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3D Simulator for Semiconductor Lasers and Optical Devices PICS3D

With the addition of Crosslight's FDFD, it is now possible to solve high-resonance structures accurately and significantly faster than FDTD, expanding the applications of the analysis.

<Main Features> ■ Suitable for the design and analysis of devices where the effects in the resonator direction are important. ■ Lasers including diffraction gratings such as DFB, DBR, and VCSEL can be calculated using mode coupling theory and multilayer film optical theory. <Diverse Physical Models and Functions> ■ Coupling coefficients of waveguides and gratings (first-order and second-order gratings). ■ Longitudinal carrier density distribution, optical gain, and light intensity for the main and side longitudinal modes. ■ Calculation of surface emission mode distribution for second-order grating DFB lasers. ■ Output and frequency variation for different longitudinal modes. ■ Side mode ratio, linewidth, product of linewidth and output, effective alpha, second harmonic distortion, surface emission output (second-order grating DFB). ■ Mode output spectra under different laser surfaces and arbitrary bias conditions. ■ Mode output spectra under different bias conditions and over time. ■ AM/FM small signal modulation response and FM/RIN noise spectrum under arbitrary bias conditions. ■ Second harmonic distortion spectrum. ■ For other functions and details, please download the catalog or contact us. ■ If you wish to request a trial version, please contact us using the information below.

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3D simulator of quantum dot devices

3D analysis tool for quantum dot devices

Modeling of quantum dot devices involves constructing and analyzing microscopic models and incorporating the results into macroscopic models. The microscopic models can consist of various rectangular or cylindrical three-dimensional quantum dots. The strain effect is also taken into account. The wurtzite structure of GaN substrates can be applied similarly to the zincblende structure. Examples include the band diagram in the macroscopic model, comparison of calculated PL results with experimental results, optical gain spectrum, spectrum without broadening, temperature dependence, gain spectra, and lasing behavior.

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