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finite element method (fem) based numerical simulations  (COMSOL Inc)

 
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    COMSOL Inc finite element method (fem) based numerical simulations
    Finite Element Method (Fem) Based Numerical Simulations, supplied by COMSOL Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/finite-element+method+(fem)+numerical+simulations/comsol+multiphysics/pmc10959403__sciadv__adk5440_sm-65-9-17
    Average 90 stars, based on 1 article reviews
    finite element method (fem) based numerical simulations - by Bioz Stars, 2026-10
    90/100 stars

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    other:

    Article Title: A Laterally Excited Bulk Acoustic Wave Resonator Based on LiNbO 3 with Arc-Shaped Electrodes
    Article Snippet: The numerical simulations were carried out by the two-dimensional finite-element method (FEM) using the COMSOL software.

    Article Title: A Toroidal‐Fano‐Resonant Metasurface with Optimal Cross‐Polarization Efficiency and Switchable Nonlinearity in the Near‐Infrared
    Article Snippet: DOI: 10.1002/adom.202101007 electromagnetic multipolar modes.. [4,5] Due to their high flexibility in light control, metasurfaces have been envisaged as a major pioneer of light-matter interaction advancement, spinning out into much paramount nanophotonics technologies such as metalenses,[6–10] polarization control,[11–13] active beam steering,[14,15] quantum light control,[16–18] and low-profile optical systems.. [19,20] So far, most of the reported plasmonic metasurface devices are optimized through electric and magnetic multipolar resonances.

    Article Title: Design, fabrication, and test of bi-functional metalenses for the spin-dependent OAM shift of optical vortices
    Article Snippet: The library of metaatoms was extrapolated by performing numerical simulations with Finite-Element Method (FEM) in the wavelength domain (COMSOL Multiphysics®).

    Article Title: Graphene Plasmon-Enhanced IR Biosensing for in Situ Detection of Aqueous-Phase Molecules with an Attenuated Total Reflection Mode.
    Article Snippet: Graphene plasmon has attracted extensive interest due to the unprecedented electromagnetic confinement, long propagation distance and tunable plasmonic frequency.. Successful applications of graphene plasmon as infrared sensors have been recently demonstrated, yet mainly focused on solid/solid and solid/gas interfaces analysis.. Herein, we for the first time propose a graphene plasmon enhanced infrared sensor based on attenuated total reflection configuration for in situ analysis of aqueous-phase molecules.

    Article Title: Enhanced sensitivity of dilute aqueous adrenaline solution with an asymmetric hexagonal ring structure in the terahertz frequencies
    Article Snippet: The numerical simulations were performed with a finite-element method (FEM) supplied by COMSOL Mutliphysics.

    Article Title: Dipole states and coherent interaction in surface-acoustic-wave coupled phononic resonators
    Article Snippet: The numerical simulations were performed using the Finite Element Method (FEM), through the Comsol Multiphysics software (V3.4).

    Dispersion:

    Article Title: Strain topological metamaterials and revealing hidden topology in higher-order coordinates.
    Article Snippet: .. Finite element method simulations Numerical dispersion curves are calculated via FEM using COMSOL Multiphysics software, which is presented in Fig. 3c. ..

    Software:

    Article Title: Strain topological metamaterials and revealing hidden topology in higher-order coordinates.
    Article Snippet: .. Finite element method simulations Numerical dispersion curves are calculated via FEM using COMSOL Multiphysics software, which is presented in Fig. 3c. ..

    Article Title: 3D visualization of microwave electric and magnetic fields by using a metasurface-based indicator
    Article Snippet: .. Numerical simulations were carried out using the finite element method (FEM)-based COMSOL Multiphysics software. ..



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    Example of FEM simulations of a metaunit ( P x = P y = 600 nm) made of silicon nanopillars ( L x = 150 nm, L y = 300 nm, and H = 850 nm, i.e., pillar #9 in Fig. ) over a silicon substrate. ( a ) Boundary conditions imposed to properly simulate the nanostructure. PBC periodic boundary conditions. PML perfectly matched layers. ( b – d ) Electric field under TE polarization in input impinging from the air side. Lateral cross-sections at y = 0 ( b ), x = 0 ( c ), and top-view cross-section at z = H /4 ( d ). Input wavelength λ = 1310 nm. Colors refer to the intensity of the electric field (a.u.).

    Journal: Scientific Reports

    Article Title: Dual-functional metalenses for the polarization-controlled generation of focalized vector beams in the telecom infrared

    doi: 10.1038/s41598-023-36865-z

    Figure Lengend Snippet: Example of FEM simulations of a metaunit ( P x = P y = 600 nm) made of silicon nanopillars ( L x = 150 nm, L y = 300 nm, and H = 850 nm, i.e., pillar #9 in Fig. ) over a silicon substrate. ( a ) Boundary conditions imposed to properly simulate the nanostructure. PBC periodic boundary conditions. PML perfectly matched layers. ( b – d ) Electric field under TE polarization in input impinging from the air side. Lateral cross-sections at y = 0 ( b ), x = 0 ( c ), and top-view cross-section at z = H /4 ( d ). Input wavelength λ = 1310 nm. Colors refer to the intensity of the electric field (a.u.).

    Article Snippet: We set up custom-made Finite-Element Method (FEM) numerical simulations in the wavelength domain (using COMSOL Multiphysics ® ) to find the best set of metaatoms satisfying the DFMLs requirements described above (Fig. ).

    Techniques: