• No results found

University of Groningen Spin transport in graphene-based van der Waals heterostructures Ingla Aynés, Josep

N/A
N/A
Protected

Academic year: 2021

Share "University of Groningen Spin transport in graphene-based van der Waals heterostructures Ingla Aynés, Josep"

Copied!
2
0
0

Bezig met laden.... (Bekijk nu de volledige tekst)

Hele tekst

(1)

University of Groningen

Spin transport in graphene-based van der Waals heterostructures

Ingla Aynés, Josep

IMPORTANT NOTE: You are advised to consult the publisher's version (publisher's PDF) if you wish to cite from

it. Please check the document version below.

Document Version

Publisher's PDF, also known as Version of record

Publication date:

2018

Link to publication in University of Groningen/UMCG research database

Citation for published version (APA):

Ingla Aynés, J. (2018). Spin transport in graphene-based van der Waals heterostructures. Rijksuniversiteit

Groningen.

Copyright

Other than for strictly personal use, it is not permitted to download or to forward/distribute the text or part of it without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license (like Creative Commons).

Take-down policy

If you believe that this document breaches copyright please contact us providing details, and we will remove access to the work immediately and investigate your claim.

Downloaded from the University of Groningen/UMCG research database (Pure): http://www.rug.nl/research/portal. For technical reasons the number of authors shown on this cover page is limited to 10 maximum.

(2)

Curriculum Vitae

Josep Ingla Ayn´es

29 June 1990

Born in Ribera d’Ondara, Lleida.

Education

02/2014–06/2018

PhD program at the “Groningen Graduate School of

Sci-ence and Engineering” as Marie Curie ESR-fellow within

the Initial Traning Network “Spinograph”

Supervisor: Prof. dr. ir. B.J. van Wees

Research performed at: “Physics of Nanodevices”,

Univer-sity of Groningen, The Netherlands

09/2012–09/2013

Master in nanoscience and nanotechnology

Thesis: Use of SiO

2

self-assembled submicrometric

parti-cles as an approach for graphene 2D photonic crystal

fab-rication

Supervisor: Prof. Dr. Ir. E. Bertran i Serra

09/2008–06/2012

Bachelor in Physics

Referenties

GERELATEERDE DOCUMENTEN

band structure of bilayer graphene with the Fermi energy at the given carrier density regime is shown at the inset.. which is closer to the gate screens the electric field for

This model, which has also been used to simulate the charge and spin- dependent 1/f noise [8], allows us to understand spin injection and detection in a nonlocal spin valve device

The monolayer and bilayer graphene flakes used in this thesis are obtained using the so-called scotch tape technique [1].. • Graphene films are isolated by peeling graphite from

Our simulations using a three regions model show that the measured spin relax- ation times of 2.5 ns at room temperature and 2.9 ns at 4 K are most likely limited by the outer

In Figure 6.6(d) we show the effective spin relaxation time of our system as a function of the spin relaxation time in the encapsulated region for different values of the

The output terminal, where the current is directed, can be controlled by changing the carrier densities in the top and bottom arms while keeping the left arm at the same density

Motivated by these findings and the results on bilayer graphene on SiO 2 obtained in [4, 5], we studied spin transport in hBN-encapsulated bilayer graphene that lead to the

The use of small magnetic domains as memory units, which can be addressed with spin polarized currents, make spintronics very appealing for combining logics with in-situ