Search results for "PROTON EXCHANGE MEMBRANE FUEL CELL"

showing 5 items of 55 documents

Synthesis and characterization of bisulfonated poly(vinyl alcohol)/graphene oxide composite membranes with improved proton exchange capabilities

2020

Abstract Composite membranes based on poly(vinyl alcohol) (PVA) and graphene oxide (GO) were prepared by solution-casting method to be used as proton exchange membranes (PEMs) in fuel cell (FC) applications. Bisulfonation was employed as a strategy to enhance the proton conductivity of these membranes. First, a direct sulfonation of the polymer matrix was accomplished by intra-sulfonation of the polymer matrix with propane sultone, followed by the inter-sulfonation of the polymer chains using sulfosuccinic acid (SSA) as a crosslinking agent. Furthermore, the addition of graphene oxide (GO) as inorganic filler was also evaluated to enhance the proton-conducting of the composite membranes. Th…

chemistry.chemical_classificationThermogravimetric analysisVinyl alcoholMaterials sciencePolymers and PlasticsGrapheneOrganic ChemistryProton exchange membrane fuel cellNanoparticle02 engineering and technologyPolymer010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceslaw.inventionDielectric spectroscopychemistry.chemical_compoundMembranechemistryChemical engineeringlaw0210 nano-technologyPolymer Testing
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A Covalently Cross-linked Polyetheretherketone Proton Exchange Membrane for DMFC

2009

The proton exchange membrane was prepared by covalent cross-linking sulfonated-sulfinated polyetheretherketone. The cross-linked membrane showed high proton conductivity (0.04 S/cm) with suitable water uptake, low methanol permeability (2.21 × 10-7 cm2/s) and good electrochemical stability. The results suggested that cross-linked polyetheretherketone membrane is particularly promising to be used as proton exchange membrane for the direct methanol fuel cell application.

chemistry.chemical_compoundDirect methanol fuel cellMembranechemistryChemical engineeringCovalent bondPermeability (electromagnetism)Polymer chemistryProton exchange membrane fuel cellMethanolConductivityElectrochemistryECS Meeting Abstracts
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A Study of Mechanical Properties of Polymer Composite Membranes with Various Ionic Liquids at Elevated Temperatures

2019

This work was supported by Latvian Council of Science (Cooperation project No.666/2014.4).

lcsh:TN1-997KetoneMaterials science020209 energyProton exchange membrane fuel cellEther02 engineering and technologymechanical propertiesfuel cellchemistry.chemical_compound0203 mechanical engineering0202 electrical engineering electronic engineering information engineering:NATURAL SCIENCES:Physics [Research Subject Categories]General Materials Sciencelcsh:Mining engineering. Metallurgyionic liquidchemistry.chemical_classificationPolymer020303 mechanical engineering & transportsMembraneChemical engineeringchemistryIonic liquidPolymer compositesComposite membraneproton exchange membrane
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Fuel cell analytical modeling: Solving the trade-off between accuracy and complexity

2013

In this paper, a 5.5 kW Proton Exchange Membrane fuel cell is modeled. The proposed analytical model is described and the parameters identification procedure is further discussed. Simulation results of all three sub-models are compared to test the accuracy of each one. A comparison between simulation and experimental results is provided as well validating the modeling approach.

modeling fuel cell proton exchange membrane fuel cell hydrogenSettore ING-IND/32 - Convertitori Macchine E Azionamenti ElettriciSettore ING-INF/01 - Elettronica
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Proton Exchange Membrane Fuel Cells (PEMFCs): Advances and Challenges

2021

The study of the electrochemical catalyst conversion of renewable electricity and carbon oxides into chemical fuels attracts a great deal of attention by different researchers. The main role of this process is in mitigating the worldwide energy crisis through a closed technological carbon cycle, where chemical fuels, such as hydrogen, are stored and reconverted to electricity via electrochemical reaction processes in fuel cells. The scientific community focuses its efforts on the development of high-performance polymeric membranes together with nanomaterials with high catalytic activity and stability in order to reduce the platinum group metal applied as a cathode to build stacks of proton …

organic polymersMaterials sciencePolymers and PlasticsHydrogenMembrane electrode assemblymembrane–electrode assemblyNanoparticleProton exchange membrane fuel cellchemistry.chemical_elementOrganic chemistryNanotechnologyGeneral ChemistryReviewElectrochemistryNanomaterialsCatalysisElectroquímicafuel cellMembraneQD241-441chemistryproton conductivityMaterialsproton exchange membranePolymers
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