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Spintronics: A new path to room temperature swirling spin textures

Date:
April 17, 2024
Source:
Helmholtz-Zentrum Berlin für Materialien und Energie
Summary:
In some materials, spins form complex magnetic structures within the nanometer and micrometer scale in which the magnetization direction twists and curls along specific directions. Examples of such structures are magnetic bubbles, skyrmions, and magnetic vortices. Spintronics aims to make use of such tiny magnetic structures to store data or perform logic operations with very low power consumption, compared to today's dominant microelectronic components. However, the generation and stabilization of most of these magnetic textures is restricted to a few materials and achievable under very specific conditions (temperature, magnetic field...). Physicists have now investigated a new approach that can be used to create and stabilize complex spin textures, such as radial vortices, in a variety of compounds.
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In some materials, spins form complex magnetic structures within the nanometre and micrometre scale in which the magnetization direction twists and curls along specific directions. Examples of such structures are magnetic bubbles, skyrmions, and magnetic vortices. Spintronics aims to make use of such tiny magnetic structures to store data or perform logic operations with very low power consumption, compared to today's dominant microelectronic components. However, the generation and stabilization of most of these magnetic textures is restricted to a few materials and achievable under very specific conditions (temperature, magnetic field…).

A new approach

An international collaboration led by HZB physicist Dr Sergio Valencia has now investigated a new approach that can be used to create and stabilize complex spin textures, such as radial vortices, in a variety of compounds. In a radial vortex, the magnetization points towards or away from the center of the structure. This type of magnetic configuration is usually highly unstable. Within this novel approach radial vortices are created with the help of superconducting structures while their stabilization is achieved by the presence of surface defects.

Superconducting YBCO-islands

Samples consist of micrometer size islands made of the high-temperature superconductor YBCO on which a ferromagnetic compound is deposited. On cooling the sample below 92 Kelvin (-181 °C), YBCO enters the superconducting state. In this state, an external magnetic field is applied and immediately removed. This process allows the penetration and pinning of magnetic flux quanta, which in turn creates a magnetic stray field. It is this stray field which produces new magnetic microstructures in the overlying ferromagnetic layer: spins emanate radially from the structure centre, as in a radial vortex.

The role of defects

As the temperature is increased, YBCO transits from the superconducting to a normal state. So the stray field created by YBCO islands disappears, and so should the magnetic radial vortex. However HZB researchers and collaborators have observed that the presence of surface defects prevents this to happen: the radial vortices partially retain the imprinted state, even when approaching room temperature.

"We use the magnetic field generated by the superconducting structures to imprint certain magnetic domains on the ferromagnets placed on them, and the surface defects to stabilize them. The magnetic structures are akin to that of a skyrmion and are interesting for spintronic applications," explains Valencia.

Geometry matters

Smaller imprinted vortices were about 2 micrometres in diameter, about ten times the size of typical skyrmions. The team studied samples with circular and square geometries and found that circular geometries increased the stability of imprinted magnetic radial vortices.

"This is a novel way to create and stabilize such structures and it can be applied in a variety of ferromagnetic materials. These are good new prospects for the further development of superconducting spintronics," says Valencia.


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Materials provided by Helmholtz-Zentrum Berlin für Materialien und Energie. Note: Content may be edited for style and length.


Journal Reference:

  1. David Sanchez-Manzano, Gloria Orfila, Anke Sander, Lourdes Marcano, Fernando Gallego, Mohamad-Assaad Mawass, Francesco Grilli, Ashima Arora, Andrea Peralta, Fabian A. Cuellar, Jose A. Fernandez-Roldan, Nicolas Reyren, Florian Kronast, Carlos Leon, Alberto Rivera-Calzada, Javier E. Villegas, Jacobo Santamaria, Sergio Valencia. Size-Dependence and High Temperature Stability of Radial Vortex Magnetic Textures Imprinted by Superconductor Stray Fields. ACS Applied Materials & Interfaces, 2024; 16 (15): 19681 DOI: 10.1021/acsami.3c17671

Cite This Page:

Helmholtz-Zentrum Berlin für Materialien und Energie. "Spintronics: A new path to room temperature swirling spin textures." ScienceDaily. ScienceDaily, 17 April 2024. <www.sciencedaily.com/releases/2024/04/240417131037.htm>.
Helmholtz-Zentrum Berlin für Materialien und Energie. (2024, April 17). Spintronics: A new path to room temperature swirling spin textures. ScienceDaily. Retrieved November 20, 2024 from www.sciencedaily.com/releases/2024/04/240417131037.htm
Helmholtz-Zentrum Berlin für Materialien und Energie. "Spintronics: A new path to room temperature swirling spin textures." ScienceDaily. www.sciencedaily.com/releases/2024/04/240417131037.htm (accessed November 20, 2024).

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