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3d finite-difference time-domain (fdtd) simulations  (ANSYS inc)

 
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    ANSYS inc 3d finite-difference time-domain (fdtd) simulations
    3d Finite Difference Time Domain (Fdtd) Simulations, supplied by ANSYS 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/3d+finite-difference+time-domain+(fdtd)+simulation/finite+difference+time+domain++fdtd++simulations/pmc10885778__ph3c01480_si_001-37-1-12
    Average 90 stars, based on 1 article reviews
    3d finite-difference time-domain (fdtd) simulations - by Bioz Stars, 2026-09
    90/100 stars

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    Article Title: Red-Shifted Excitation and Two-Photon Pumping of Biointegrated GaInP/AlGaInP Quantum Well Microlasers
    Article Snippet: Modelling was performed with 3D finite-difference time-domain (FDTD) simulation (Ansys Lumerical), using a 2.6 μm (x, y) by 1 μm (z) mesh with a spatial resolution of 0.006 μm, and perfectly matched layer (PML) boundary conditions.

    Article Title: A cavity induced mode hybridization plasmonic sensor for portable detection of exosomes.
    Article Snippet: Exosomes have been considered as promising biomarkers for cancer diagnosis due to their abundant information from originating cells.. However, sensitive and reliable detection of exosomes is still facing technically challenges due to the lack of a sensing platform with high sensitivity and reproducibility.. To address the challenges, here we propose a portable surface plasmon resonance (SPR) sensing of exosomes with a three-layer Au mirror/SiO2 spacer/Au nanohole sensor, fabricated by an economical polystyrene nanosphere self-assembly method.

    Article Title: Design and resonator-assisted characterization of high-performance lithium niobate waveguide crossings
    Article Snippet: We numerically simulate the MMI structure using full 3D finite-difference time-domain (FDTD) simulation (Ansys Lumerical).

    Article Title: Polarization-Controlled Transmissive Plasmonic Color Filter Using a Dimer-Aperture Array.
    Article Snippet: The dimer aperture patterns were then etched using an Oxford Instruments Plasmalab RIE 80 plus, (CH3F gas) for the SiO2 layers and a Plasmalab System100 ICP 180 (mixed Cl2/Ar gas) to dry-etch the Al. Simulation: A 3D finite difference time domain (FDTD) method (ANSYS, Lumerical FDTD) was used to simulate the transmission spectrum of the monomer, dimer, and trimer arrays.

    Article Title: Spatially Selective Imaging in Color: What You See is What You Want.
    Article Snippet: Electromagnetic Wave Simulation: Pixel A and the Fresnel lenses were simulated using Ansys Lumerical 2024 Finite-Difference Time-Domain (FDTD) 3D Electromagnetic Solver.

    Article Title: Novel Strategy towards Efficiency Enhancement of Flexible Optoelectronic Devices with Engineered M13 Bacteriophage
    Article Snippet: Employing the threedimensional finite-difference time-domain method (3D FDTD) simulation with ANSYS Lumerical FDTD software, as shown in Figure 2b, Au NPs with a 10 nm diameter were modeled.

    Article Title: Phase and amplitude gradient waveguide coupled metasurfaces.
    Article Snippet: Numerical simulations were carried out using a commercially available 3D finite-difference time-domain (FDTD) solver (Ansys Lumerical FDTD simulation suite).

    Article Title: Constructing a Ring-like Self-Aggregation SERS Sensor with the Coffee Ring Effect for Ultrasensitive Detection and Photocatalytic Degradation of the Herbicides Paraquat and Diquat.
    Article Snippet: LSPR field’s distribution of Ag nanoparticles was carried out through 3D finite difference time domain simulation (ANSYS lumeric FDTD solution).



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    Topological photonic nanorod lattice. (a) Two dimerized nanorod lattices with equal unit cells are overlapped on one edge to create a symmetric topological cavity. As indicated by the coloring, the symmetricity implies a switching of the two sites within the unit cell. (b–d) <t>3D-FDTD</t> simulations of this structure. (b) Spectrum containing a pronounced photonic band gap spanning 150 nm and the cavity mode centered in it. (c) Mode profile corresponding to the interface mode overlaid with the outline of the device. (d) Band structure simulation verifying the existence of a fully open photonic band gap.
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    ANSYS inc finite-difference time-domain (fdtd) method as implemented in the ansys lumerical 3d electromagnetic simulator software package
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    Topological photonic nanorod lattice. (a) Two dimerized nanorod lattices with equal unit cells are overlapped on one edge to create a symmetric topological cavity. As indicated by the coloring, the symmetricity implies a switching of the two sites within the unit cell. (b–d) <t>3D-FDTD</t> simulations of this structure. (b) Spectrum containing a pronounced photonic band gap spanning 150 nm and the cavity mode centered in it. (c) Mode profile corresponding to the interface mode overlaid with the outline of the device. (d) Band structure simulation verifying the existence of a fully open photonic band gap.
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    Lumerical Solutions three-dimensional (3d) finite-difference time-domain (fdtd) simulation software
    Topological photonic nanorod lattice. (a) Two dimerized nanorod lattices with equal unit cells are overlapped on one edge to create a symmetric topological cavity. As indicated by the coloring, the symmetricity implies a switching of the two sites within the unit cell. (b–d) <t>3D-FDTD</t> simulations of this structure. (b) Spectrum containing a pronounced photonic band gap spanning 150 nm and the cavity mode centered in it. (c) Mode profile corresponding to the interface mode overlaid with the outline of the device. (d) Band structure simulation verifying the existence of a fully open photonic band gap.
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    Topological photonic nanorod lattice. (a) Two dimerized nanorod lattices with equal unit cells are overlapped on one edge to create a symmetric topological cavity. As indicated by the coloring, the symmetricity implies a switching of the two sites within the unit cell. (b–d) 3D-FDTD simulations of this structure. (b) Spectrum containing a pronounced photonic band gap spanning 150 nm and the cavity mode centered in it. (c) Mode profile corresponding to the interface mode overlaid with the outline of the device. (d) Band structure simulation verifying the existence of a fully open photonic band gap.

    Journal: ACS Photonics

    Article Title: Single-Mode Laser in the Telecom Range by Deterministic Amplification of the Topological Interface Mode

    doi: 10.1021/acsphotonics.3c01372

    Figure Lengend Snippet: Topological photonic nanorod lattice. (a) Two dimerized nanorod lattices with equal unit cells are overlapped on one edge to create a symmetric topological cavity. As indicated by the coloring, the symmetricity implies a switching of the two sites within the unit cell. (b–d) 3D-FDTD simulations of this structure. (b) Spectrum containing a pronounced photonic band gap spanning 150 nm and the cavity mode centered in it. (c) Mode profile corresponding to the interface mode overlaid with the outline of the device. (d) Band structure simulation verifying the existence of a fully open photonic band gap.

    Article Snippet: 3D finite-difference time domain (FDTD) simulations of the ideal topological lattice were carried out in the commercially available software Ansys Lumerical FDTD.

    Techniques: