587 resultados para NANOPARTÍCULAS
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Dissertação de mestrado em Química Medicinal
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La tecnología actual ha permitido que en los últimos años la nanociencia y la nanotecnología sean puntos críticos en el desarrollo del conocimiento. En estos momentos se desarrollan sistemas de dimensiones nanométricas que son interesantes debido a sus potenciales aplicaciones en diferentes ámbitos como en química, física, biología, materiales, medicina, cosmética... Dentro de estos sistemas nanoscópicos se encuentran las nanopartículas, estructuras con un tamaño inferior a los 100nm de longitud. En esta clasificación existen a su vez diferentes categorías, como las nanopartículas metálicas, semiconductoras, magnéticas, etc. y es exactamente en esta última tipoogía donde se centra este estudio. Este proyecto de investigación desarrolla la síntesis de magnetita (Fe3O4), ferrita de cobalto (CoFe2O4) y ferrita de cobre (CuFe2O4) con la finalidad de utilizarlas como dopante en superconductores. El método sintético utilizado es del tipo solvotérmico y se lleva a cabo en trietilenglicol, el cual actúa a la vez como disolvente y como estabilizante de las nanopartículas. Las partículas así obtenidas son dispersables en medios polares como el etanol absoluto. Los precursores de este método sintético son los respectivos acetilacetonatos metálicos debido a que el ligando orgánico descompone en productos volátiles. Existen diferentes factores que afectan a la síntesis, tales como la velocidad de ascenso de la temperatura, la agitación, la presencia de agua, la temperatura de descomposición de los precursores, etc. Algunos de estos factores han sido estudiados con detalle y aplicados con tal de optimizar el método experimental. Las nanopartículas sintetizadas han sido analizadas mediante diversas técnicas físicas con tal de establecer diferentes parámetros, tales como su composición fnal, su pureza, su estructura, sus propiedades magnéticas, etc. Estas técnicas son diversas: desde la espectroscopia infrarroja hasta medidas mediante SQUID, pasando por rayos X, microscopía electrónica y termogravimetría. Los resultados han sido favorables en la síntesis de la magnetita y también en la ferrita de cobalto, ya que las nanopartículas obtenidas son homogéneas, fácilmente dispersables en algoholes, estables por largos períodos de teimpo, rápidas de sintetizar, etc. El único problema observado ha sido la síntesis de ferrita de cobre la cual se ha de optimizar, ya que el producto final ha resultado ser una mezcla de tres compuesto diferentes.
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Esta memoria de investigación es producto del trabajo experimental que se realizó con resinas de intercambio iónico para la síntesis intermatricial de nanopartículas metálicas de Co y Pd. Los estudios que se realizaron correspondieron a la iniciación en esta modalidad de síntesis de nanopartículas. En ellos se contemplaron las propiedades intrínsecas de la resina como: la capacidad de intercambio iónico, y funcionalidad química, tanto antes como después de la síntesis. Uno de los objetivos es que la resina no pierda ninguna de sus propiedades originales, sino que gane más versatilidad. La importancia que tienen en la actualidad los materiales nanométricos inspira a su modificación y nuevas formas de producción. Con esta investigación se inicia el trabajo de cara a los estudios doctorales. Aquí se estudia la aplicación de las nanopartículas de paladio y cobalto soportadas en resinas de intercambio iónico. Las nanopartículas de paladio tienen aplicación en el área de catálisis, y en su síntesis intermatricial, se consigue un catalizador heterogéneo, que brinda gran facilidad de recuperarlo y proceder con varios ciclos catalíticos. Así mismo, con el cobalto se pretendió otorgar propiedades ferromagnéticas, de manera que el proceso de separación de la resina de los medios de reacción, sea tan fácil como la aplicación de un campo magnético o pasar un imán sobre el lugar en cuestión.
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Este trabajo se basa en la elaboración de nanocompuestos (con nanopartículas de Ag) con propiedades catalíticas efectivas aplicando la Síntesis Intermatricial sobre espuma de poliuretano comercial como matriz estabilizadora y medio de reacción. Encontrándose que las espumas muestran actividad catalítica en la reducción del p-nitrofenol con NaBH4 en experimentos en batch y experimentos con flujo, siendo siempre necesario un tiempo de activación que dé inicio a la reacción catalítica. En experimentos de catálisis con flujo, fue posible realizar ciclos de catálisis (hasta 5) manteniéndose la eficiencia catalítica del material y su reutilización. También se observó que al aumentar el caudal de trabajo aumentaba la eficiencia y disminuía el tiempo de activación.
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Nickel nanoparticles supported on amorphous silica ceramic matrix were synthesized by the polymeric precursor method. The nanostructure was characterized by NMR, BET, XRD, SEM, TEM, and flame atomic absorption spectrometry techniques. It was observed a dependence of the crystallite size on the thermal annealing, under a N2 atmosphere. The materials presented a high catalytic activity and selectivity upon the beta-pinene hydrogenation reaction. The magnetic hystereses were also correlated with the morphology of the processed material.
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Fuel cells are attracting much interest as efficient and clean energy conversion devices. The main components of low temperature fuel cells are the electrocatalysts used to promote the anodic and cathodic reactions, which are based on platinum and platinum alloys. These electrocatalysts are normally prepared in the form of metal nanoparticles supported on a conductive material, usually high surface area carbon, to improve catalyst utilization and reduce cost. This work presents and comments some methods used presently to produce these electrocatalysts. The performances of the produced electrocatalysts are compared to that of state-of-the-art commercial E-TEK electrocatalysts.
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Ca1-xLa xTiO3 powders were prepared by the polymeric precursor method. X-ray diffraction (XRD), FT-Raman spectroscopy, transmission electron microscopy (TEM), and N2 and CO2 adsorption were used for the microstructural and surface characterization of the powders. Room temperature photoluminescence (PL) was observed in Ca1-xLa xTiO3 amorphous particles. The PL intensity of these powders was found to be dependent on the lanthanum molar concentration.
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The structural characterization of molecules used in the sterilization of blood for transfusions, such as crystal violet (CV), is relevant for understanding the action of these prophylactic drugs. The characterization is feasible by surface enhanced resonance Raman spectroscopy (SERRS) of CV in solution or on surfaces. The limit of detection of CV by SERRS, in the presence of colloidal particles, using 514.5 nm as excitation radiation, was found to be around 1 ppb. The characterization of CV was also made by SERS, by using different active-particles-containing substrates, proving the versatility of this technique for the study of such structures. The results suggest that the controlled production of highly efficient SERS-active substrates may allow qualitative and quantitative analysis, with high sensitivity, with potential applications in medical and environmental fields.
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In this work were prepared composites of iron oxide and carbonaceous materials in two different weight proportions (Carbon/Fe 1/1 and 1/2). The physico-chemical properties of the composites were determined by temperature programmed reduction (TPR), adsorption/dessorption of N2, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS) and pulse titration H2. The XRD and XPS analysis showed a cubic iron oxide phase, identified as maghemite, formed over the carbon surface. The particle size of maghemite showed to be within 10-30 nm. Carbon/Fe 1/2 was the most active in MB removal kinetics and ESI-MS studies showed that MB removal by both composites leads to oxidized intermediates.
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Studies about the inorganic nanoparticles applying for non-viral release of biological and therapeutic species have been intensified nowadays. This work reviews the preparation strategies and application of layered double hydroxides (LDH) as carriers for storing, carrying and control delivery of intercalated species as drugs and DNA for gene therapy. LDH show low toxicity, biocompatibility, high anion exchange capacity, surface sites for functionalization, and a suitable equilibrium between chemical stability and biodegradability. LDH can increase the intercalated species stability and promote its sub-cellular uptake for biomedical purposes. Concerning the healthy field, LDH have been evaluated for clinical diagnosis as a biosensor component.
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Iron oxide nanoparticles were synthesized in microemulsion systems composed by Triton X-100/hexyl alcohol/cyclohexane/aqueous solution. The nanoparticles were synthesized in microemulsions containing different amounts of ammonium, in order to evaluate the influence of this parameter on the size of the nanoparticles and on the phase transformation after heat treatment. Powder materials were obtained after centrifugation, washing and drying, and they were analyzed as synthesized and after heating at 350, 500 and 1000 °C. It was observed that the higher amount of ammonium induced smaller particles and minor phase transformation, possibly due to a preferential nucleation process.
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Silver nanoparticles (AgNPs) were prepared by means of the polyol method in the absence of stabilizing polymers. To accomplish this objective, AgNO3 was added to ethylene glycol in the presence of NaOH (1 mol.L-1), the suspension formed was irradiated with a microwave source for 60 seconds at a power of 465 watts. It was found that under these conditions AgNPs of sizes between 4-18 nm are formed. Also the results indicate that part of the ethylene glycol is oxidized to carbonyl compounds that reduce the Ag+. These organic compounds are adsorbed on the surfaces of AgNPs, forming a protective film that prevents their aggregation.
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In this paper, we describe the preparation of alginate nanoparticles as a delivery system for the herbicide clomazone. Two different methods were investigated and characterized by size distribution, zeta potencial, pH and in vitro release. The alginate/AOT nanoparticles had higher rates of association of the herbicide clomazone than alginate/chitosan nanoparticles. Clomazone release profile, showed a significant difference in release behavior of pure herbicide in solution when compared with herbicide loaded in both alginate nanoparticles. This study is important to construct a biodegradable release system using herbicide for later release into more specific targets, avoiding contamination of environmental matrices.
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The post-preparative size-selective precipitation technique was applied in CdTe and CdSe semiconductor nanocrystals prepared via colloidal route in water. The synthesis of CdTe and CdSe nanoparticles and the effect of the post-preparative size-selective precipitation have been characterized mainly by mean of ultraviolet and visible absorption spectroscopy (UV-Vis). It was demonstrated that the size-selective precipitation are able to isolate particles of different sizes and purify the nanoparticles as well.
Incorporação de líquidos iônicos e nanopartículas metálicas na construção de sensores eletroquímicos
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The most relevant advances on analytical applications of ionic liquids (IL) as binder in the construction of electrochemical sensors and biosensors based on carbon paste are presented. This new class of solvents - the IL - has received great attention in electroanalytical researches due to the excellent physical and chemical properties of these materials, such as high conductivity, low toxicity, good stability, large electrochemical window and catalytic ability. Recently, the interest in electrodes modified with IL, especially when combined with metallic nanoparticles, has increased expressively due to improve the sensitivity and others advantages discussed in this review.