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moghimi-kheirabadi--a
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| # | Type | Title | Author | Publisher | Pub. Year | Subjects | Call Number |
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| 1 | مقاله | Water electrolyte transport through corrugated carbon nanopores [electronic resource] / A. Moghimi Kheirabadi, A. Moosavi. | Moghimi Kheirabadi . A. |
Carbon nanotubes.
Molecular dynamics. Viscosity Ion concentrations. Molecular mechanism. Nonequilibrium molecular dynamics simulation. Roughness amplitude. Temperature increase. Viscosity increase. Water electrolytes. Radial density profile. Electrolytes. |
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| 2 | مقاله | Water electrolyte transport through corrugated carbon nanopores | Moghimi Kheirabadi, A. | 2014 |
Carbon nanotubes.
Electrolytes. Molecular dynamics. Viscosity. Ion concentrations. Molecular mechanism. Nonequilibrium molecular dynamics simulation. Radial density profile. Roughness amplitude. Temperature increase. Viscosity increase. Water electrolytes. Shearing. |
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| 3 | مقاله | Dewetting of evaporating thin films over nanometer-scale topographies | Akbarzadeh, A. M. | 2014 |
Contact angle.
Film thickness. Thin films. De-wetting. Depinning. Dewetting process. Lubrication models. Nano-meter-scale. Solid substrates. Thin film layers. Topography. |
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| 4 | مقاله | Nanofluidic transport inside carbon nanotubes | Moghimi Kheirabadi, A. | 2014 |
Carbon nanotube.
Molecular dynamics. Nanofluidic. Ion concentrations. Mean flow velocities. Molecular mechanism. Nanoenvironments. Non equilibrium molecular dynamic (NEMD) Simultaneous effects. Thermal movements. Viscosity increase. Carbon nanotubes. Concentration (process) Electric fields. Electrolytes. Shearing. Viscosity. Nanofluidics. |
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| 5 | پایان نامه | بررسی عددی جریان داخل نانولوله های کربنی با استفاده از شبیه سازی دینامیک مولکولی Molecular Dynamics Simulation of Fluid Flow inside Carbon Nanotubes | مقیمی خیرآبادی، احمد Moghimi Kheirabadi, Ahmad | دانشگاه صنعتی شریف | 1392 | دینامیک مولکولی Molecular Dynamics / آب Water / تنش برشی Shear Stress / نانولوله های کربنی Carbon Nanotubes / لزجت اسمی Nominal Viscosity / انتقال یون ها Ion Transport / زبری Roughness |
08-45031
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| 6 | پایان نامه | بررسی هیدرودینامیک حرکت میکروآبزیان و میکروشناگرها و شبیهسازی عددی حرکت میکروارگانیسمها با استفاده از دینامیک سیالات محاسباتی The Hydrodynamic Study of Swimming Microorganisms and Numerical Simulation of Micro-swimmers Using Computational Fluid Dynamics | مقیمی خیرآبادی، ایمان Moghimi Kheirabadi, Iman | صنعتی شریف | 1396 | دینامیک سیالات محاسباتی Computational Fluid Dynamics (CFD) / شبیه سازی عددی Numerical Simulation / پارامترهای هندسی Geometric Parameters / جریان سیال Fluid Flow / عدد رینولدز پایین Low Reynolds Number / ریزشناگر با دم مارپیچ Helical Tail Microswimming |
08-50457
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| 7 | مقاله | Quantum nonlinear planar Hall effect in bilayer graphene: An orbital effect of a steady in-plane magnetic field | Kheirabadi, N. | American Physical Society, | 2022 |
Electric fields.
Graphene. Quantum Hall effect. Bilayer Graphene. Charge current. External electric field. In-plane magnetic fields. Momentum spaces. Orbital effects. Planar Hall effect. Second orders. Time reversal symmetries. Fruits. |
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| 8 | مقاله | Fast chromium removal by Shewanella sp.: an enzymatic mechanism depending on serine protease | Kheirabadi, M. | Springer, | 2020 |
Serine protease.
Shewanella sp. Amino acids. Bioremediation. Biotechnology. Chromium mines. Groundwater. Groundwater pollution. Health risks. Soil pollution. Different mechanisms. Environmental pollutions. Enzymatic mechanisms. Fast chromium removals. Gene sequence analysis. Heavy metals removals. Chromium compounds. Bacterium. Biological uptake. Concentration (composition) Contaminated land. Enzyme activity. Gene expression. Genetic analysis. Oxic conditions. Pollutant removal. Razavi Khorasan. Sabzevar. Bacteria (microorganisms) |
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| 9 | مقاله | Engineering of Chern number of topological bands in bilayer graphene by in-plane magnetic field and electrical bias | Kheirabadi, N. | 2024 |
Graphene.
Magnetic fields. Topology. Bilayer Graphene. Chern numbers. Electrical bias. In-plane magnetic fields. Topological bands. Hamiltonians. |
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| 10 | مقاله | Chaos in sandpile models | Moghimi Araghi, S. | 2011 |
Chaos.
Off-critical. Sandpile. Self-organized criticality. |
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| 11 | مقاله | Higher order and boundary scaling fields in the Abelian sandpile model | Moghimi Araghi, S. | 2007 | Statistical Mechanics (cond-mat.stat-mech) |
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| 12 | مقاله | Design and tailoring of one-dimensional ZnO nanomaterials for photocatalytic degradation of organic dyes: a review | Samadi, M. | Springer Netherlands, | 2019 |
1D ZnO nanostructures.
Nanofibers. Nanophotocatalysts. Photocatalysis. Effluent treatment. Effluents. Heterojunctions. II-VI semiconductors. Light absorption. Magnetic semiconductors. Nanorods. Nanostructured materials. Nanowires. Photocatalytic activity. Photodegradation. Semiconductor doping. Sewage. Thermodynamic stability. Wastewater treatment. Wide band gap semiconductors. Zinc oxide. Zinc sulfide. Enhanced light absorptions. Future research directions. Multi-functional materials. Photo catalytic degradation. Photodegradation efficiency. Wastewater treatment process. ZnO nanostructures. Semiconducting zinc compounds. |
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| 13 | مقاله | Investigation of nanofluid flow in the channel under effect of magnetic field and joule heating | Moghimi, S. M. | Elsevier, | 2024 |
Channel.
Free convection. Joule heating. Magnetic field. Nanofluids. Joule heating. |
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| 14 | مقاله | Structure, swelling and mechanical behavior of a cationic full-IPN hydrogel reinforced with modified nanoclay | Kheirabadi, M. | Springer-Verlag London Ltd, | 2015 |
Cationic hydrogel.
Full- interpenetrating polymer network. Organo-modified nanoclay. Bentonite. Cationic surfactants. Chlorine compounds. Dyes. Elastic moduli. Mechanical properties. Nanocomposites. Nanostructured materials. Polymers. Reinforcement. Rheology. Hydrogel nanocomposites. Interpenetrating polymer network (IPN) Nano clays. Nano-composite structure. Nanocomposite hydrogels. Rheological measurements. Simultaneous utilization. Swelling capacities. Hydrogels. |
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| 15 | مقاله | Swelling and mechanical behavior of nanoclay reinforced hydrogel: single network vs. full interpenetrating polymer network | Kheirabadi, M. | Springer Verlag, | 2015 |
Anionic hydrogel nanocomposite.
Full interpenetrating polymer network. Bentonite. Mechanical properties. Nanocomposites. Nanostructured materials. Polymers. Tensile testing. Unloading. 2-acrylamido-2-methylpropane sulfonic acids. Hydrogel nanocomposites. Interpenetrating polymer network (IPN) Modified bentonites. Nanocomposite hydrogels. Reinforced hydrogels. Solution polymerization. Swelling capacities. Hydrogels. |
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| 16 | مقاله | The crossover phenomena in surface growth models with height-dependent noise | Hashtroud, A. M. | Elsevier B.V, | 2020 |
Cross over.
Hopf–Cole transformation. Noise. Scaling exponents. Surface physics. Partial differential equations. Cross over. Cross-over phenomena. Growth process. Height distribution. KPZ equation. Mullins. Surface growth. Universality class. Numerical methods. |
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| 17 | مقاله | SLE(κ,ρ) and boundary Coulomb gas | Moghimi Araghi, S. | 2006 |
Conformal field theory.
SLE equation. |
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| 18 | مقاله | Abelian sandpile model: A conformal field theory point of view | Moghimi Araghi, S. | 2005 |
Conformal field theory.
Sandpile model. Self organized criticality. |
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| 19 | مقاله | Logarithmic conformal null vectors and SLE | Moghimi Araghi, S. | 2004 |
Conformal field theory.
SLE equation. |
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| 20 | مقاله | Improvement in mechanical performance of anionic hydrogels using full-interpenetrating polymer network reinforced with graphene oxide nanosheets | Kheirabadi, M. | John Wiley and Sons Inc | 2016 |
Interpenetrating polymer network (IPN)
Anionic polymerization. Dynamic mechanical analysis. Graphene. Mechanical properties. Nanocomposites. Nanosheets. Polymers. Thermoanalysis. Unloading. 2-acrylamido-2-methylpropane sulfonic acids. Dynamic mechanical thermal analysis. Graphene oxide nanosheets. Graphene oxides. Hydrophilic polymers. Nanocomposite hydrogels. Solution Polymerization techniques. Hydrogels. |
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