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COMSOL Inc 2d helium plasma simulations
2d Helium Plasma 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
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Article Title: Controlling nitritation in a continuous split-feed/aeration biofilm nitrifying bioreactor.
Article Snippet: Controlling nitritation in a continuous split-feed/aeration biofilm nitrifying bioreactor Anwar Dawas, Samy Abu-Salih, Isam Sabbah, Ali Nejidat, Carlos G. Dosoretz PII: S0960-8524(19)30829-6 DOI: https://doi.org/10.1016/j.biortech.2019.121599 Article Number: 121599 Reference: BITE 121599 To appear in: Bioresource Technology Received Date: 28 February 2019 Revised Date: 30 May 2019 Accepted Date: 2 June 2019 Please cite this article as: Dawas, A., Abu-Salih, S., Sabbah, I., Nejidat, A., Dosoretz, C.G., Controlling nitritation in a continuous split-feed/aeration biofilm nitrifying bioreactor, Bioresource Technology (2019), doi: https://doi.org/ 10.1016/j.biortech.2019.121599 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: Tristable capacitive microcantilever switches: Measurements and simulations
Article Snippet: Finally, due to the choice of constructing a 2D simulation in COMSOL Multiphysics R©, there is no explicit inclusion of lateral effects: double curvature, electrostatic field fringing around the sides of the microcantilever, and switching due to microcantilever twisting (no appreciable evidence of this twisting behavior is present in the experimental measurements).

Article Title: Unveiling bulk and surface radiation forces in a dielectric liquid
Article Snippet: The complex form of the acoustic waves dispersed in the water and cuvette walls during laser excitation can be calculated using 2D simulation in Comsol.

Article Title: Time-Spectral based Polarization-Encoding for Spatial-Temporal Super-Resolved NSOM Readout
Article Snippet: Figure 1 Comsol 2D simulation of the NSOM photodetector structure.

Article Title: Bio-inspired aquatic propulsion using piezoelectric effect
Article Snippet: Underwater propulsion of fishes have inspired many biomimetic structures.. Generally, the bio-inspired structures mimics the flapping behaviour of various control surfaces/fins in fishes.. The present study mimics the flapping behaviour using a piezoelectric structure.

Article Title: Machine-Learning-Based Sensor Design for Water Salinity Prediction: A Conceptual Approach
Article Snippet: COMSOL 2D simulation reduces the time–cost process for obtaining input–output data used in the training process.

Concentration Assay:

Article Title: Multi-scale stabilization of high-voltage LiCoO2 enabled by nanoscale solid electrolyte coating
Article Snippet: .. 18 2D simulation by COMSOL for lithium concentration in bare LCO cathode after lithiated. .. Besides surface coating, it is also expected that Al and Ge can be incorporated into LiCoO2 lattice due to post-annealing at 650 oC after ball milling, which could also enhance the stability.

Serial Time-encoded Amplified Microscopy:

Article Title: Method and alarming system for CO
Article Snippet: 1-7; COMSOL Multiphysics (1998-2016) “Introduction to COMSOL Multiphysics”, pp. .. 1-194, https://cdn.comsol.com/documentation/5.2.1.262/IntroductionToCOMSOLMultiphysics.pdf; and Bogdanov, El Ganaoui, K. and Kamp, A. M. (2007) “COMSOL 2D simulation of heavy oil recovery by steam assisted gravity drainage”, in Proceedings of the European COMSOL Conference, each incorporated herein by reference in their entirety). ..



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a Three sets of WCNPS, each including the FWC of 0.6 × 0.6 m 2 . b Schematic diagram of 3D FWC subjected to vertical (y direction) fog flow. c The particle image velocimetry characterization for 3D FWC units encountering wind from y direction. d Collected water of 3D FWC, single-layer and double-layer 2D FWCs with the size of 0.6 × 0.6 m 2 (wind speed: ~1 m/s, fog flow rate: ~5 L/h). e Schematic of the biphilic wedged spines surface. f , The growth of droplet on the vertical biphilic surface. g The water collection rate (WCR) of blank (hydrophobic substrate), biphilic-1(The width of hydrophilic spot is 0.5 mm with a spacing of 3 mm), biphilic-2 (The width of hydrophilic spot is 0.5 mm with a spacing of 2 mm) and full-cover hydrophilic surface. h The four layouts of biphilic surfaces classified based on droplet detachment behavior. l , w and h are spacing, width and height of hydrophilic points. i The gravity \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({F}_{g}\right)$$\end{document} F g and adhesion \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({F}_{a{dh}}\right)$$\end{document} F a d h of a droplet on the vertical biphilic surface. R is the droplet radius. j The critical detachment radius \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({R}_{c}\right)$$\end{document} R c on the vertical biphilic surface with different spacing between hydrophilic spots ( l ). k The comparison of WCR between fog harvesting units with layout II and other layouts. All error bars indicate ± SD. Source data are provided as a Source Data file.

Journal: Nature Communications

Article Title: A self-sufficient system for fog-to-water conversion and nitrogen fertilizer production to enhance crop growth

doi: 10.1038/s41467-025-60340-0

Figure Lengend Snippet: a Three sets of WCNPS, each including the FWC of 0.6 × 0.6 m 2 . b Schematic diagram of 3D FWC subjected to vertical (y direction) fog flow. c The particle image velocimetry characterization for 3D FWC units encountering wind from y direction. d Collected water of 3D FWC, single-layer and double-layer 2D FWCs with the size of 0.6 × 0.6 m 2 (wind speed: ~1 m/s, fog flow rate: ~5 L/h). e Schematic of the biphilic wedged spines surface. f , The growth of droplet on the vertical biphilic surface. g The water collection rate (WCR) of blank (hydrophobic substrate), biphilic-1(The width of hydrophilic spot is 0.5 mm with a spacing of 3 mm), biphilic-2 (The width of hydrophilic spot is 0.5 mm with a spacing of 2 mm) and full-cover hydrophilic surface. h The four layouts of biphilic surfaces classified based on droplet detachment behavior. l , w and h are spacing, width and height of hydrophilic points. i The gravity \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({F}_{g}\right)$$\end{document} F g and adhesion \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({F}_{a{dh}}\right)$$\end{document} F a d h of a droplet on the vertical biphilic surface. R is the droplet radius. j The critical detachment radius \documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$\left({R}_{c}\right)$$\end{document} R c on the vertical biphilic surface with different spacing between hydrophilic spots ( l ). k The comparison of WCR between fog harvesting units with layout II and other layouts. All error bars indicate ± SD. Source data are provided as a Source Data file.

Article Snippet: To calculate dynamic electric field dispersion, we use COMSOL 3D and 2D frequency domain simulations of the spherical electrodes, and use physical field interfaces such as electric fields, electromagnetic waves, and dielectric electrics to simulate scenarios.

Techniques: Comparison

(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: