Enhanced optical nonlinearities in epitaxial quantum dots lasers on silicon for future photonic integrated systems
Jianan Duan, Weng W. Chow, Bozhang Dong, Heming Huang, Songtao Liu,, Justin C. Norman, John E. Bowers, and Frederic Grillot

TL;DR
This paper demonstrates enhanced four-wave mixing in epitaxial quantum dot lasers on silicon, enabling self-mode-locking and broad nonlinear optical applications for integrated photonics.
Contribution
It provides the first comprehensive laser-based investigation of FWM nonlinearities in quantum dot lasers on silicon, achieving near-theoretical conversion efficiencies and demonstrating self-mode-locking.
Findings
Achieved FWM conversion efficiency close to theoretical limit.
Demonstrated self-mode-locking with sub-ps pulses.
Identified p-doping as a key factor in nonlinear performance.
Abstract
Four-wave mixing (FWM) is an important nonlinear optical phenomenon that underlines many of the discoveries and device applications since the laser was invented. Examples include parametric amplification, mode-locked pulses and frequency combs, and in the quantum optics regime, entangled-photon generation, squeezed-state production and optical transduction from the visible to infrared wavelengths. For quantum dot systems, the basic understanding of FWM is limited by the conventional investigation method, which concentrates on the FWM susceptibility measured with optical amplifiers. This paper addresses this weakness by performing laser experiments to account for all optical nonlinearities contributing to the FWM signal. Meanwhile, we gain valuable insight into the intricate interplay among optical nonlinearities. Using quantum dot lasers directly grown on silicon, we achieved FWM…
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Taxonomy
TopicsPhotonic and Optical Devices · Advanced Fiber Laser Technologies · Optical Network Technologies
