Enabling the use of Raman lasers for spectroscopy: continuous tunability, narrow linewidth and efficient cascading in diamond

Author(s):  
Daniel T. Echarri ◽  
Katerina Chrysalidis ◽  
Valentin N. Fedosseev ◽  
Bruce A. Marsh ◽  
Richard P. Mildren ◽  
...  
2020 ◽  
Vol 28 (25) ◽  
pp. 38304
Author(s):  
Shuisen Jiang ◽  
Changlei Guo ◽  
Hongyan Fu ◽  
Kaijun Che ◽  
Huiying Xu ◽  
...  

Author(s):  
Eduardo Granados ◽  
Daniel T. Echarri ◽  
Katerina Chrysalidis ◽  
Valentin N. Fedosseev ◽  
Vaila A. Leask ◽  
...  

2020 ◽  
Vol 17 ◽  
pp. 103073 ◽  
Author(s):  
Quan Sheng ◽  
Hanchao Ma ◽  
Ran Li ◽  
Meng Wang ◽  
Wei Shi ◽  
...  

2017 ◽  
Author(s):  
O. Lux ◽  
R. J. Williams ◽  
S. Sarang ◽  
H. Jasbeer ◽  
A. McKay ◽  
...  

2020 ◽  
Vol 13 (6) ◽  
pp. 1-8
Author(s):  
LIU Ye ◽  
◽  
LIU Yu ◽  
XIAO Hui-dong ◽  
LI Hong-ling ◽  
...  

Crystals ◽  
2020 ◽  
Vol 11 (1) ◽  
pp. 19
Author(s):  
Sergei N. Smetanin ◽  
Michal Jelínek ◽  
Dmitry P. Tereshchenko ◽  
Mikhail N. Ershkov ◽  
Václav Kubeček

We propose and study the conditions of zero-dispersion phase matching for parametric Raman interactions in birefringent crystals differing by anisotropy of zero-dispersion wavelength and allowing for the spectral tuning of the zero-dispersion phase-matching condition. We choose a highly birefringent crystal of calcite having a wide zero-dispersion anisotropy range for the demonstration of new effects of laser pulse shortening in parametric Raman lasers with spectrally tunable zero-dispersion phase matching. We demonstrate the anti-Stokes (1168 nm) and multi-Stokes (1629 nm) picosecond pulse shortening and self-separation of single 80-ps ultra-short pulse from the zero-dispersion phase-matched parametric Raman lasers that are based on the calcite crystal without using any electro-optical device.


2021 ◽  
Vol 17 (9) ◽  
pp. 518-522
Author(s):  
Yong Cheng ◽  
Chaoyong Tan ◽  
Xu Liu ◽  
Xia Chen ◽  
Mengzhen Zhu ◽  
...  
Keyword(s):  

2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Matthew W. Puckett ◽  
Kaikai Liu ◽  
Nitesh Chauhan ◽  
Qiancheng Zhao ◽  
Naijun Jin ◽  
...  

AbstractHigh quality-factor (Q) optical resonators are a key component for ultra-narrow linewidth lasers, frequency stabilization, precision spectroscopy and quantum applications. Integration in a photonic waveguide platform is key to reducing cost, size, power and sensitivity to environmental disturbances. However, to date, the Q of all-waveguide resonators has been relegated to below 260 Million. Here, we report a Si3N4 resonator with 422 Million intrinsic and 3.4 Billion absorption-limited Qs. The resonator has 453 kHz intrinsic, 906 kHz loaded, and 57 kHz absorption-limited linewidths and the corresponding 0.060 dB m−1 loss is the lowest reported to date for waveguides with deposited oxide upper cladding. These results are achieved through a careful reduction of scattering and absorption losses that we simulate, quantify and correlate to measurements. This advancement in waveguide resonator technology paves the way to all-waveguide Billion Q cavities for applications including nonlinear optics, atomic clocks, quantum photonics and high-capacity fiber communications.


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