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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+fdtd+simulations/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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    Software:

    Article Title: Curved InGaAs nanowire array lasers grown directly on silicon-on-insulator
    Article Snippet: .. To study the resonant properties of curved nanowire cavities, 3D FDTD simulations were performed using the Ansys Lumerical software. ..

    Article Title: Advancing COVID-19 Diagnosis: Enhancement in SERS-PCR with 30-nm Au Nanoparticle-Internalized Nanodimpled Substrates.
    Article Snippet: Real-time polymerase chain reaction (RT-PCR) with fluorescence detection is the gold standard for diagnosing coronavirus disease 2019 (COVID-19) However, the fluorescence detection in RT-PCR requires multiple amplification steps when the initial deoxyribonucleic acid (DNA) concentration is low.. Therefore, this study has developed a highly sensitive surface-enhanced Raman scattering-based PCR (SERS-PCR) assay platform using the gold nanoparticle (AuNP)-internalized gold nanodimpled substrate (AuNDS) plasmonic platform.. By comparing different sizes of AuNPs, it is observed that using 30 nm AuNPs improves the detection limit by approximately ten times compared to 70 nm AuNPs.

    Article Title: Reproducible and Sensitive Plasmonic Sensing Platforms Based on Au‐Nanoparticle‐Internalized Nanodimpled Substrates
    Article Snippet: .. FDTD Simulations: 3D FDTD simulations were performed using commercial software (Lumerical, Ansys) to investigate the distribution of the electromagnetic (EM) field generated on the SERS substrates. ..

    Article Title: Tip-based Lithography with a Sacrificial Layer.
    Article Snippet: The fabrication of a highly controlled gold (Au) nanohole (NH) array via tip-based lithography is improved by incorporating a sacrificial layer—a tip-crash buffer layer.. This inclusion mitigates scratches during the nano-indentation process by employing a 300 nm thick poly(methyl methacrylate) layer as a sacrificial layer on top of the Au film.. Such a precaution ensures minimal scratches on the Au film, facilitating the creation of sub-50 nm Au NHs with a 15 nm gap between the Au NHs.

    Generated:

    Article Title: Advancing COVID-19 Diagnosis: Enhancement in SERS-PCR with 30-nm Au Nanoparticle-Internalized Nanodimpled Substrates.
    Article Snippet: Real-time polymerase chain reaction (RT-PCR) with fluorescence detection is the gold standard for diagnosing coronavirus disease 2019 (COVID-19) However, the fluorescence detection in RT-PCR requires multiple amplification steps when the initial deoxyribonucleic acid (DNA) concentration is low.. Therefore, this study has developed a highly sensitive surface-enhanced Raman scattering-based PCR (SERS-PCR) assay platform using the gold nanoparticle (AuNP)-internalized gold nanodimpled substrate (AuNDS) plasmonic platform.. By comparing different sizes of AuNPs, it is observed that using 30 nm AuNPs improves the detection limit by approximately ten times compared to 70 nm AuNPs.

    Article Title: Reproducible and Sensitive Plasmonic Sensing Platforms Based on Au‐Nanoparticle‐Internalized Nanodimpled Substrates
    Article Snippet: .. FDTD Simulations: 3D FDTD simulations were performed using commercial software (Lumerical, Ansys) to investigate the distribution of the electromagnetic (EM) field generated on the SERS substrates. ..

    other:

    Article Title: Metamaterial‐Assisted Illumination Nanoscopy with Exceptional Axial Resolution
    Article Snippet: 3D FDTD simulations were conducted (Ansys Lumerical FDTD).



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    a AFM measurement performed on the surface of the DBR/DBR Schlieren cavity showing an average roughness R a = 2.6 nm. Scale bar, 2 μm. b TMCs of the reflectivity of DBR/DBR cavities with aligned 15% β-phase PFO at the design thickness for a resonance at 2.65 eV (red line) and assuming a 3 nm thickness increase over the design thickness (blue line). The calculation was performed for light polarized parallel to the alignment of the PFO transition dipole moment. c Calculated LP energy profile for a randomly generated film topography with a correlation length and amplitude matching the Schlieren cavity measured in ( a ). d <t>FDTD</t> simulation of the normalized squared electric field 1443 fs after excitation for the LP energy profile shown in ( c ). e Superposition of data from ( c and d ) illustrating how the electric field is confined to regions of lower LP energy, i.e., to thicker parts of the film.
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    a AFM measurement performed on the surface of the DBR/DBR Schlieren cavity showing an average roughness R a = 2.6 nm. Scale bar, 2 μm. b TMCs of the reflectivity of DBR/DBR cavities with aligned 15% β-phase PFO at the design thickness for a resonance at 2.65 eV (red line) and assuming a 3 nm thickness increase over the design thickness (blue line). The calculation was performed for light polarized parallel to the alignment of the PFO transition dipole moment. c Calculated LP energy profile for a randomly generated film topography with a correlation length and amplitude matching the Schlieren cavity measured in ( a ). d <t>FDTD</t> simulation of the normalized squared electric field 1443 fs after excitation for the LP energy profile shown in ( c ). e Superposition of data from ( c and d ) illustrating how the electric field is confined to regions of lower LP energy, i.e., to thicker parts of the film.
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    a AFM measurement performed on the surface of the DBR/DBR Schlieren cavity showing an average roughness R a = 2.6 nm. Scale bar, 2 μm. b TMCs of the reflectivity of DBR/DBR cavities with aligned 15% β-phase PFO at the design thickness for a resonance at 2.65 eV (red line) and assuming a 3 nm thickness increase over the design thickness (blue line). The calculation was performed for light polarized parallel to the alignment of the PFO transition dipole moment. c Calculated LP energy profile for a randomly generated film topography with a correlation length and amplitude matching the Schlieren cavity measured in ( a ). d FDTD simulation of the normalized squared electric field 1443 fs after excitation for the LP energy profile shown in ( c ). e Superposition of data from ( c and d ) illustrating how the electric field is confined to regions of lower LP energy, i.e., to thicker parts of the film.

    Journal: Nature Communications

    Article Title: Schlieren texture and topography induced confinement in an organic exciton-polariton laser

    doi: 10.1038/s41467-025-55875-1

    Figure Lengend Snippet: a AFM measurement performed on the surface of the DBR/DBR Schlieren cavity showing an average roughness R a = 2.6 nm. Scale bar, 2 μm. b TMCs of the reflectivity of DBR/DBR cavities with aligned 15% β-phase PFO at the design thickness for a resonance at 2.65 eV (red line) and assuming a 3 nm thickness increase over the design thickness (blue line). The calculation was performed for light polarized parallel to the alignment of the PFO transition dipole moment. c Calculated LP energy profile for a randomly generated film topography with a correlation length and amplitude matching the Schlieren cavity measured in ( a ). d FDTD simulation of the normalized squared electric field 1443 fs after excitation for the LP energy profile shown in ( c ). e Superposition of data from ( c and d ) illustrating how the electric field is confined to regions of lower LP energy, i.e., to thicker parts of the film.

    Article Snippet: The simulations were performed using the FDTD 3D Electromagnetic Simulator from Lumerical-Ansys.

    Techniques: Generated