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The numerical approach of a three-dimensional (3-D) model of an optical measurement system was developed. The optical system has a cylindrical shape with a curved surface along the axis. The optical model is composed of a spherical lens and flat field mirrors. The propagation of the light beam is analyzed by using the ray tracing technique. The advantage of the numerical model is its efficiency and the applicability for designing and analyzing an optical system.
The optical design of a waveguide-type laser direct-writing device was conducted using Zemax software. The optical design conditions, including the incident laser light wavelength, incident laser light angle, numerical aperture, waveguide diameter, and material type, were designed.
A method to simulate the optical performance of a holmium-doped yttrium aluminum garnet (Ho:YAG) laser was developed. In the simulation, the reflected light was spread out over a large area and the light intensity was averaged for each point on the image sensor. The simulation was performed by using Zemax software. The simulation method is applicable to a laser with a cone or a circular divergence beam. When the radiation is circular, the simulation is performed as follows: (1) the incident radiation is divided into 6 beams, (2) the 6 beams are reflected by using the Fresnel equation, and (3) the reflected light is divided into 12 beams on the image sensor. The simulation results agreed well with measured results.
This paper presents a study of the design of an 8-layer super-thin optical window for the multi-layer chromatographic systems. The multi-layer chromatographic (MLC) technique has many advantages in the analysis of samples. However, a disadvantage of the MLC technique is its poor heat-transfer capacity, which limits the separation, detection, and detection sensitivity. Super-thin optical windows are used in the MLC technique to overcome these problems. This paper presents a study of the design of an 8-layer super-thin optical window for the multi-layer chromatographic systems. The main parameters of the optical window for analysis were determined. Optical simulation and analysis were performed. The results of the analysis of the optical window were presented. The design method of the super-thin optical window is important to the improvement of the multi-layer chromatographic techniques and the analysis of biological samples.
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