All-Optical Quasi-Phase Matching in Extreme Nonlinear Optics

2007 ◽  
Vol 18 (12) ◽  
pp. 32
Author(s):  
Amy L. Lytle ◽  
Xiaoshi Zhang ◽  
Oren Cohen ◽  
Margaret M. Murnane ◽  
Henry C. Kapteyn
2011 ◽  
Vol 9 (4) ◽  
pp. 041902-41905 ◽  
Author(s):  
谢俊 Jun Xie ◽  
陈玉萍 Yuping Chen ◽  
陆闻杰 Wenjie Lu ◽  
陈险峰 Xianfeng Chen

2016 ◽  
Vol 24 (14) ◽  
pp. 15940 ◽  
Author(s):  
C. R. Phillips ◽  
B. W. Mayer ◽  
L. Gallmann ◽  
U. Keller

1998 ◽  
Author(s):  
M.M. Fejer ◽  
M.A. Arbore ◽  
G. Imeshev ◽  
A. Galvanauskan ◽  
D. Harter

2022 ◽  
Author(s):  
Edgars Nitiss ◽  
Jianqi Hu ◽  
Anton Stroganov ◽  
Camille-Sophie Brès

AbstractQuasi-phase-matching has long been a widely used approach in nonlinear photonics, enabling efficient parametric frequency conversions such as second-harmonic generation. However, in silicon photonics the task remains challenging, as materials best suited for photonic integration lack second-order susceptibility (χ(2)), and means for achieving momentum conservation are limited. Here we present optically reconfigurable quasi-phase-matching in large-radius silicon nitride microresonators, resulting in up to 12.5-mW on-chip second-harmonic generated power and a conversion efficiency of 47.6% W−1. Most importantly, we show that such all-optical poling can occur unconstrained from intermodal phase-matching, leading to broadly tunable second-harmonic generation. We confirm the phenomenon by two-photon imaging of the inscribed χ(2) grating structures within the microresonators as well as by in situ tracking of both the pump and second-harmonic mode resonances during all-optical poling. These results unambiguously establish that the photogalvanic effect, responsible for all-optical poling, can overcome phase mismatch constraints, even in resonant systems.


Author(s):  
Oren Cohen ◽  
Amy L. Lytle ◽  
Tenio Popmintchev ◽  
Henry C. Kapteyn ◽  
Margaret M. Murnane

Sign in / Sign up

Export Citation Format

Share Document