monolithic integration into Silicon photonic crystal nanobeam (PCNB) cavities. The laser is formed by single-walled CNTs inside a combo-cavity consisting of both a plasmonic metal-oxide-semiconductor hybrid mode embedded in the one dimensional PCNB cavity. The emission originates from interband recombinations of electrostatically-doped nanotubes depending on the tubes’ chirality towards matching the C-band. Our simulation results show that the laser operates at telecom frequencies resulting in a power output > 3 (100) µW and > 100 (1000)’s GHz modulation speed at 1 × (10 × ) threshold. Such monolithic integration schemes provide an alternative promising approach for light source in future photonic integrated circuits." @default.
- W2236697097 created "2016-06-24" @default.
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- W2236697097 date "2015-08-04" @default.
- W2236697097 modified "2023-09-27" @default.
- W2236697097 title "Electrically-driven carbon nanotube-based plasmonic laser on silicon" @default.
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- W2236697097 doi "https://doi.org/10.1364/ome.5.001910" @default.
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