Search results for " nanotube"

showing 10 items of 560 documents

Modification of halloysite lumen with dopamine derivatives as filler for antibiofilm coating

2023

Hypothesis: Development of nanocomposite coating with antibiofilm properties is of fundamental importance to efficient fight biofilm formation preventing infections in biomedical area. In this context, halloysite nanotubes (HNTs), biocompatible and low-cost clay mineral, have been efficiently used as filler for different polymeric matrices affording several nanocomposites with appealing antimicrobial properties. The modification of HNTs surfaces represents a valuable strategy to improve the utilization of the clay for biological purposes. Experiments: Herein, the covalent modification of the HNTs lumen with properly designed dopamine derivatives with different perfluoroalkyl chain length is…

BiomaterialsCoatingDopamine derivativesLumen modificationColloid and Surface ChemistryHalloysite nanotubesAntibiofilm formationSettore CHIM/06 - Chimica OrganicaSurfaces Coatings and FilmsElectronic Optical and Magnetic Materials
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Single-Molecule Magnets: Electrostatic Anchoring of Mn4 Single-Molecule Magnets onto Chemically Modified Multiwalled Carbon Nanotubes (Adv. Funct. Ma…

2012

BiomaterialsMaterials sciencelawMagnetElectrochemistryMoleculeAnchoringNanotechnologyCarbon nanotubeCondensed Matter PhysicsMultiwalled carbonElectronic Optical and Magnetic Materialslaw.inventionAdvanced Functional Materials
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Carbon Nanotubes. By Stefanie Reich, Christian Thomsen and Janina Maultzsch.

2005

BiomaterialsPolymer sciencelawPhilosophyGeneral Materials ScienceGeneral ChemistryCarbon nanotubeBiotechnologylaw.inventionSmall
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Monofunctional pyrenes at carbon nanotube electrodes for direct electron transfer H2O2 reduction with HRP and HRP-bacterial nanocellulose

2021

Abstract The non-covalent modification of carbon nanotube electrodes with pyrene derivatives is a versatile approach to enhance the electrical wiring of enzymes for biosensors and biofuel cells. We report here a comparative study of five pyrene derivatives adsorbed at multi-walled carbon nanotube electrodes to shed light on their ability to promote direct electron transfer with horseradish peroxidase (HRP) for H2O2 reduction. In all cases, pyrene-modified electrodes enhanced catalytic reduction compared to the unmodified electrodes. The pyrene N-hydroxysuccinimide (NHS) ester derivative provided access to the highest catalytic current of 1.4 mA cm−2 at 6 mmol L−1 H2O2, high onset potential …

Biomedical EngineeringBiophysics02 engineering and technologyCarbon nanotube01 natural sciences7. Clean energyNanocelluloselaw.inventionCatalysisBiofuel cell cathodeHorseradish peroxidasechemistry.chemical_compoundElectron transferlawElectrochemistry[CHIM]Chemical SciencesComputingMilieux_MISCELLANEOUSChemistry010401 analytical chemistryGeneral MedicineNanocellulose electrode021001 nanoscience & nanotechnologyCombinatorial chemistry0104 chemical sciencesElectrochemical gas sensorElectrochemical sensorDirect electron transferElectrodeBioelectrocatalysisPyrene0210 nano-technologyBiosensorBiotechnology
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Bionanocomposites based on pectins and halloysite nanotubes

2011

Bionanocomposite nanotubes biopolymerSettore CHIM/02 - Chimica Fisica
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Bionanocomposites Based on Pectins and Halloysite Nanotubes: from the Structure to the Properties

2010

Bionanocomposites Nanotubes pectin
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Multicomponent bionanocomposites based on clay nanoarchitectures for electrochemical devices

2019

[EN] Based on the unique ability of defibrillated sepiolite (SEP) to form stable and homogeneous colloidal dispersions of diverse types of nanoparticles in aqueous media under ultrasonication, multicomponent conductive nanoarchitectured materials integrating halloysite nanotubes (HNTs), graphene nanoplatelets (GNPs) and chitosan (CHI) have been developed. The resulting nanohybrid suspensions could be easily formed into films or foams, where each individual component plays a critical role in the biocomposite: HNTs act as nanocontainers for bioactive species, GNPs provide electrical conductivity (enhanced by doping with MWCNTs) and, the CHI polymer matrix introduces mechanical and membrane pr…

BionanocompositesElectrochemical deviceMaterials scienceHalloysite nanotubeSepioliteGeneral Physics and AstronomyNanoparticleNanotechnology02 engineering and technologyhalloysite nanotubesengineering.material010402 general chemistrylcsh:Chemical technology01 natural sciencesHalloysitelcsh:TechnologyFull Research PaperChitosanchemistry.chemical_compoundBionanocompositeNanotechnologyGeneral Materials Sciencelcsh:TP1-1185Electrical and Electronic Engineeringlcsh:Sciencechemistry.chemical_classificationHalloysite nanotubeslcsh:Tbionanocompositeselectrochemical devicesNanocontainerPolymer021001 nanoscience & nanotechnologycarbon nanostructuresCarbon nanostructureslcsh:QC1-9990104 chemical sciencesCarbon nanostructureNanoscienceMembranechemistryElectrochemical devicesengineeringlcsh:QBiocomposite0210 nano-technologyBiosensorlcsh:Physics
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Halloysite-Based Bionanocomposites

2017

Scientific research has been invigorated by a new class of biodegradable materials as alternatives to polymers derived from fossils. Such biomaterials can also offer economic advantages because they are derived from renewable resources. Several biopolymers (gelatin, chitin, chitosan, starch, pectin, cellulose and its modified versions, etc.) have been exploited to produce films and formulations. Their use is limited because of fast degradation, predominant hydrophilic character, and, in some cases, unsatisfactory mechanical properties. However, the properties of these polymers can be improved by using inorganic fillers such as additives. Halloysite nanotube is a promising green filler for t…

BiopolymerMaterials scienceApplicationHalloysite nanotube02 engineering and technologySettore CHIM/06 - Chimica Organicaengineering.material010402 general chemistry021001 nanoscience & nanotechnology01 natural sciencesHalloysitePhysicochemical propertie0104 chemical sciencesBiopolymers halloysite nanotubes HNT-biopolymers nanocomposites physicochemical properties applicationsHNT-biopolymers nanocompositeChemical engineeringengineering0210 nano-technologySettore CHIM/02 - Chimica Fisica
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Colloidal stability of halloysite clay nanotubes

2019

Abstract The colloidal stability of halloysite clay nanotubes dispersion is reviewed showing the strategy and the mechanism to obtain stable systems in water and apolar solvents. The selective modification of halloysite inner/outer surfaces can be achieved by exploiting electrostatic interactions. The adsorption of anionic surfactants onto the halloysite cavity allows generating inorganic cylindrical micelles that can be separated from the solvent. On the other hand, the functionalization of halloysite shell by positively charged surfactants drives to obtain stable water-in-oil emulsions. The interactions with ionic and nonionic polymers alters the dispersability of halloysite due to electr…

BiopolymerMaterials scienceClay dispersionSurfactantsHalloysite nanotubeIonic bonding02 engineering and technologyengineering.material01 natural sciencesHalloysiteMicelleColloidAdsorption0103 physical sciencesMaterials ChemistryPolymer010302 applied physicschemistry.chemical_classificationProcess Chemistry and TechnologyPolymer021001 nanoscience & nanotechnologyColloidal stabilitySurfaces Coatings and FilmsElectronic Optical and Magnetic MaterialsSolventchemistryChemical engineeringPickering emulsionCeramics and CompositesengineeringSurface modification0210 nano-technologyCeramics International
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Encapsulation capacity and natural payload delivery of an anticancer drug from boron nitride nanotube.

2016

The behavior of confined anticancer carboplatin (CPT) molecules in a single (10, 10) boron nitride nanotube (BNNT) was studied by means of molecular dynamics simulations. Our study revealed a very large storage capacity of BNNT. Analysis of the energy profiles depending on the number of confined molecules, and on their spatial organization allowed us to quantify the ability of BNNT to vectorize CPT. Indeed, BNNT despite its small radius presented a large inner volume that favored stable encapsulation of multiple active anticancer molecules. Moreover, in our molecular dynamics simulations, the empty BNNT and the BNNT filled with CPT diffused spontaneously to the cell membrane and were able t…

Boron CompoundsLipid BilayersGeneral Physics and AstronomyNanotechnologyAntineoplastic Agents02 engineering and technologyMolecular Dynamics Simulation010402 general chemistry01 natural sciencesCell membranechemistry.chemical_compoundMolecular dynamicsmedicineMoleculePhysical and Theoretical ChemistryLipid bilayerDrug CarriersNanotubesWater021001 nanoscience & nanotechnologyAnticancer drugBoron nitride nanotube0104 chemical sciencesmedicine.anatomical_structurechemistryDrug deliveryDrug releaseThermodynamics0210 nano-technologyPhysical chemistry chemical physics : PCCP
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