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Epitaxial YBa2Cu3O7−x nanocomposite thin films from colloidal solutions. Preview this item
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Epitaxial YBa2Cu3O7−x nanocomposite thin films from colloidal solutions.

Author: P CayadoK De KeukeleereA GarzónL Perez-MirabetA MeledinAll authors
Publisher: [Bristol, UK] : IOP Publishing, 2015.
Edition/Format:   Downloadable article : Document   Computer File : English
Publication:Superconductor science & technology
Summary:
Abstract: A methodology of general validity to prepare epitaxial nanocomposite films based on the use of colloidal solutions containing different crystalline preformed oxide nanoparticles ( ex situ nanocomposites) is reported. The trifluoroacetate (TFA) metal-organic chemical solution deposition route is used with alcoholic solvents to grow epitaxial YBa2 Cu3 O7 (YBCO) films. For this reason stabilizing oxide  Read more...
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Details

Material Type: Document, Internet resource
Document Type: Internet Resource, Article, Computer File
All Authors / Contributors: P Cayado; K De Keukeleere; A Garzón; L Perez-Mirabet; A Meledin; J De Roo; F Vallés; B Mundet; H Rijckaert; G Pollefeyt; M Coll; S Ricart; A Palau; J Gázquez; J Ros; G Van Tendeloo; I Van Driessche; T Puig; X Obradors
ISSN:0953-2048
OCLC Number: 1051983108
Notes: In: Superconductor science & technology, Vol. 28, no. 12 (Dec. 2015), p.-
Description: 1 online resource

Abstract:

Abstract: A methodology of general validity to prepare epitaxial nanocomposite films based on the use of colloidal solutions containing different crystalline preformed oxide nanoparticles ( ex situ nanocomposites) is reported. The trifluoroacetate (TFA) metal-organic chemical solution deposition route is used with alcoholic solvents to grow epitaxial YBa2 Cu3 O7 (YBCO) films. For this reason stabilizing oxide nanoparticles in polar solvents is a challenging goal. We have used scalable nanoparticle synthetic methodologies such as thermal and microwave-assisted solvothermal techniques to prepare CeO2 and ZrO2 nanoparticles. We show that stable and homogeneous colloidal solutions with these nanoparticles can be reached using benzyl alcohol, triethyleneglycol, nonanoic acid, trifluoroacetic acid or decanoic acid as protecting ligands, thereby allowing subsequent mixing with alcoholic TFA solutions. An elaborate YBCO film growth analysis of these nanocomposites allows the identification of the different relevant growth phenomena, e.g. nanoparticles pushing towards the film surface, nanoparticle reactivity, coarsening and nanoparticle accumulation at the substrate interface. Upon mitigation of these effects, YBCO nanocomposite films with high self-field critical currents ( J c ∼3-4 MA cm −2 at 77 K) were reached, indicating no current limitation effects associated with epitaxy perturbation, while smoothed magnetic field dependences of the critical currents at high magnetic fields and decreased effective anisotropic pinning behavior confirm the effectiveness of the novel developed approach to enhance vortex pinning. In conclusion, a novel low cost solution-derived route to high current nanocomposite superconducting films and coated conductors has been developed with very promising features.

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Pollefeyt<\/span>\n\u00A0\u00A0\u00A0\nschema:datePublished<\/a> \"2015<\/span>\" ;\u00A0\u00A0\u00A0\nschema:description<\/a> \"Abstract: A methodology of general validity to prepare epitaxial nanocomposite films based on the use of colloidal solutions containing different crystalline preformed oxide nanoparticles ( ex situ nanocomposites) is reported. The trifluoroacetate (TFA) metal-organic chemical solution deposition route is used with alcoholic solvents to grow epitaxial YBa2 Cu3 O7 (YBCO) films. For this reason stabilizing oxide nanoparticles in polar solvents is a challenging goal. We have used scalable nanoparticle synthetic methodologies such as thermal and microwave-assisted solvothermal techniques to prepare CeO2 and ZrO2 nanoparticles. We show that stable and homogeneous colloidal solutions with these nanoparticles can be reached using benzyl alcohol, triethyleneglycol, nonanoic acid, trifluoroacetic acid or decanoic acid as protecting ligands, thereby allowing subsequent mixing with alcoholic TFA solutions. An elaborate YBCO film growth analysis of these nanocomposites allows the identification of the different relevant growth phenomena, e.g. nanoparticles pushing towards the film surface, nanoparticle reactivity, coarsening and nanoparticle accumulation at the substrate interface. Upon mitigation of these effects, YBCO nanocomposite films with high self-field critical currents ( J c \u223C3-4 MA cm \u22122 at 77 K) were reached, indicating no current limitation effects associated with epitaxy perturbation, while smoothed magnetic field dependences of the critical currents at high magnetic fields and decreased effective anisotropic pinning behavior confirm the effectiveness of the novel developed approach to enhance vortex pinning. 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<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Person\/rijckaert_h<\/a>> # H. Rijckaert<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Person<\/a> ;\u00A0\u00A0\u00A0\nschema:familyName<\/a> \"Rijckaert<\/span>\" ;\u00A0\u00A0\u00A0\nschema:givenName<\/a> \"H.<\/span>\" ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"H. Rijckaert<\/span>\" ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Person\/ros_j<\/a>> # J. Ros<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Person<\/a> ;\u00A0\u00A0\u00A0\nschema:familyName<\/a> \"Ros<\/span>\" ;\u00A0\u00A0\u00A0\nschema:givenName<\/a> \"J.<\/span>\" ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"J. Ros<\/span>\" ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
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<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Person\/van_driessche_i<\/a>> # I. Van Driessche<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Person<\/a> ;\u00A0\u00A0\u00A0\nschema:familyName<\/a> \"Van Driessche<\/span>\" ;\u00A0\u00A0\u00A0\nschema:givenName<\/a> \"I.<\/span>\" ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"I. Van Driessche<\/span>\" ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Person\/van_tendeloo_g<\/a>> # G. Van Tendeloo<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Person<\/a> ;\u00A0\u00A0\u00A0\nschema:familyName<\/a> \"Van Tendeloo<\/span>\" ;\u00A0\u00A0\u00A0\nschema:givenName<\/a> \"G.<\/span>\" ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"G. Van Tendeloo<\/span>\" ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Topic\/superconductivity<\/a>> # Superconductivity<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Intangible<\/a> ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"Superconductivity<\/span>\"@en<\/a> ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
<http:\/\/experiment.worldcat.org\/entity\/work\/data\/5437655897#Topic\/superconductors<\/a>> # Superconductors<\/span>\n\u00A0\u00A0\u00A0\u00A0a \nschema:Intangible<\/a> ;\u00A0\u00A0\u00A0\nschema:name<\/a> \"Superconductors<\/span>\"@en<\/a> ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
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<http:\/\/worldcat.org\/issn\/0953-2048<\/a>>\u00A0\u00A0\u00A0\u00A0a \nschema:Periodical<\/a> ;\u00A0\u00A0\u00A0\nrdfs:label<\/a> \"Superconductor science & technology<\/span>\" ;\u00A0\u00A0\u00A0\nschema:issn<\/a> \"0953-2048<\/span>\" ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n
<http:\/\/www.worldcat.org\/title\/-\/oclc\/1051983108<\/a>>\u00A0\u00A0\u00A0\u00A0a \ngenont:InformationResource<\/a>, genont:ContentTypeGenericResource<\/a> ;\u00A0\u00A0\u00A0\nschema:about<\/a> <http:\/\/www.worldcat.org\/oclc\/1051983108<\/a>> ; # Epitaxial YBa2Cu3O7\u2212x nanocomposite thin films from colloidal solutions.<\/span>\n\u00A0\u00A0\u00A0\nschema:dateModified<\/a> \"2019-09-19<\/span>\" ;\u00A0\u00A0\u00A0\nvoid:inDataset<\/a> <http:\/\/purl.oclc.org\/dataset\/WorldCat<\/a>> ;\u00A0\u00A0\u00A0\u00A0.\n\n\n<\/div>\n\n

Content-negotiable representations<\/p>\n