Search results for "Alum"

showing 10 items of 1303 documents

A new 8-oxo-7,8-2 ' deoxyguanosine nanoporous anodic alumina aptasensor for colorectal cancer diagnosis in blood and urine

2021

Many important human diseases, and especially cancer, have been related to the overproduction of 8-oxo-7,8-dihydro-2 '-deoxyguanosine (8-oxo-dG). This molecule is a product of oxidative stress processes over nucleophilic bases in DNA. In this work, an aptasensor for the rapid, selective and accurate detection of this oncomarker is presented. The aptasensor consists of a nanoporous anodic alumina material loaded with a dye and is functionalized with an aptamer-based "molecular gate". In the presence of target 8-oxo-dG, the capping aptamer displaces from the surface due to the high affinity of the analyte with the capping aptamer, thus inducing delivery of the preloaded fluorescent dye. In co…

AnalyteChromatographyNanoporousColorectal cancerChemistryAptamerDeoxyguanosineCancerUrinemedicine.diseaseFluorescenceNanoporeschemistry.chemical_compound8-Hydroxy-2'-DeoxyguanosineAluminum OxidemedicineHumansDeoxyguanosineGeneral Materials ScienceColorectal Neoplasms
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Preconcentration of aluminium by micellar-enhanced ultrafiltration

1993

Abstract Traces of aluminium were preconcentrated in water samples by forming a complex with lumogallion, and successfully accumulated in the micellar phase obtained from cationic or non-ionic surfactants and filtered through 10 000 molecular weight cut-off ultrafiltration membranes. Studies indicated that, at pH 5.9, with 1 X 10 −3 M lumogallion and 2 X 10 −2 M cetyltrimethylamonium bromide, quantitative retention of aluminium present at μg ml −1 concentration levels was achieved. A micellar-enhanced fluorimetric procedure was employed to analyse the permeate solutions, whereas nitrous oxide-acetylene flame atomic emission spectrometry was used to determine aluminium in the retentate. The …

AnalyteChromatographyUltrafiltrationFluorescence spectrometrychemistry.chemical_elementPermeationBiochemistryAnalytical Chemistrychemistry.chemical_compoundMembranechemistryBromideAluminiumEnvironmental ChemistryAnalytical proceduresSpectroscopyAnalytica Chimica Acta
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Real-time polarimetric biosensing using macroporous alumina membranes

2013

We report the first demonstration of real-time biosensing in free standing macroporous alumina membranes. The membranes with their 200 nm diameter pores are ideal candidates for biosensing applications where fast response times for small sample volumes are needed as they allow analytes to flow through the pores close to the bioreceptors immobilized on the pores walls. A bulk refractive index sensitivity of 5.2x10 -6 refractive index units was obtained from signal responses to different concentrations of NaCl solutions flowing through the pores. Finally, after functionalizing the alumina pore surfaces with an epoxysilane and then spotting it with β-Lactoglobulin protein, the interactions bet…

AnalyteMaterials scienceNacl solutionsAlumina membranesAnalytical chemistryfood and beveragesSmall sampleRabbit (nuclear engineering)02 engineering and technology021001 nanoscience & nanotechnology01 natural sciences010309 opticsMembrane0103 physical sciences0210 nano-technologyBiosensorRefractive indexSPIE Proceedings
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Characterization of porous alumina membranes for efficient, real-time, flow through biosensing

2015

Abstract Nanofluidic sensing devices promise high performance by overcoming issues of mass transport of analyte molecules to the sensing surface, whilst micro-porous membranes promise high sensitivity due to a large surface for their capture. Anodic alumina (AAO) filter membranes allow the flow through of samples, and could be used as a convenient and readily available fluidic platform for the targeted delivering of analytes to bioreceptors immobilized on the pore walls. The relatively small pore dimensions, compared to fluidic diffusion lengths, promise highly efficient capture of analytes from the whole sample volume, enabling relatively fast sensing response times and the use of small sa…

AnalyteMaterials sciencegenetic structuresQuantum dotsDiffusionFiltration and SeparationNanotechnologyPorous aluminaPore size distributionBiochemistryCharacterization (materials science)AnodeMembraneGeneral Materials ScienceFluidicsPhysical and Theoretical ChemistryPorosityBiosensorOptical biosensing and sensorsProtein physisorption
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Anodic Alumina Membranes for Fuel Cell Technology and Nanostructure Template -assisted Deposition

2009

Anodic Alumina Membranes Fuel Cell Nanostructure
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Ruthenium Oxide Nanotubes Via Template Electrosynthesis

2011

Ruthenium oxide nanotubes were fabricated by a single-step galvanostatic deposition using porous anodic alumina membrane as template. For the electrodeposition process, we used a electrochemical cell specifically designed in order to employ only 0.5 ml of 0.02 M RuCl3•xH2O solution. The deposition from a very small volume was specifically addressed owing to the high cost of ruthenium compounds, which could be of some relevance from an applicative point of view. Several techniques were used to characterize the samples prior to and after thermal treatment, which was carried out at different temperatures in order to study the crystallization process of the deposit. Raman spectroscopy of as-dep…

Anodic alumina membrane electrodeposition metal oxide nanotubes raman spectroscopy ruthenium oxide supercapacitors template fabrication.Settore ING-IND/23 - Chimica Fisica ApplicataMaterials scienceBiomedical EngineeringPharmaceutical ScienceMedicine (miscellaneous)BioengineeringElectrosynthesisCombinatorial chemistryRuthenium oxideBiotechnologyCurrent Nanoscience
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Microporous alumina membranes electrochemically grown

2003

Abstract The electrochemical fabrication of alumina membranes by anodizing of aluminium in phosphoric acid and oxalic acid solutions, in the temperature interval from −1 to 16 °C, was investigated in order to study the influence of different parameters (initial treatment of aluminium surface, nature and composition of electrolyte, temperature) on the final characteristics of the membranes. Porous layers were grown using a linear potential scan at 0.2 V s −1 up to 160 V in H 3 PO 4 solution and 70 V in oxalic acid solution. The efficiency of porous layer formation was calculated by using Faraday's law and weight measurements. Pore size distribution and porosity of membranes prepared in 0.4 M…

AnodizingGeneral Chemical EngineeringOxalic acidInorganic chemistrychemistry.chemical_elementElectrolyteOxalatechemistry.chemical_compoundAluminium anodizing Anodic porous oxide Ceramic membrane Membrane preparation Porous aluminaCeramic membraneMembranechemistryAluminiumElectrochemistryPhosphoric acidElectrochimica Acta
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Selective Antimicrobial Effects of Curcumin@Halloysite Nanoformulation: A Caenorhabditis elegans Study

2019

Alterations in the normal gastrointestinal microbial community caused by unhealthy diet, environmental factors, and antibiotic overuse may severely affect human health and well-being. Novel antimicrobial drug formulations targeting pathogenic microflora while not affecting or even supporting symbiotic microflora are urgently needed. Here we report fabrication of a novel antimicrobial nanocontainer based on halloysite nanotubes loaded with curcumin and protected with a dextrin outer layer (HNTs+Curc/DX) and its effective use to suppress the overgrowth of pathogenic bacteria in Caenorhabditis elegans nematodes. Nanocontainers have been obtained using vacuum-facilitated loading of hydrophobic …

Anti-Infective AgentMaterials scienceCurcuminantimicrobial formulation020101 civil engineeringgut microbiota regulation02 engineering and technologymedicine.disease_cause0201 civil engineeringMicrobiologychemistry.chemical_compoundDrug Delivery SystemsAnti-Infective AgentsIn vivoDextrinDextrinsmedicineAnimalsHumansGeneral Materials SciencehalloysiteCaenorhabditis elegansnanocontainerCaenorhabditis eleganNanotubesbiologyAnimalNanocontainerPathogenic bacteria021001 nanoscience & nanotechnologybiology.organism_classificationAntimicrobialdark-field/hyperspectral microscopyNanotubechemistryAluminum SilicateDrug deliverySerratia marcescensdrug deliveryThermogravimetryCurcuminClayAluminum Silicates0210 nano-technologyBacteriaHuman
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Dracocephalum ruyschiana L. (pie Prensas (Antonopole))

1883

Nordischer Drachenkopf: Heidekieferwald bei Presna (Antonopol); Lichte Waldhange bei Nummern (1888.10.07.) /// Ruiša pūķgalve; Atradne: viršu priežu mežs pie Prensas (Antonopole); gaiša meža nogāze pie Numernes. /// Northern Dragon-head, deposit: heather pine forest near Prensa (Antonopole); a bright forest slope near Numerne. [Attēls no LU Muzeja kolekcijas Herbarium Latvicum (RIG II); (BOT1029_21)]

AntonopoleDracocephalum ruyschiananorthern Dragon-head:NATURAL SCIENCES::Biology::Organism biology::Plant physiology [Research Subject Categories]ruiša pūķgalveNordischer DrachenkopfNumerne
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Revista electrónica de investigación y evaluación educativa

2015

Producción Científica

Aprendizajeevaluación formativaEducaciónActitud (Psicología)EducationAlumnos - Evaluaciónproceso de aprendizajeretroalimentación5312.04 EducaciónEvaluación en educaciónEducación superiorComunicaciónestudios universitariosPsicología y educación:PEDAGOGÍA [UNESCO]actitud del alumnoUNESCO::PEDAGOGÍA
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