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Ilyes Betka

Publications and source records attributed to Ilyes Betka.

2 recordsLinked to original sources

Nonlinear optical refractive index measurements of pure water via Z-scan technique at 800 nm

The determination of the nonlinear optical coefficient \( n_2 \) of pure water is of great interest for applications such as imaging biological systems, performing femtosecond laser surgery, and underwater ablation. Traditionally, probing third-order nonlinearity while eliminating the thermo-optic effect requires high pulse energy and low repetition rate laser sources. In this article, a low-cost, simple, and versatile third-order nonlinear characterization technique for the Z-scan closed-aperture mode has been developed to determine the nonlinear refractive index of pure water at 800 nm, with a pump duration of 140 fs and a repetition rate of 80 MHz. Experimental results reveal an \( n_2 \) value of \( (8 \pm 1.4) \times 10^{-20} \) m\(^2\)/W. The influence of higher-order nonlinearities such as \( χ^5 \) was assessed, showing no significant contribution within the examined intensity range. This work paves the way for the use of low-power and high-repetition-rate systems for characterizing third-order nonlinear optical materials.

physics.optics

Broadband THz emission of long pulses from photomixing process with optical chirped pulses

Terahertz (THz) generation via photomixing on photoconductive antenna using twin delayed chirped pulses provides a long THz pulse with a narrow bandwidth. To generate a long pulse with broad bandwidth, we propose a new method that combines two long optical pulses with opposite chirps. The pulses exhibit temporal distributions of their instantaneous frequencies with opposite slopes. As a result, interaction between the beat frequency evolving over time and a photoconductor produces a broad THz spectrum with temporal variations. In our experimental setup, we generate a 12 ps-long pulse with a 1 THz bandwidth spectrum, featuring a frequency ramp of 90 GHz/ps, resembling a chirped THz pulse. This approach signifies a major advancement toward integrating photomixer technology, particularly in THz ranging applications.

physics.optics