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dc.contributor.authorValkass, Robert Alexander James
dc.contributor.authorShelford, Leigh R
dc.contributor.authorDurrant, Chris J
dc.contributor.authorFigueroa, Adriana
dc.contributor.authorBaker, Alex A
dc.contributor.authorShafer, Padraic
dc.contributor.authorArenholz, Elke
dc.contributor.authorChildress, Jeffrey R
dc.contributor.authorKatine, Jordan A
dc.contributor.authorvan der Laan, Gerrit
dc.contributor.authorHicken, Robert J
dc.date.accessioned2016-03-31T09:27:25Z
dc.date.issued2016-04-04
dc.description.abstractIn spin valve structures the damping of a ferromagnetic layer driven at resonance can be modified by the transfer of spin angular momentum into a ‘sink’ ferromagnetic layer. This effect, known as spin pumping, is interface dominated and expected to increase with increasing sink layer thickness up to a saturation absorption depth, previously reported to be 1.2 nm regardless of the sink layer’s composition [1]. Using vector network analyser ferromagnetic resonance (VNA-FMR), we have studied the variation in damping as a function of sink layer thickness in a series of CoMnGe (5 nm) / Ag (6 nm) / NiFe (x nm) spin valves. These measurements show only small variations in the CoMnGe Gilbert damping parameter for x ≤ 1.8 nm, although damping is observed to increase at x = 0.3 and 0.6 nm. Element-resolved x-ray detected ferromagnetic resonance (XFMR) [2] measurements confirm spin transfer torque due to spin pumping as the origin of the damping for x = 1.5 and 1.8 nm, with both thicknesses having the same effective spin mixing conductance, supporting the findings of Ghosh et al [1]. For thicker sink layers the source and sink FMR fields are seen to coincide, hampering the identification of spin pumping. [1] A Ghosh, et al. Physical Review Letters 109, 127202 (2012) [2] M Marcham, et al. Physical Review B 87, 180403 (2013)en_GB
dc.description.sponsorshipWe thank the Advanced Light Source for access to beamlines 4.0.2 and 6.3.1 (ALS-06433, ALS-07116). The Advanced Light Source is supported by the Director, Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy under Contract No. DE-AC02-05CH11231.en_GB
dc.description.sponsorshipWe thank Diamond Light Source for access to beamlines I06 and I10 (SI8782, SI11585, SI13063) that contributed to the results presented here.en_GB
dc.description.sponsorshipThis work was supported by the Engineering and Physical Sciences Research Council [grant number EP/J018767/1].en_GB
dc.identifier.urihttp://hdl.handle.net/10871/20893
dc.language.isoenen_GB
dc.publisherUniversity of Exeteren_GB
dc.relation.urlhttp://magnetism2016.iopconfs.org/home
dc.rights.embargoreasonEmbargoed until the day of the conference.en_GB
dc.rightsThis work is licensed under the Creative Commons Attribution-ShareAlike 4.0 International License. To view a copy of this license, please visit http://creativecommons.org/licenses/by-sa/4.0/en_GB
dc.subjectResearch Subject Categories::NATURAL SCIENCESen_GB
dc.subjectResearch Subject Categories::NATURAL SCIENCES::Physicsen_GB
dc.subjectResearch Subject Categories::NATURAL SCIENCES::Physics::Condensed matter physicsen_GB
dc.subjectResearch Subject Categories::NATURAL SCIENCES::Physics::Condensed matter physics::Magnetismen_GB
dc.subjectResearch Subject Categories::NATURAL SCIENCES::Physics::Condensed matter physics::Surfaces and interfacesen_GB
dc.titleEffect of sink layer thickness on damping in CoMnGe (5 nm) / Ag (6 nm) / NiFe (x nm) spin valvesen_GB
dc.typePresentationen_GB
dc.descriptionPoster presented at Magnetism 4 – 5 April 2016, Sheffield.en_GB


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