Non-Planar Geometrical Effects on the Magnetoelectrical Signal in a Three-Dimensional Nanomagnetic Circuit
Creators
- 1. University of Cambridge
- 2. University of Vienna
- 3. London Centre for Nanotechnology
- 4. University College London
- 5. Université Paris-Saclay
- 6. University of Oviedo
- 7. University of Glasgow
Description
Expanding nanomagnetism and spintronics into three dimensions (3D) offers great opportunities for both fundamental and technological studies. However, probing the influence of complex 3D geometries on magnetoelectrical phenomena poses important experimental and theoretical challenges. In this work, we investigate the magnetoelectrical signals of a ferromagnetic 3D nanodevice integrated into a microelectronic circuit using direct-write nanofabrication. Due to the 3D vectorial nature of both electrical current and magnetization, a complex superposition of several magnetoelectrical effects takes place. By performing electrical measurements under the application of 3D magnetic fields, in combination with macrospin simulations and finite element modeling, we disentangle the superimposed effects, finding how a 3D geometry leads to unusual angular dependences of well-known magnetotransport effects such as the anomalous Hall effect. Crucially, our analysis also reveals a strong role of the noncollinear demagnetizing fields intrinsic to 3D nanostructures, which results in an angular dependent magnon magnetoresistance contributing strongly to the total magnetoelectrical signal. These findings are key to the understanding of 3D spintronic systems and underpin further fundamental and device-based studies.
Open Access
Licence Attribution (CC BY)
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Publication Details
Journal article
Journal:
ACS nano
Publisher:
American Chemical Society (ACS)
ISSN:
1936086x
Volume:
15
Pages:
6765-6773
Persistent Identifiers
Funding
Financial Support
Engineering and Physical Sciences Research Council — Grant: EP/L015978/1
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Engineering and Physical Sciences Research Council — Grant: EP/M008517/1
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Leverhulme Trust — Grant: ECF-2018-016
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Isaac Newton Trust — Grant: 18-08
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H2020 Marie Sklodowska-Curie Actions — Grant: 746958
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United Nations Educational, Scientific and Cultural Organization
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China Scholarship Council
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Department of Physics, University of Cambridge
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Agencia Estatal de Investigaci?n — Grant: PID2019?104604RB/AEI/10.13039/501100011033
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Winton Program for the Physics of Sustainability
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References