7 resultados para Metal nanoparticles

em Universidad Politécnica de Madrid


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A colloidal deposition technique is presented to construct long-range ordered hybrid arrays of self-assembled quantum dots and metal nanoparticles. Quantum dots are promising for novel opto-electronic devices but, in most cases, their optical transitions of interest lack sufficient light absorption to provide a significant impact in their implementation. A potential solution is to couple the dots with localized plasmons in metal nanoparticles. The extreme confinement of light in the near-field produced by the nanoparticles can potentially boost the absorption in the quantum dots by up to two orders of magnitude. In this work, light extinction measurements are employed to probe the plasmon resonance of spherical gold nanoparticles in lead sulfide colloidal quantum dots and amorphous silicon thin-films. Mie theory computations are used to analyze the experimental results and determine the absorption enhancement that can be generated by the highly intense near-field produced in the vicinity of the gold nanoparticles at their surface plasmon resonance. The results presented here are of interest for the development of plasmon-enhanced colloidal nanostructured photovoltaic materials, such as colloidal quantum dot intermediate-band solar cells.

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The Bioinstrumentation Laboratory belongs to the Centre for Biomedical Technology (CTB) of the Technical University of Madrid and its main objective is to provide the scientific community with devices and techniques for the characterization of micro and nanostructures and consequently finding their best biomedical applications. Hyperthermia (greek word for “overheating”) is defined as the phenomenon that occurs when a body is exposed to an energy generating source that can produce a rise in temperature (42-45ºC) for a given time [1]. Specifically, the aim of the hyperthermia methods used in The Bioinstrumentation Laboratory is the development of thermal therapies, some of these using different kinds of nanoparticles, to kill cancer cells and reduce the damage on healthy tissues. The optical hyperthermia is based on noble metal nanoparticles and laser irradiation. This kind of nanoparticles has an immense potential associated to the development of therapies for cancer on account of their Surface Plasmon Resonance (SPR) enhanced light scattering and absorption. In a short period of time, the absorbed light is converted into localized heat, so we can take advantage of these characteristics to heat up tumor cells in order to obtain the cellular death [2]. In this case, the laboratory has an optical hyperthermia device based on a continuous wave laser used to kill glioblastoma cell lines (1321N1) in the presence of gold nanorods (Figure 1a). The wavelength of the laser light is 808 nm because the penetration of the light in the tissue is deeper in the Near Infrared Region. The first optical hyperthermia results show that the laser irradiation produces cellular death in the experimental samples of glioblastoma cell lines using gold nanorods but is not able to decrease the cellular viability of cancer cells in samples without the suitable nanorods (Figure 1b) [3]. The generation of magnetic hyperthermia is performed through changes of the magnetic induction in magnetic nanoparticles (MNPs) that are embedded in viscous medium. The Figure 2 shows a schematic design of the AC induction hyperthermia device in magnetic fluids. The equipment has been manufactured at The Bioinstrumentation Laboratory. The first block implies two steps: the signal selection with frequency manipulation option from 9 KHz to 2MHz, and a linear output up to 1500W. The second block is where magnetic field is generated ( 5mm, 10 turns). Finally, the third block is a software control where the user can establish initial parameters, and also shows the temperature response of MNPs due to the magnetic field applied [4-8]. The Bioinstrumentation Laboratory in collaboration with the Mexican company MRI-DT have recently implemented a new research line on Nuclear Magnetic Resonance Hyperthermia, which is sustained on the patent US 7,423,429B2 owned by this company. This investigation is based on the use of clinical MRI equipment not only for diagnosis but for therapy [9]. This idea consists of two main facts: Magnetic Resonance Imaging can cause focal heating [10], and the differentiation in resonant frequency between healthy and cancer cells [11]. To produce only heating in cancer cells when the whole body is irradiated, it is necessary to determine the specific resonant frequency of the target, using the information contained in the spectra of the area of interest. Then, special RF pulse sequence is applied to produce fast excitation and relaxation mechanism that generates temperature increase of the tumor, causing cellular death or metabolism malfunction that stops cellular division

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Las nanopartículas de metales nobles (especialmente las de oro) tienen un gran potencial asociado al desarrollo de sistemas de terapia contra el cáncer debido principalmente a sus propiedades ópticas, ya que cuando son irradiadas con un haz de luz sintonizado en longitud de onda con su máximo de Resonancia de Plasmón Superficial, absorben de manera muy eficiente dicha luz y la disipan rápidamente al medio en forma de calor localizado. Esta característica por tanto, puede ser aprovechada para conseguir elevar la temperatura de células tumorales hasta sobrepasar umbrales a partir de los cuales se produciría la muerte celular. Partiendo de estos principios, esta tesis se centra en el desarrollo y la caracterización de una serie de prototipos de hipertermia óptica basados en la irradiación de nanopartículas de oro con un haz de luz adecuado, así como en la aplicación in vitro de la terapia sobre células cancerígenas. Además, el trabajo se orienta a identificar y comprender los procesos mecánicos y térmicos asociados a este tipo de hipertermia, y a desarrollar modelos que los describan, estudiando y planteando nuevas formas de irradiación, para, en última instancia, poder optimizar los procesos descritos y hacerlos más efectivos. Los resultados obtenidos indican que, el uso de nanopartículas de oro, y más concretamente de nanorods de oro, para llevar a cabo terapias de hipertermia óptica, permite desarrollar terapias muy efectivas para inducir muerte en células cancerígenas, especialmente en tumores superficiales, o como complemento quirúrgico en tumores internos. Sin embargo, los efectos de la toxicidad de las nanopartículas de oro, aún deben ser detalladamente estudiados, ya que este tipo de terapias sólo será viable si se consigue una completa biocompatibilidad. Por otro lado, el estudio exhaustivo de los procesos térmicos que tienen lugar durante la irradiación de las nanopartículas ha dado lugar a una serie de modelos que permiten determinar la efectividad fototérmica de las nanopartículas y además, visualizar la evolución de la temperatura tanto a escala nanométrica como a escala macrométrica, en función de los parámetros ópticos y térmicos del sistema. El planteamiento de nuevas formas de irradiación y el desarrollo de dispositivos orientados a estudiar los fenómenos mecánicos que tienen lugar durante la irradiación pulsada de baja frecuencia y baja potencia de nanopartículas de oro, ha dado lugar a la detección de ondas de presión asociadas a procesos de expansión termoelástica, abriendo la puerta al desarrollo de terapias de hipertermia que combinen la muerte celular producida por calentamiento con la muerte derivada de los fenómenos mecánicos descritos.VII Noble metal nanoparticles (especially gold ones), have a huge potential in the development of therapy systems against cancer mainly due to their optical properties, so that, when these particles are irradiated with a light that is syntonized in wavelength with their maximum of Surface Plasmon Resonance, they effectively absorb and dissipate the light to the surrounding medium as localized heat. We can take advantage of this characteristic for rising the temperature of cancer cells above the threshold at which cellular death would occur. From these principles, this thesis is oriented to the development and characterization of a series of optical hyperthermia prototypes based on the irradiation of gold nanoparticles using the suitable light, and on the in vitro application of this therapy over cancer cells, to understand the mechanical and thermal processes associated with this kind of hyperthermia, developing descriptive models, and to study and to approach new ways of irradiation in order to, ultimately, optimize the described processes and make them more effective. The obtained results show that, the use of gold nanoparticles, and more specifically, of gold nanorods, to carry out optical hyperthermia therapies, allows the development of very effective therapies in order to induce death in VIII cancer cells, especially in superficial tumors, or like surgical complement in more internal tumors. However, the toxicity effects of the gold nanoparticles still need to be studied more detail, because this kind of therapies will be feasible only if a complete biocompatibility is achieved. On the other hand, the exhaustive study of the thermal processes that take place during the irradiation of the nanoparticles resulted in a series of models that allow the determination of the photothermal efficiency of the nanoparticles and also the visualization of the temperature evolution, both at nanoscale and at macroscale, as a function of the optical and thermal parameters of the system. The proposal of new ways of irradiation and the development of devices oriented to study the mechanical effects that take place during the low frequency and low power pulsing irradiation of gold nanoparticles has led to the detection of pressure waves associated to thermoelastic expansion processes, opening the door to the development of hyperthermia therapies that combine the cellular death due to the heating with the death derived from the described mechanical phenomena.

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Recently, a novel method to trap and pattern ensembles of nanoparticles has been proposed and tested. It relies on the photovoltaic (PV) properties of certain ferroelectric crystals such as LiNbO3 [1,2]. These crystals, when suitably doped, develop very high electric fields in response to illumination with light of suitable wavelength. The PV effect lies in the asymmetrical excitation of electrons giving rise to PV currents and associated space-charge fields (photorefractive effect). The field generated in the bulk of the sample propagates to the surrounding medium as evanescent fields. When dielectric or metal nanoparticles are deposited on the surface of the sample the evanescent fields give rise to either electrophoretic or dielectrophoretic forces, depending on the charge state of the particles, that induce the trapping and patterning effects [3,4]. The purpose of this work has been to explore the effects of such PV fields in the biology and biomedical areas. A first work was able to show the necrotic effects induced by such fields on He-La tumour cells grown on the surface of an illuminated iron-doped LiNbO3 crystal [5]. In principle, it is conceived that LiNbO3 nanoparticles may be advantageously used for such biomedical purposes considering the possibility of such nanoparticles being incorporated into the cells. Previous experiments using microparticles have been performed [5] with similar results to those achieved with the substrate. Therefore, the purpose of this work has been to fabricate and characterize the LiNbO3 nanoparticles and assess their necrotic effects when they are incorporated on a culture of tumour cells. Two different preparation methods have been used: 1) mechanical grinding from crystals, and 2) bottom-up sol-gel chemical synthesis from metal-ethoxide precursors. This later method leads to a more uniform size distribution of smaller particles (down to around 50 nm). Fig. 1(a) and 1(b) shows SEM images of the nanoparticles obtained with both method. An ad hoc software taking into account the physical properties of the crystal, particullarly donor and aceptor concentrations has been developped in order to estimate the electric field generated in noparticles. In a first stage simulations of the electric current of nanoparticles, in a conductive media, due to the PV effect have been carried out by MonteCarlo simulations using the Kutharev 1-centre transport model equations [6] . Special attention has been paid to the dependence on particle size and [Fe2+]/[Fe3+]. First results on cubic particles shows large dispersion for small sizes due to the random number of donors and its effective concentration (Fig 2). The necrotic (toxicity) effect of nanoparticles incorporated into a tumour cell culture subjected to 30 min. illumination with a blue LED is shown in Fig.3. For each type of nanoparticle the percent of cell survival in dark and illumination conditions has been plot as a function of the particle dilution factor. Fig. 1a corresponds to mechanical grinding particles whereas 1b and 1c refer to chemically synthesized particles with two oxidation states. The light effect is larger with mechanical grinding nanoparticles, but dark toxicity is also higher. For chemically synthesized nanoparticles dark toxicity is low but only in oxidized samples, where the PV effect is known to be larger, the light effect is appreciable. These preliminary results demonstrate that Fe:LiNbO· nanoparticles have a biological damaging effect on cells, although there are many points that should be clarified and much space for PV nanoparticles optimization. In particular, it appears necessary to determine the fraction of nanoparticles that become incorporated into the cells and the possible existence of threshold size effects. This work has been supported by MINECO under grant MAT2011-28379-C03.

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1D and 2D patterning of uncharged micro- and nanoparticles via dielectrophoretic forces on photovoltaic z-cut Fe:LiNbO3 have been investigated for the first time. The technique has been successfully applied with dielectric micro-particles of CaCO3 (diameter d = 1-3 μm) and metal nanoparticles of Al (d = 70 nm). At difference with previous experiments in x- and y-cut, the obtained patterns locally reproduce the light distribution with high fidelity. A simple model is provided to analyse the trapping process. The results show the remarkably good capabilities of this geometry for high quality 2D light-induced dielectrophoretic patterning overcoming the important limitations presented by previous configurations.

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1D and 2D patterning of uncharged micro- and nanoparticles via dielectrophoretic forces on photovoltaic z-cut Fe:LiNbO3 have been investigated for the first time. The technique has been successfully applied with dielectric micro-particles of CaCO3 (diameter d = 1-3 ?m) and metal nanoparticles of Al (d = 70 nm). At difference with previous experiments in x- and y-cut, the obtained patterns locally reproduce the light distribution with high fidelity. A simple model is provided to analyse the trapping process. The results show the remarkably good capabilities of this geometry for high quality 2D light-induced dielectrophoretic patterning overcoming the important limitations presented by previous configurations.

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Polymer/inorganic nanoparticle nanocomposites have garnered considerable academic and industrial interest over recent decades in the development of advanced materials for a wide range of applications. In this respect, the dispersion of so-called inorganic fullerene-like (IF) nanoparticles, e.g., tungsten disulfide (IF-WS2) or molybdenum disulfide (IF-MoS2), into polymeric matrices is emerging as a new strategy. The surprising properties of these layered metal dichalcogenides such as high impact resistance and superior tribological behavior, attributed to their nanoscale size and hollow quasi-spherical shape, open up a wide variety of opportunities for applications of these inorganic compounds. The present work presents a detailed overview on research in the area of IF-based polymer nanocomposites, with special emphasis on the use of IF-WS2 nanoparticles as environmentally friendly reinforcing fillers. The incorporation of IF particles has been shown to be efficient for improving thermal, mechanical and tribological properties of various thermoplastic polymers, such as polypropylene, nylon-6, poly(phenylene sulfide), poly(ether ether ketone), where nanocomposites were fabricated by simple melt-processing routes without the need for modifiers or surfactants. This new family of nanocomposites exhibits similar or enhanced performance when compared with nanocomposites that incorporate carbon nanotubes, carbon nanofibers or nanoclays, but are substantially more cost-effective, efficient and environmentally satisfactory. Most recently, innovative approaches have been described that exploit synergistic effects to produce new materials with enhanced properties, including the combined use of micro- and nanoparticles such as IF-WS2/nucleating agent or IF-WS2/carbon fiber, as well as dual nanoparticle systems such as SWCNT/IF-WS2 where each nanoparticle has different characteristics. The structure–property relationships of these nanocomposites are discussed and potential applications proposed ranging from medicine to the aerospace, automotive and electronics industries.