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The proposed fiber is studied by the full vector finite element method with perfectly matched layers.
The finite-element method with perfectly matched absorbing layers boundary condition is used to investigate the guiding properties.
A full-vector finite-element method with perfectly matched boundary layer is used to characterize the properties of the S-PCF.
The transmission characteristics of the proposed PCF are investigated using a full-vector finite element method with perfectly matched layer (PML) absorbing boundary conditions.
The full vector finite element method with perfectly matched layer is used to investigate the non-linear properties of hollow core PCF effectively.
The APSS™ 2.3 software based on the finite difference method with perfectly matched boundary conditions is used to simulate the properties of the proposed microstructure optical fiber.
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Guiding properties are investigated using finite element method (FEM) with perfectly matched layer boundary condition.
The finite element method (FEM) with perfectly matched boundary layer (PML) is used to investigate the guiding properties.
The finite element method (FEM) with perfectly matched layer (PML) circular boundary is used to investigate the guiding property.
The validity of the proposed design is carried out by employing a 2-D finite difference frequency domain method (FDFD) with perfectly matched layers (PML).
Full vectorial finite element method (FEM) with perfectly matched layer (PML) circular boundary has been applied to investigate propagation characteristics of proposed structure, in which both core and cladding are microstructured.
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