研究目的
To investigate the nonlinear optical properties of colloidal suspensions of gold nanoparticles synthesized using hydroalcoholic extract and three different compounds of the plant Bacopa procumbens, and to demonstrate the formation of self-collimated beams (SCBs) and their use in controlling a weaker probe beam of a different wavelength.
研究成果
The biosynthesized colloidal suspensions of gold nanoparticles exhibit a high nonlinear nonlocal optical response at relatively low input powers, with a very fast response time. These characteristics make them suitable candidates for photonic applications, including the generation of self-collimated beams and the control of a probe beam of a different wavelength.
研究不足
The nonlinear optical response is mainly attributed to thermal effects, and the response time of the material is less than 0.07 s. The study is limited to the characterization of the nonlinear optical properties and the demonstration of SCBs and probe beam control.
1:Experimental Design and Method Selection:
The Z-scan technique was used to analyze the nonlinear refractive index and nonlinear absorption of the samples. A CW laser at 532 nm was focused onto the sample to induce nonlinear effects.
2:Sample Selection and Data Sources:
Four samples of colloidal suspensions of gold nanoparticles were synthesized using hydroalcoholic extract and three different compounds of Bacopa procumbens. The samples were characterized by UV-Vis spectroscopy and TEM.
3:List of Experimental Equipment and Materials:
A Thermo spectrophotometer (Evolution 600) for UV-Vis spectroscopy, a High Resolution Transmission Electron Microscope (HRTEM, JEM-ARM200CF) for TEM analysis, and a CW laser at 532 nm for the Z-scan technique.
4:Experimental Procedures and Operational Workflow:
The Z-scan technique was performed with the laser beam focused onto the sample by a convergent lens. The normalized transmittance was measured as a function of the sample position along the beam axis to determine changes in the nonlinear refractive index.
5:Data Analysis Methods:
The nonlinear phase change was modeled to fit the experimental data, and the nonlinear change in the refractive index was calculated.
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