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Researchers Report Numerical Simulations on Optimizing Conversion Efficiency of Nonlinear Optical Gain Modulation in Raman Amplifier

Sep 28, 2022

A research team from the Shanghai Institute of Optics and Fine Mechanics (SIOM) of the Chinese Academy of Sciences (CAS) developed numerical simulations on optimizing the optical conversion efficiency of nonlinear optical gain modulation (NOGM), and investigated varieties of parameters to find the best condition for obtaining Raman pulses with higher conversion efficiency. The results were published in Optics Express.  

In this study, researchers used a numerical model based on the generalized nonlinear Schrodinger equation (GNLSE) to simulate the pump and Raman pulse evolutions along the optical fiber through the NOGM process. The NOGM process was simulated by solving the GNLSE with the fourth-order Runge-Kutta method. A pulsed pump and a single frequency (SF) continuous-wave (CW) laser were coupled into a piece of Raman fiber.  

In the simulations, different parameters including Raman fiber length, seed laser power, pump pulse energy, group velocity dispersion, and pump pulse duration were developed to study how they influence the Raman conversion efficiency and de-chirped pulse duration. The results showed that the walk-off effect that existed in the optical fiber has a critical influence on the conversion efficiency. Only when the walk-off speed matches well with the Raman conversion speed can the NOGM process reaches the highest conversion efficiency.

The simulations offer a guide-line to generate femtosecond pulses with μJ-scale pulse energy at a flexible wavelength with more than 85% conversion efficiency by designing proper pump parameters.

Contact

WU Xiufeng

Shanghai Institute of Optics and Fine Mechanics

E-mail:

Numerical simulation of nonlinear optical gain modulation in a Raman fiber amplifier

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