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finite element method simulation software comsol multiphysics 5.5  (COMSOL Inc)

 
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    Structured Review

    COMSOL Inc finite element method simulation software comsol multiphysics 5.5
    Finite Element Method Simulation Software Comsol Multiphysics 5.5, 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/multiphysics+finite+element+simulations/comsol+multiphysics/10__1016_slash_j__colsurfa__2025__136932-89-17-22
    Average 90 stars, based on 1 article reviews
    finite element method simulation software comsol multiphysics 5.5 - by Bioz Stars, 2026-10
    90/100 stars

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    Related Articles

    Activity Assay:

    Article Title: Bimetallic nanoalloys planted on super-hydrophilic carbon nanocages featuring tip-intensified hydrogen evolution electrocatalysis
    Article Snippet: .. To study how local interfacial structural manipulation benefits the catalytic activity, we conducted COMSOL Multiphysics finite element simulations to understand the relationship between nanotip curvature and cation concentration at the electrode-electrolyte interface – . ..

    Article Title: Promoting CO 2 Dynamic Activation via Micro-Engineering Technology for Enhancing Electrochemical CO 2 Reduction.
    Article Snippet: DOI: 10.1002/smll.202207808 highly efficient CO2 electroreduction still suffers from the sluggish kinetics owing to its chemical inertness and the limited CO2 solubility in electrolyte solutions,[4] which is really easy for competitor of hydrogen evolution reaction (HER),[5] thus the target product selectivity and activity for CO2RR was suppressed.. Developing efficient electrocatalysts with high selectivity and activity for a single product of CO2RR was a good avenue for solving the above dilemma.. As competitive candidates, atomically dispersed metal catalysts composed of transition metals (e.g., iron (Fe),[6] cobalt (Co),[7,8] nickel (Ni)[9]) have been widely investigated and rapidly developed in various reactions including HER,[8] oxygen reduction reaction (ORR),[7] oxygen evolution reaction,[8] nitrogen reduction reaction[6] and CO2RR on the basis of their fine structure of active site and high atomic utilization, robust metal-support interaction and the ability to redecorate the coordination structure, merging the merits of both heterogeneous and homogeneous catalysts.

    Concentration Assay:

    Article Title: Bimetallic nanoalloys planted on super-hydrophilic carbon nanocages featuring tip-intensified hydrogen evolution electrocatalysis
    Article Snippet: .. To study how local interfacial structural manipulation benefits the catalytic activity, we conducted COMSOL Multiphysics finite element simulations to understand the relationship between nanotip curvature and cation concentration at the electrode-electrolyte interface – . ..

    Article Title: Hollow carbon-based materials for electrocatalytic and thermocatalytic CO 2 conversion
    Article Snippet: .. It was proposed, based on COMSOL multiphysics finite element simulations, that the diffusion time of CO 2 molecules in hollow nano-reactor structure (model II, I-Ni SA/NHCRs-based electrode) (CO 2 diffusion time, ∼1.25 s) is much faster than that of solid sphere structure (model I, Ni-NC-based electrode) (CO 2 diffusion time, >2.0 s) , as a result of the intrinsically structural virtue; in the meantime, the bottom and average concentration of CO 2 in the above two models was dynamically monitored via the simulation probe , and the results fully confirmed the facilitated CO 2 diffusion rate in hollow structural carbon. ..

    Article Title: Tip carbon encapsulation customizes cationic enrichment and valence stabilization for low K + acidic CO 2 electroreduction
    Article Snippet: .. Here, using COMSOL Multiphysics finite element simulations, the potential of carbon layer as concentration field control modules in tip-featured catalysts was comprehensively evaluated. ..

    Article Title: Hybrid‐Piezoelectret Based Highly Efficient Ultrasonic Energy Harvester for Implantable Electronics
    Article Snippet: Implantable ultrasonic energy harvesters that scavenge wireless mechanic energy from ultrasound own remarkable potential in advanced medical protocols for neuroprosthetics, wireless power, biosensor, etc.. The main challenge for this kind of device is to achieve high-efficiency energy conversion in a weak ultrasonic pressure field.. Here, a multilayered piezoelectret with strain enhanced piezoelectricity by introducing a parallel-connected air hole array in an interdielectric layer sandwiched between a pair of electrets for an efficient ultrasonic energy harvester is presented.

    Polymer:

    Article Title: Polyvinylidene Fluoride Based Piezoelectric Composites with Strong Interfacial Adhesion via Click Chemistry for Self-Powered Flexible Sensors.
    Article Snippet: Achieving relatively uniform dispersion in organic–inorganic composites with overwhelming differences in surface energy is a perennial challenge.. Herein, novel eliminated polyvinylidene fluoride (EPVDF)/EPVDF functionalized barium titanate nanoparticles (EPVDF@BT) flexible piezoelectric nanogenerators (PENGs) with strong interfacial adhesion are developed via thermal stretching following sequential click chemistry.. Thanks to the strong interfacial adhesion, the optimal PENGs containing ultra-high β-phase content (97.2%) exhibit not only optimized mechanical and dielectric behaviors but also excellent piezoelectric properties with high piezoelectric output (V = 10.7 V, I = 216 nA), reliable durability (8000 cycles), ultrafast response time (20 ms), and good sensitivity (2.09 nA kPa−1), far outperforming most reported PVDF-based composites.

    Diffusion-based Assay:

    Article Title: Hollow carbon-based materials for electrocatalytic and thermocatalytic CO 2 conversion
    Article Snippet: .. It was proposed, based on COMSOL multiphysics finite element simulations, that the diffusion time of CO 2 molecules in hollow nano-reactor structure (model II, I-Ni SA/NHCRs-based electrode) (CO 2 diffusion time, ∼1.25 s) is much faster than that of solid sphere structure (model I, Ni-NC-based electrode) (CO 2 diffusion time, >2.0 s) , as a result of the intrinsically structural virtue; in the meantime, the bottom and average concentration of CO 2 in the above two models was dynamically monitored via the simulation probe , and the results fully confirmed the facilitated CO 2 diffusion rate in hollow structural carbon. ..

    Control:

    Article Title: Tip carbon encapsulation customizes cationic enrichment and valence stabilization for low K + acidic CO 2 electroreduction
    Article Snippet: .. Here, using COMSOL Multiphysics finite element simulations, the potential of carbon layer as concentration field control modules in tip-featured catalysts was comprehensively evaluated. ..

    other:

    Article Title: Optomechanical synchronization across multi-octave frequency spans
    Article Snippet: The mechanical mode effective mass and the zero point fluctuation were obtained from COMSOL Multiphysics finite element simulations, m eff = 101.82 pg, x zpf = 1.536 fm, leading to an optomechanical pulling parameters G /2 π = ( g 0 /2 π )/ x zpf = 10.546 GHz/nm.

    Isolation:

    Article Title: Promoting CO 2 Dynamic Activation via Micro-Engineering Technology for Enhancing Electrochemical CO 2 Reduction.
    Article Snippet: DOI: 10.1002/smll.202207808 highly efficient CO2 electroreduction still suffers from the sluggish kinetics owing to its chemical inertness and the limited CO2 solubility in electrolyte solutions,[4] which is really easy for competitor of hydrogen evolution reaction (HER),[5] thus the target product selectivity and activity for CO2RR was suppressed.. Developing efficient electrocatalysts with high selectivity and activity for a single product of CO2RR was a good avenue for solving the above dilemma.. As competitive candidates, atomically dispersed metal catalysts composed of transition metals (e.g., iron (Fe),[6] cobalt (Co),[7,8] nickel (Ni)[9]) have been widely investigated and rapidly developed in various reactions including HER,[8] oxygen reduction reaction (ORR),[7] oxygen evolution reaction,[8] nitrogen reduction reaction[6] and CO2RR on the basis of their fine structure of active site and high atomic utilization, robust metal-support interaction and the ability to redecorate the coordination structure, merging the merits of both heterogeneous and homogeneous catalysts.

    Hybridization:

    Article Title: Promoting CO 2 Dynamic Activation via Micro-Engineering Technology for Enhancing Electrochemical CO 2 Reduction.
    Article Snippet: DOI: 10.1002/smll.202207808 highly efficient CO2 electroreduction still suffers from the sluggish kinetics owing to its chemical inertness and the limited CO2 solubility in electrolyte solutions,[4] which is really easy for competitor of hydrogen evolution reaction (HER),[5] thus the target product selectivity and activity for CO2RR was suppressed.. Developing efficient electrocatalysts with high selectivity and activity for a single product of CO2RR was a good avenue for solving the above dilemma.. As competitive candidates, atomically dispersed metal catalysts composed of transition metals (e.g., iron (Fe),[6] cobalt (Co),[7,8] nickel (Ni)[9]) have been widely investigated and rapidly developed in various reactions including HER,[8] oxygen reduction reaction (ORR),[7] oxygen evolution reaction,[8] nitrogen reduction reaction[6] and CO2RR on the basis of their fine structure of active site and high atomic utilization, robust metal-support interaction and the ability to redecorate the coordination structure, merging the merits of both heterogeneous and homogeneous catalysts.

    Activation Assay:

    Article Title: Promoting CO 2 Dynamic Activation via Micro-Engineering Technology for Enhancing Electrochemical CO 2 Reduction.
    Article Snippet: DOI: 10.1002/smll.202207808 highly efficient CO2 electroreduction still suffers from the sluggish kinetics owing to its chemical inertness and the limited CO2 solubility in electrolyte solutions,[4] which is really easy for competitor of hydrogen evolution reaction (HER),[5] thus the target product selectivity and activity for CO2RR was suppressed.. Developing efficient electrocatalysts with high selectivity and activity for a single product of CO2RR was a good avenue for solving the above dilemma.. As competitive candidates, atomically dispersed metal catalysts composed of transition metals (e.g., iron (Fe),[6] cobalt (Co),[7,8] nickel (Ni)[9]) have been widely investigated and rapidly developed in various reactions including HER,[8] oxygen reduction reaction (ORR),[7] oxygen evolution reaction,[8] nitrogen reduction reaction[6] and CO2RR on the basis of their fine structure of active site and high atomic utilization, robust metal-support interaction and the ability to redecorate the coordination structure, merging the merits of both heterogeneous and homogeneous catalysts.



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