910 resultados para SnO2 coating


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In the last few years, many reports have been describing promising biocompatible and biodegradable materials that can mimic in a certain extent the multidimensional hierarchical structure of bone, while are also capable of releasing bioactive agents or drugs in a controlled manner. Despite these great advances, new developments in the design and fabrication technologies are required to address the need to engineer suitable biomimetic materials in order tune cells functions, i.e. enhance cell-biomaterial interactions, and promote cell adhesion, proliferation, and differentiation ability. Scaffolds, hydrogels, fibres and composite materials are the most commonly used as biomimetics for bone tissue engineering. Dynamic systems such as bioreactors have also been attracting great deal of attention as it allows developing a wide range of novel in vitro strategies for the homogeneous coating of scaffolds and prosthesis with ceramics, and production of biomimetic constructs, prior its implantation in the body. Herein, it is overviewed the biomimetic strategies for bone tissue engineering, recent developments and future trends. Conventional and more recent processing methodologies are also described.

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Dissertação de mestrado integrado em Engenharia Biomédica (área de especialização em Engenharia Clínica)

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Enzymatic polymerization of aniline was first performed in lignosulfonate (LGS) template system. High-redox-potential catalyst laccase, isolated from Aspergillus, was used as a biocatalyst in the synthesis of conducting polyaniline/lignosulfonate (PANI-ES-LGS) complex using atmospheric oxygen as the oxidizing agent. The linear templates (LGS), also serving as the dopants, could facilitate the directional alignment of the monomer and improve the solubility of the conducting polymer. The process of the polymerization was monitored using UV-Vis spectroscopy, by which the conditions for laccase-catalyzed synthesis of PANI-ES-LGS complex were also optimized. The structure characterizations and solubility of the complex were carried out using corresponding characterization techniques respectively. The PANI-ES-LGS suspensions obtained was used as coating for cotton with a conventional padder to explore the applications of the complex. The variable optoelectronic properties of the coated cotton were confirmed by cyclic voltammetry and color strength test. The molecular weight changes of LGS treated by laccase were also studied to discuss the mechanism of laccase catalyzed aniline polymerization in LGS template system.

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Dissertação de mestrado integrado em Engenharia de Materiais

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Dissertação de mestrado em Sustentabilidade do Ambiente Construído

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The authors acknowledge to Sofia Neves from ICVS for her help in the antibodies selection.

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Tese de Doutoramento (Programa doutoral em Engenharia de Materiais)

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Tese de Doutoramento (Programa Doutoral em Engenharia de Materiais)

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Ag and AgxO thin films were deposited by non-reactive and reactive pulsed DC magnetron sputtering, respectively, with the final propose of functionalizing the SS316L substrate with antibacterial properties. The coatings were characterized chemically, physically and structurally. The coatings nanostructure was assessed by X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS), while the coatings morphology was determined by scanning electron microscopy (SEM). The XRD and XPS analyses suggested that Ag thin film is composed by metallic Ag, which crystallizes in fcc-Ag phase, while the AgxO thin film showed both metallic Ag and Ag-O bonds, which crystalize in fcc-Ag and silver oxide phases. The SEM results revealed that Ag thin film formed a continuous layer, while AgxO layer was composed of islands with hundreds of nanometers surrounded by small nanoparticles with tens of nanometers. The surface wettability and surface tension parameters were determined by contact angle measurements, being found that Ag and AgxO surfaces showed very similar behavior, with all the surfaces showing a hydrophobic character. In order to verify the antibacterial behavior of the coatings, halo inhibition zone tests were realized for Staphylococcus epidermidis and Staphylococcus aureus. Ag coatings did not show antibacterial behavior, contrarily to AgxO coating, which presented antibacterial properties against the studied bacteria. The presence of silver oxide phase along with the development of different morphology were pointed as the main factors in the origin of the antibacterial effect found in AgxO thin film. The present study demonstrated that AgxO coating presented antibacterial behavior and its application in cardiovascular stents is promising.

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Biofilm formation has been pointed as a major concern in different industrial applications, namely on biomedical implants and surgical instruments, which has prompted the development of new strategies for production of efficient antimicrobial surfaces. In this work, nano âgalvanic couples were created to enhance the antibacterial properties of silver, by embedding it into amorphous carbon (a-C) matrix. The developed Ag/a-C nanocomposite coatings, deposited by magnetron sputtering, revealed an outstanding antibacterial activity against S.epidermidis, promoting a total reduction in biofilm formation with no bacteria counts in all dilution. The open circuit potential (OCP) tests in 0.9% NaCl confirmed that a-C shows a positive \OCP\ value, in contrast to Ag coating, thus enhancing the ionization of biocidal Ag+ due to the nano-galvanic couple activation. This result was confirmed by the inductively coupled plasma-optical emission spectroscopy (ICP-OES), which revealed a higher Ag ionization rate in the nanocomposite coating in comparison with the Ag coating. The surface of Ag/a-C and Ag coatings immersed in 0.9% NaCl were monitored by scanning electron microscopy (SEM) over a period of 24 hours, being found that the Ag ionization determined by ICP-OES was accompanied by an Ag nanoparticles coalescence and agglomeration in Ag/a-C coating.

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PhD in Chemical and Biological Engineering

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PhD in Sciences Specialty in Physics

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En este trabajo se trata de elucidar los procesos de oxidación-reducción electroquímica de compuestos orgánico aromáticos. Interesan los productos de reacción y el manejo de las variables externas para lograr la optimización de los que sean de interés. Estos estudios se realizan en medios homogéneos y además en medios bifásicos. Así se estudian procesos de electrodos con sustancias orgánicas en sistemas bifásicos líquido-líquido. Interesan conocer los mecanismos de fotoelectroquímica de moléculas biomiméticas tales como carotenos y porfirinas, principalmente en lo referente a la producción de fotocorriente. También se estudian procesos relacionados a la preparación y obtención de electrodos modificados por sustancias orgánicas poliméricas y electrodos sensores como los de metal-óxido y polímero orgánico-metal polidisperso. Objetivos generales y específicos: Los estudios electroquímicos con sustancias orgánicas comprenden una amplia gama de posibilidades. En este proyecto se estudian procesos de electrodo de diversas sustancias orgánicas donde se trata de dilucidar los mecanismos de los procesos redox en general. En lo particular se estudia el comportamiento electroquímico y fotoelectroquímico de sustancias biomiméticas como son los compuestos carotenoides y porfirinas. Interesa fundamentalmente la producción de fotocorriente obtenidas a través de la fotoexcitación. Se propone analizar la sensibilización de semiconductores (SnO2) por medio de moléculas biomiméticas. Estas últimas actúan como aceptor primario de energía radiante y transfieren un hueco o un electrón desde el estado excitado a las bandas de energía del semiconductor base. También se estudian procesos relacionados con la preparación y obtención de electrodos modificados por sustancias orgánicas poliméricas. En este laboratorio ya se han obtenido varios tipos de polímeros y en este proyecto se propone someterlos a condiciones extremas de potencial y a medios agresivos a fin de determinar este tipo de propiedades. Una de las aplicaciones inmediatas de estos electrodos es utilizarlos como sensores electroquímicos para diversas sustancias orgánicas. Por otro lado se estudian procesos electroquímicos en interfaces líquido/ líquido, pseudofaces (micelas) además de medios homogéneos. Como reacción modelo se utiliza nitración de naftaleno.