Search results for "Graphene nanocomposites"

showing 4 items of 4 documents

Graphene enhances the magnetoresistance of FeNi3nanoparticles in hierarchical FeNi3–graphene nanocomposites

2016

An increase in the giant magnetoresistance of FeNi3 nanoparticles of 20 times has been observed in FeNi3–graphene nanocomposites synthesized using NiFe-layered double hydroxide hybrids as precursors. The magnetic, transport and magneto-transport properties of these nanocomposites are studied and compared with those of the pure FeNi3 nanoparticles. The hierarchical structure and hybrid composition of these magnetic nanocomposites lead to the observation of two unusual magneto-transport properties, namely (i) an enhancement in the low-field magnetoresistance effects, and (ii) a crossover from negative to positive MR upon cooling down the sample.

Materials scienceNanocompositeMagnetoresistanceGrapheneNanoparticleGiant magnetoresistanceNanotechnology02 engineering and technologyGeneral Chemistry010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical scienceslaw.inventionchemistry.chemical_compoundchemistryGraphene nanocompositeslawMaterials ChemistryHydroxide0210 nano-technologyJournal of Materials Chemistry C
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Giant Enhancement in the Supercapacitance of NiFe–Graphene Nanocomposites Induced by a Magnetic Field

2019

The rapid rise in energy demand in the past years has prompted a search for low-cost alternatives for energy storage, supercapacitors being one of the most important devices. It is shown that a dramatic enhancement (≈1100%, from 155 to 1850 F g-1 ) of the specific capacitance of a hybrid stimuli-responsive FeNi3 -graphene electrode material can be achieved when the charge/discharge cycling is performed in the presence of an applied magnetic field of 4000 G. This result is related to an unprecedented magnetic-field-induced metal segregation of the FeNi3 nanoparticles during the cycling, which results in the appearance of small Ni clusters (<5 nm) and, consequently, in an increase in pseudoca…

Materials scienceNanoparticle02 engineering and technology010402 general chemistry7. Clean energy01 natural sciencesCapacitanceEnergy storageMetalGeneral Materials ScienceMaterialsSupercapacitorNanocompositebusiness.industryMechanical Engineering021001 nanoscience & nanotechnology0104 chemical sciencesMagnetic fieldGraphene nanocompositesMechanics of Materialsvisual_artvisual_art.visual_art_mediumOptoelectronicsEnergia0210 nano-technologybusinessAdvanced Materials
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A chemical and electrochemical multivalent memory made from FeNi3-graphene nanocomposites

2014

FeNi3-graphene nanocomposites present in acetonitrile solutions a redox couple with an electrochemical hysteresis of 2.4 V between the oxidation and the reduction maxima. In view of the high energy required for the reverse transitions, they are here proposed as chemical multilevel memories: permanent, after drying, or erasable in electrolytes, respectively. Keywords: FeNi3-graphene nanocomposites, Voltammetry, Coulovoltammetry, Redox couple, Redox hysteresis

Redox hysteresisHigh energyMaterials scienceInorganic chemistryRedox coupleFeNi3-graphene nanocompositesElectrolyteElectrochemistryRedoxlcsh:ChemistryHysteresischemistry.chemical_compoundlcsh:Industrial electrochemistrylcsh:QD1-999Graphene nanocompositeschemistryChemical engineeringCoulovoltammetryElectrochemistryVoltammetryAcetonitrileVoltammetrylcsh:TP250-261Electrochemistry Communications
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Energy Storage: Giant Enhancement in the Supercapacitance of NiFe–Graphene Nanocomposites Induced by a Magnetic Field (Adv. Mater. 28/2019)

2019

SupercapacitorNanocompositeMaterials scienceGraphene nanocompositesMechanics of MaterialsMechanical EngineeringGeneral Materials ScienceNanotechnologyEnergy storageMagnetic fieldAdvanced Materials
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