Sub-picosecond all-optical switching in a hybrid VO2:silicon waveguide at 1550 nm
Kent A. Hallman, Kevin J. Miller, Andrey Baydin, Sharon M. Weiss and, Richard F. Haglund

TL;DR
This paper demonstrates sub-picosecond all-optical switching in a hybrid VO2:silicon waveguide at 1550 nm, showing potential for ultrafast integrated photonic devices.
Contribution
It presents the first on-chip demonstration of ultrafast VO2-based optical switching with sub-picosecond response times in a silicon photonic platform.
Findings
Achieved reversible, ultrafast phase transition in VO2 integrated in silicon waveguides.
Switching energy threshold around 600 femtojoules per switch.
Sub-picosecond switching times demonstrated in a practical integrated device.
Abstract
Achieving ultrafast all-optical switching in a silicon waveguide geometry is a key milestone on the way to an integrated platform capable of handling the increasing demands for higher speed and higher capacity for information transfer. Given the weak electro-optic and thermo-optic effects in silicon, there has been intense interest in hybrid structures in which that switching could be accomplished by integrating another material into the waveguide, including the phase-changing material, vanadium dioxide (VO2). It has long been known that the phase transition in VO2 can be triggered by ultrafast laser pulses, and that pump-laser fluence is a critical parameter governing the recovery time of thin films irradiated by femtosecond laser pulses near 800 nm. However, thin-film experiments are not a priori reliable guides to using VO2 for all-optical switching in on-chip silicon photonics…
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Taxonomy
TopicsTransition Metal Oxide Nanomaterials · Neural Networks and Reservoir Computing · Photonic and Optical Devices
