Ivan J. Vera-Marun
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Lecturer in Condensed Matter Physics
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About
Ivan J. Vera-Marun is a Lecturer in Condensed Matter Physics at the University of Manchester, UK. His research interests include spin transport in graphene and other two-dimensional materials, fabrication techniques for metal dihalides, and magnetization dynamics in ferromagnetic thin films. Recent articles authored by him explore topics such as spin polarised transport, thermopower in superlattices, and methods for tunable spin injection in high-quality graphene.
Recent Grants
Grant: Close
Curved nanomembranes for Topological Quantum Computation
Open Date: 2014-06-01
Close Date: 2017-05-31
Grant: Close
Spin caloritronics in graphene: joining heat and spin for new nanoelectronics
Open Date: 2013-01-16
Close Date: 2016-07-12
Articles (15)
Exchange stiffness constant determination using multiple-mode FMR perpendicular standing spin waves
The exchange stiffness constant is recognized as one of the fundamental properties of magnetic materials, though its accurate experimental determination remains a particular challenge. In thin films, resonance measurements exploiting perpendicular standing spin waves (PSSWs) are increasingly used to extract this parameter, typically through a determination of the first-order PSSW mode. Here, we present a systematic study of multiple PSSW modes in NiFe films, where both the sample thickness and the cap layer material are varied. The results show that a simple analysis based on the Kittel rigid pinning model yields an exchange stiffness constant that varies with thickness, mode number, and capping layer material. This finding is clearly inconsistent with physical expectation that the exchange stiffness constant of a material is single valued for a particular set of thermodynamic conditions. Using a more general exchange boundary condition, we show, through a comprehensive set of micromagnetic simulations, that a dynamic pinning mechanism originally proposed by Wigen is able to reproduce the experimental results using a single value of Aex. Our findings support the utility of short wavelength, higher order PSSWs to determine the Aex of thin films and show that the value of Aex obtained has a weak dependency on the material immediately adjacent to the magnetic layer.
Year:
2023
Collaborators (11)
Neil Fox
University of Bristol
Radha Boya
The University of Manchester
Irina Grigorieva
Professor of Physics
The University of Manchester
Ashok Keerthi
The University of Manchester
Jesus Carlos Toscano Figueroa
The University of Manchester
PAOLA GENTILE
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Christoforos Moutafis
The University of Manchester
Alexander N. Grigorenko
The University of Manchester
Carmine Ortix
Associate Professor
Università degli Studi di Napoli Federico II
T. Thomson
-
James Edgar
Professor
University of Kansas

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