Magnetic switch gets closer to application

XMCD-PEEM asymmetry images of FeRh obtained at the Fe L3-edge at 385 K. The presence of blue/red domains at 0 Volts (left panel) are related to the presence of ferromagnetic domains showing thus that the FeRh film is ferromagnetic. After applying 50 V (right panel) the red/blue ferromagnetic domains disappear pointing out that the FeRh film is now antiferromagnetic.

XMCD-PEEM asymmetry images of FeRh obtained at the Fe L3-edge at 385 K. The presence of blue/red domains at 0 Volts (left panel) are related to the presence of ferromagnetic domains showing thus that the FeRh film is ferromagnetic. After applying 50 V (right panel) the red/blue ferromagnetic domains disappear pointing out that the FeRh film is now antiferromagnetic. © HZB

Scientists from Paris, Newcastle and Helmholtz-Zentrum Berlin have been able to switch on and off robust ferromagnetism close to room temperature by using low electric fields. Their results are inspiring for future applications in low-power spintronics, for instance in fast, efficient and nonvolatile data storage technologies.

The sample consisted of a ferroelectric BaTiO3 substrate covered with a thin film of magnetic FeRh.  Experiments at BESSY II combined with other measurement methods demonstrated how the magnetic order of the sample changes dramatically, when a moderate external electric field is applied: The electric field induces strain in the crystal structure of the ferroelectric substrate, which is transferred to the thin FeRh-film and switches its magnetic ordering from ferromagnetic (large magnetization) to antiferromagnetic (zero magnetization). The effect is ten times larger than previously observed in other magnetic structures and especially promising since it is found close to room temperature. The results have been published online on 26 January in Nature Materials, DOI: 10.1038/NMAT3870.

The ability to turn on and off robust ferromagnetism at room temperature and low electric fields has remained elusive until now. Nevertheless, such magnetic switches would be extremely useful for spintronic devices and future data storage technologies.

Now a materials system has been grown by scientists at Unité Mixte de Physique CNRS/Thales and Université Paris Sud which has interesting properties. As measurements of Sergio Valencia, Akin Ünal and Florian Kronast from HZB demonstrated, their magnetization can be controlled by means of electric fields. The change achieved in the magnetization with moderate electric field is one magnitude higher than observed previously in any other materials:
The new structure consists of a ferroelectric BaTiO3 crystal substrate, covered with a thin film of magnetic FeRh. To obtain microscopic information about the magnetic order, the HZB team took high-resolution magnetic images at the spin-resolved photo-emission electron microscope at BESSY II at different voltages at a temperature of 385 K or 112 °Celsius. “We have found that in FeRh/BaTiO3 even a moderate electric field can produce a giant magnetization variation, arising from the electric-field-induced transformation of the FeRh from an ferromagnetic state to an antiferromagnetic state”, Valencia says.

The detailed analysis of the data in the light of first-principles calculations indicate that the phenomenon is mediated by both strain and field effects from the BaTiO3. The results correspond to a magnetoelectric coupling larger than previous reports by at least one order of magnitude. The possibility of toggling between magnetic states by means of an electric field and at very low power offers an attractive alternative to heat-assisted magnetic recording. This technology uses a laser pulse to heat a magnetic bit above a certain temperature at which the magnetic field generated by the write-head can reliably switch the magnetization direction. “On a broader perspective, our work emphasizes the relevance of hybrid perovskite/metal systems such as BaTiO3/FeRh for low-power spintronic architectures. In the future, it would be attractive to combine  FeRh with piezoelectric elements with giant responses. The effect could be further increased and tuned to a range of operating temperatures, including room temperature, by using Palladium-substituted FeRh”, Valencia points out.

arö

  • Copy link

You might also be interested in

  • 3D magnetic field experiment at BESSY II takes spintronics a step further
    Science Highlight
    07.09.2026
    3D magnetic field experiment at BESSY II takes spintronics a step further
    (Fe0.63Ni0.3Pd0.07)3P or FNPP is a magnetic material that exhibits complex magnetic structures even at room temperature. This makes the material of interest for spintronics, a field that could enable data processing with significantly lower energy consumption. One potential application is novel magnetic memory devices. However, generating and modifying the desired structures in a controlled manner remains a challenge to date. A new study led by HZB has now taken a step forward in this regard. They demonstrated at the worldwide unique VEKMAG-Station at BESSY II, that a tiny external B-field in the plane of the magnetic patterns is sufficient to change them.
  • An important step towards detecting fractons in quantum spin liquids
    Science Highlight
    20.08.2026
    An important step towards detecting fractons in quantum spin liquids
    Following predictions of the existence of fractons in quantum spin liquids by more general gauge field theories, researchers at HZB succeeded in detecting these quasi-particles also in a quantum solid-state model.
  • Magnetic imaging: Micro-flowers increase the local magnetic field
    Science Highlight
    06.07.2026
    Magnetic imaging: Micro-flowers increase the local magnetic field
    Materials with magnetic nanostructures have many potential applications such as in spintronics. To explore such materials, nanoscale magnetic-sensitive imaging techniques are very useful, but up to now only weak magnetic fields could be applied during the imaging process. Now an international collaboration led by Dr. Sergio Valencia, HZB, has developed an approach that overcomes this limitation. The team designed tiny magnetic flux concentrators (MFCs), into which the sample is placed. The geometry of the MFCs resembles a flower with a number of petals which focus the applied magnetic field into its center. This greatly expands the magnetic field range available during imaging, and so the range of magnetic systems that can be investigated. The micro-flowers, enhancing magnetic fields locally, can find application in different nanometric magnetic microscopy techniques.