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   <dc:title>Control of Superconductivity in Cuprate/Manganite Heterostructures</dc:title>
   <dc:identifier xsi:type="dcterms:DOI">10.17863/CAM.14201</dc:identifier>
   <dc:creator>Pang, Brian SiewHan</dc:creator>
   <dcterms:abstract>Research has shown that the spin alignment in an adjacent ferromagnet is capable of suppressing&#xd;
superconductivity. In this project, devices incorporating cuprate/manganite heterostuctres&#xd;
were successfully fabricated to study the eﬀects of spin transport on the high temperature superconductor,&#xd;
YBCO. Deposition of such oxide ferromagnet/superconductor(F/S) multilayers&#xd;
using the ‘eclipse’ pulsed laser deposition(PLD) technique was also examined. Reproducible multilayers&#xd;
with ultrathin repeats were deposited, which exhibited superconducting and magnetic&#xd;
properties to minimum thicknesses of 3nm for both YBCO and LSMO.&#xd;
Using spin injection, via a ferromagnet, to create a spin imbalance in the superconductor, a&#xd;
suppression of superconducting critical current was observed with increasing injection current.&#xd;
However, the exact cause of this suppression could not be solely attributed to spin-induced nonequilibrium&#xd;
eﬀects, as it proved diﬃcult to eliminate the eﬀects of localized heating, current&#xd;
summation and magnetic ﬁeld. Interfacial studies of the device junction provided evidence of&#xd;
an alternative currnent path at the interface.&#xd;
The control of superconductivity was also examined using F/S proximity eﬀects, which improves&#xd;
the understanding of how magnetic and superconducting materials coexist. We observed&#xd;
that oxide F/S samples deposited by high O2 sputtering [1] and ‘eclipse’ PLD were similar, and&#xd;
that Tc was clearly more suppressed in F/S compared to N(normal metal)/S systems. However,&#xd;
the magnetic moment and exchange coupling, two magnetic properties of signiﬁcance in ferromagnets,&#xd;
did not, individually, have a major inﬂuence on the increased Tc suppression. The&#xd;
Curie temperatures of the multilayers were suppressed with increasing manganite thickness because&#xd;
of structural eﬀects, and also with increasing thickness of the YBCO layer which reduced&#xd;
the coupling between manganite layers.&#xd;
To study the use of the spin-valve eﬀect as a means to control high temperature superconductors,&#xd;
we fabricated an LSMO/YBCO/LC(0.3)MO pseudo spin-valve structure, which is&#xd;
equivalent to a superconductor sandwiched within a spin valve where both parallel and antiparallel&#xd;
conﬁgurations of the F layers can be achieved within a single magnetic ﬁeld sweep.&#xd;
Previous research involving a metallic F/S/F/AF structure, showed that the superconductivity&#xd;
was suppressed when the ferromagnets were in the parallel conﬁguration [2].&#xd;
From the onset of superconductivity, when the normal metallic behaviour of YBCO switches&#xd;
to superconductivity, a magnetoresistance(MR) peak was observed when the F layers were antiparallel.&#xd;
The MR eﬀect increased with decreasing bias current and temperature, characteristic&#xd;
of a pseudo-spin valve. The result is suggestive of spin transport across the YBCO spacer layer.</dcterms:abstract>
   <uketdterms:institution>University of Cambridge</uketdterms:institution>
   <dcterms:issued>2004-06</dcterms:issued>
   <dc:type>Thesis</dc:type>
   <uketdterms:qualificationlevel>Doctoral</uketdterms:qualificationlevel>
   <uketdterms:qualificationname>Doctor of Philosophy (PhD)</uketdterms:qualificationname>
   <dc:language>en</dc:language>
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