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simulation of flow and electric field distribution  (COMSOL Inc)

 
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    COMSOL Inc simulation of flow and electric field distribution
    Simulation Of Flow And Electric Field Distribution, 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/simulated+electric+fields/electric+current+and+flow+field+analyses/pm40055868-280-0-0
    Average 90 stars, based on 1 article reviews
    simulation of flow and electric field distribution - by Bioz Stars, 2026-09
    90/100 stars

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    Article Title: Zebrafish Larvae's Response to Electricity is Mediated by Dopaminergic Agonists and Antagonists
    Article Snippet: Electric current and flow field analyses were conducted using COMSOL to ensure their uniformity throughout the device.

    Article Title: Continuous separation of nanoparticles by type via localized DC-dielectrophoresis using asymmetric nano-orifice in pressure-driven flow
    Article Snippet: Accepted Manuscript Title: Continuous separation of nanoparticles by type via localized DC-Dielectrophoresis using asymmetric nano-orifice in pressure-driven flow Authors: Kai Zhao, Dongqing Li PII: S0925-4005(17)30794-3 DOI: http://dx.doi.org/doi:10.1016/j.snb.2017.04.184 Reference: SNB 22272 To appear in: Sensors and Actuators B Received date: 12-1-2017 Revised date: 19-4-2017 Accepted date: 27-4-2017 Please cite this article as: Kai Zhao, Dongqing Li, Continuous separation of nanoparticles by type via localized DC-Dielectrophoresis using asymmetric nano-orifice in pressure-driven flow, Sensors and Actuators B: Chemicalhttp://dx.doi.org/10.1016/j.snb.2017.04.184 This is a PDF file of an unedited manuscript that has been accepted for publication.. As a service to our customers we are providing this early version of the manuscript.. The manuscript will undergo copyediting, typesetting, and review of the resulting proof before it is published in its final form.

    Article Title: Small Extracellular Vesicles Detection by Dielectrophoresis-Based Microfluidic Chip Filled with Transparent Antibody-Conjugated Microbeads for Breast Cancer Diagnosis.
    Article Snippet: Small extracellular vesicles (sEVs) are ideal biomarkers for early diagnosis of tumors, but their low density and small size make them difficult to enrich and detect in body fluid samples.. This study combined dielectrophoresis (DEP) with immunoaffinity methods and proposed a novel, fast, and efficient acDEP-sEV immunochip, in which by filling the chip reaction chamber with antibody-conjugated microbeads, a nonuniform electric field can be constructed, laminar flow can be disrupted, mass transfer efficiency can be improved, and fluorescence signals can be focused, ultimately achieving rapid, sensitive, and adjustable sEVs capture and detection.. This method only requires 20−50 μL of plasma sample for liquid biopsy in less than 35 min. We analyzed total sEVs, EpCAM, and MUC1 positive sEVs in clinical plasma samples, and found that the combined evaluation of multiple sEVs biomarkers has extremely high sensitivity, accuracy, and specificity.



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    (a): Simulated using the finite-difference time-domain (FDTD) method, this plot shows the normalized electric field intensity along the z-direction for multiple values of graphene chemical potential (µc = 0 to 1 eV). The simulation domain includes the air region above the structure, which allows visualization of both external and internal field behavior. At µc = 0.0 eV, where the structure is optimized for maximum absorption, the electric field in the air remains nearly constant, exhibiting an almost flat profile. This behavior indicates excellent impedance matching at the air-absorber interface, with negligible reflection—a hallmark of perfect absorption. As µc increases, the field confinement inside the multilayer weakens, confirming the switchable nature of the absorber.(b): Simulated using COMSOL Multiphysics, this panel shows the spatial distribution of the electric field inside the structure for two states: µc = 0 eV, with strong field localization, and µc = 1 eV, where the internal field intensity is significantly reduced. This independently confirms the tunable suppression of absorption and the modulation of plasmonic resonances in the multilayer stack.

    Journal: Scientific Reports

    Article Title: Inverse designed aperiodic multilayer perfect absorbers for mid infrared enable tunability switchability and angular robustness

    doi: 10.1038/s41598-025-99995-6

    Figure Lengend Snippet: (a): Simulated using the finite-difference time-domain (FDTD) method, this plot shows the normalized electric field intensity along the z-direction for multiple values of graphene chemical potential (µc = 0 to 1 eV). The simulation domain includes the air region above the structure, which allows visualization of both external and internal field behavior. At µc = 0.0 eV, where the structure is optimized for maximum absorption, the electric field in the air remains nearly constant, exhibiting an almost flat profile. This behavior indicates excellent impedance matching at the air-absorber interface, with negligible reflection—a hallmark of perfect absorption. As µc increases, the field confinement inside the multilayer weakens, confirming the switchable nature of the absorber.(b): Simulated using COMSOL Multiphysics, this panel shows the spatial distribution of the electric field inside the structure for two states: µc = 0 eV, with strong field localization, and µc = 1 eV, where the internal field intensity is significantly reduced. This independently confirms the tunable suppression of absorption and the modulation of plasmonic resonances in the multilayer stack.

    Article Snippet: To further validate these findings, Fig. (b) presents 2D electric field maps simulated using COMSOL Multiphysics for two representative chemical potentials: μc = 0 eV (top) and μc = 1 eV (bottom).

    Techniques: