419 research outputs found

    Effect of high-intensity ultrasound on superconducting properties of polycrystalline YBCO

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    High intensity ultrasonic irradiation (sonication) of alkane slurries of polycrystalline \ybco leads to a significant modification of the grain morphology and, if performed with enforced oxygen flow, results in the increase of the superconducting transition temperature. Sonication with added Fe(CO)5_5 produces magnetic \fe2o3 nanoparticles deposited on the surface of \ybco (YBCO) granules. Upon sintering these nanoparticles should act as efficient pinning centers utilizing both condensation and magnetic contributions to the free energy. The developed method could become a major technique to produce practically useful high-pinning nanocomposite materials based on \ybco superconductor.Comment: to be presented at LT-25 conferenc

    Campbell Penetration Depth of a Superconductor in the Critical State

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    The magnetic penetration depth λ(T,H,j)\lambda(T,H,j) was measured in the presence of a slowly relaxing supercurrent, jj. In single crystal Bi2Sr2CaCu2O8\mathrm{Bi_2Sr_2CaCu_2O_8} below approximately 25 K, λ(T,H,j)\lambda(T,H,j) is strongly hysteretic. We propose that the irreversibility arises from a shift of the vortex position within its pinning well as jj changes. The Campbell length depends upon the ratio j/jcj/j_{c} where jcj_{c} is the critical current defined through the Labusch parameter. Similar effects were observed in other cuprates and in an organic superconductor

    Off-axis electron holography of bacterial cells and magnetic nanoparticles in liquid

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    The mapping of electrostatic potentials and magnetic fields in liquids usingelectron holography has been considered to be unrealistic. Here, we showthat hydrated cells ofMagnetospirillum magneticumstrain AMB-1 and assem-blies of magnetic nanoparticles can be studied using off-axis electronholography in a fluid cell specimen holder within the transmission electronmicroscope. Considering that the holographic object and reference waveboth pass through liquid, the recorded electron holograms show sufficientinterference fringe contrast to permit reconstruction of the phase shift ofthe electron wave and mapping of the magnetic induction from bacterialmagnetite nanocrystals. We assess the challenges of performingin situmagne-tization reversal experiments using a fluid cell specimen holder, discussapproaches for improving spatial resolution and specimen stability, and outlinefuture perspectives for studying scientific phenomena, ranging from interpar-ticle interactions in liquids and electrical double layers at solid–liquidinterfaces to biomineralization and the mapping of electrostatic potentialsassociated with protein aggregation and folding

    Magnetic irreversibility and Verwey transition in nano-crystalline bacterial magnetite

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    The magnetic properties of biologically-produced magnetite nanocrystals biomineralized by four different magnetotactic bacteria were compared to those of synthetic magnetite nanocrystals and large, high quality single crystals. The magnetic feature at the Verwey temperature, TVT_{V}, was clearly seen in all nanocrystals, although its sharpness depended on the shape of individual nanoparticles and whether or not the particles were arranged in magnetosome chains. The transition was broader in the individual superparamagnetic nanoparticles for which TB<TVT_{B}<T_{V}, where TBT_{B} is the superparamagnetic blocking temperature. For the nanocrystals organized in chains, the effective blocking temperature TB>TVT_{B}>T_{V} and the Verwey transition is sharply defined. No correlation between the particle size and TVT_{V} was found. Furthermore, measurements of M(H,T,time)M(H,T,time) suggest that magnetosome chains behave as long magnetic dipoles where the local magnetic field is directed along the chain and this result confirms that time-logarithmic magnetic relaxation is due to the collective (dipolar) nature of the barrier for magnetic moment reorientation
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