1000 resultados para Materials -- Propietats magnètiques


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Proyecto de investigación de una estancia en el Centro de Física Aplicada y Tecnologia Avanzada de la Universidad Nacional Autónoma de México, Méjico, entre junio y septiembre del 2007. Diseño de nuevos materiales con aplicaciones avanzadas mediante la mezcla íntima de materiales nanométricos (nanopartículas y macromoléculas). El tipo de posibles aplicaciones de tales materiales van desde la fotovoltaica, a la magnetorresistencia (mezcla de polímeros conductores y nanopartículas magn-eticas –objetivo 1 de éste proyecto-), la óptica, la Catálisis, y el drug delivery (utilizando las nanopartículas adheridas a la cápsula de liberación como marcadores y como localizadores mediante campos electromagnéticos, controlando su permeabilidad a voluntad –objetivo 2- de éste proyecto ) entre otras.

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In this report we present the growth process of the cobalt oxide system using reactive electron beam deposition. In that technique, a target of metallic cobalt is evaporated and its atoms are in-flight oxidized in an oxygen rich reactive atmosphere before reaching the surface of the substrate. With a trial and error procedure the deposition parameters have been optimized to obtain the correct stoichiometry and crystalline phase. The evaporation conditions to achieve the correct cobalt oxide salt rock structure, when evaporating over amorphous silicon nitride, are: 525 K of substrate temperature, 2.5·10-4 mbar of oxygen partial pressure and 1 Å/s of evaporation rate. Once the parameters were optimized a set of ultra thin film ranging from samples of 1 nm of nominal thickness to 20nm thick and bulk samples were grown. With the aim to characterize the samples and study their microstructure and morphology, X-ray diffraction, transmission electron microscopy, electron diffraction, energy dispersive X-ray spectroscopy and quasi-adiabatic nanocalorimetry techniques are utilised. The final results show a size dependent effect of the antiferromagnetic transition. Its Néel temperature becomes depressed as the size of the grains forming the layer decreases.

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Degut a la gran demanda tecnològica, actualment hi ha un gran interès en desenvolupar medis magnètics amb entitats ferromagnètiques de dimensions nanomètriques. Aquesta demanda promou la investigació i el desenvolupament de nous materials i processos de fabricació que permetin controlar d’una manera més precisa les propietats magnètiques i estructurals. Entre els mètodes de litografia convencionals (per exemple deposició física a través de màscares, deposició química en fase vapor i electrodeposició), recentment s’ha demostrat que la irradiació amb ions a través de màscares pre‐litografiades, sembla ser un bon mètode per a la fabricació d’estructures ferromagnètiques de l’ordre dels nanòmetres. Aquesta tècnica pot ser aplicada per aprofitar la transició paramagnètica‐ferromagnètica que presenten alguns materials al ser desordenats estructuralment (per exemple FeAl, FePt3, Ni3Sn2). En el treball que es presenta a continuació s’utilitza l’aliatge Fe60Al40 per a fabricar estructures ferromagnètiques embegudes en una matriu paramagnètica mitjançant irradiació amb ions d’argó a través d’una membrana de polimetil metacrilat (PMMA) prèviament litografiada amb feixos d’electrons (EBL). La fabricació d’aquest sistema té com a objectiu d’estudiar l’evolució de la morfologia i el gruix de PMMA (a partir de SEM i AFM) i del comportament magnètic de les estructures fabricades (MFM i MOKE), quan és irradiat consecutivament a diferents energies. Per a completar l’estudi s’han utilitzat simulacions per a determinar les condicions d’irradiació (TRIM), com per a una millor comprensió dels resultats (simulacions micromagnètiques). El contingut de la memòria inclou una breu introducció històrica i conceptual sobre el magnetisme. A continuació s’exposen les tècniques necessàries per a la fabricació, preparació i caracterització de la mostra. Finalment es presenta una discussió dels resultats obtinguts i les conclusions.

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Co-Ti-Sn-Ge substituted M-type bariumhexaferrite powders with mean grain sizes between about 10 nm and about 1 ¿m and a narrow size distribution were prepared reproducibly by means of a modified glass crystallization method. At annealing temperatures between 560 and 580°C of the amorphous flakes nanocrystalline particles grow. They behave superparamagnetically at room temperature and change into stable magnetic single domains at lower temperatures. The magnetic volume of the powders is considerably less than the geometric one. However, the effective anisotropy fields are larger by a Factor of two to three.

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A study of the magneto-optical (MO) spectral response of Co nanoparticles embedded in MgO as a function of their size and concentration in the spectral range from 1.4 to 4.3 eV is presented. The nanoparticle layers were obtained by sputtering at different deposition temperatures. Transmission electron microscopy measurements show that the nanoparticles have a complex structure which consists of a crystalline core having a hexagonal close-packed structure and an amorphous crust. Using an effective-medium approximation we have obtained the MO constants of the Co nanoparticles. These MO constants are different from those of continuous Co layers and depend on the size of the crystalline core. We associate these changes with the size effect of the intraband contribution to the MO constants, related to a reduction of the relaxation time of the electrons into the nanoparticles.

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Epitaxial Fe/MgO heterostructures have been grown on Si(001) by a combination of sputtering and laser ablation deposition techniques. The growth of MgO on Si(001) is mainly determined by the nature of the interface, with large lattice mismatch and the presence of an amorphous layer of unclear origin. Reflection high energy electron diffraction patterns of this MgO buffer layer are characteristic of an epitaxial, but disordered, structure. The structural quality of subsequent Fe and MgO layers continuously improves due to the better lattice match and the burial of defects. A weak uniaxial in-plane magnetic anisotropy is found superimposed on the expected cubic biaxial anisotropy. This additional anisotropy, of interfacial nature and often found in Fe/MgO and Fe/MgO/GaAs(001) systems, is less intense here due to the poorer MgO/Si interface quality compared with that of other systems. From the evolution of the anisotropy field with film thickness, magnetic anisotropy is also found to depend on the crystal quality. Kerr measurements of a Fe/MgO multilayered structure grown on Si show two different switching fields, suggesting magnetic coupling of two of the three Fe layers. Nevertheless, due to the little sensitivity to the bottom Fe film, independent switching of the three layers cannot be ruled out.

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We report on measurements of the adiabatic temperature change in the inverse magnetocaloric Ni50Mn34In16 alloy. It is shown that this alloy heats up with the application of a magnetic field around the Curie point due to the conventional magnetocaloric effect. In contrast, the inverse magnetocaloric effect associated with the martensitic transition results in the unusual decrease of temperature by adiabatic magnetization. We also provide magnetization and specific heat data which enable to compare the measured temperature changes to the values indirectly computed from thermodynamic relationships. Good agreement is obtained for the conventional effect at the second-order paramagnetic-ferromagnetic phase transition. However, at the first-order structural transition the measured values at high fields are lower than the computed ones. Irreversible thermodynamics arguments are given to show that such a discrepancy is due to the irreversibility of the first-order martensitic transition.

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Intensive numerical studies of exact ground states of the two-dimensional ferromagnetic random field Ising model at T=0, with a Gaussian distribution of fields, are presented. Standard finite size scaling analysis of the data suggests the existence of a transition at ¿c=0.64±0.08. Results are compared with existing theories and with the study of metastable avalanches in the same model.

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We have studied the effect of heat treatment on the magnetic properties and on the martensitic transition of the Ni50Mn30Al20 alloy. A mixed L21+B2 state is obtained in the as-prepared sample, while no L21 order is retained in the sample quenched from high temperature. For the two heat treatments, the samples order antiferromagnetically, but there is evidence of coexisting ferromagnetic interactions. A martensitic transition occurs below the magnetic one for quenched samples. However, the martensitic transition is inhibited in the as-prepared sample.