Author
Listed:
- Mickaël Morin
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Emmanuel Canévet
(Laboratory for Neutron Scattering and Imaging, Paul Scherrer Institut (PSI))
- Adrien Raynaud
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Marek Bartkowiak
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Denis Sheptyakov
(Laboratory for Neutron Scattering and Imaging, Paul Scherrer Institut (PSI))
- Voraksmy Ban
(Swiss Light Source, Paul Scherrer Institut (PSI))
- Michel Kenzelmann
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Ekaterina Pomjakushina
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Kazimierz Conder
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
- Marisa Medarde
(Laboratory for Scientific Developments and Novel Materials, Paul Scherrer Institut (PSI))
Abstract
In the past years, magnetism-driven ferroelectricity and gigantic magnetoelectric effects have been reported for a number of frustrated magnets featuring ordered spiral magnetic phases. Such materials are of high-current interest due to their potential for spintronics and low-power magnetoelectric devices. However, their low-magnetic ordering temperatures (typically
Suggested Citation
Mickaël Morin & Emmanuel Canévet & Adrien Raynaud & Marek Bartkowiak & Denis Sheptyakov & Voraksmy Ban & Michel Kenzelmann & Ekaterina Pomjakushina & Kazimierz Conder & Marisa Medarde, 2016.
"Tuning magnetic spirals beyond room temperature with chemical disorder,"
Nature Communications, Nature, vol. 7(1), pages 1-7, December.
Handle:
RePEc:nat:natcom:v:7:y:2016:i:1:d:10.1038_ncomms13758
DOI: 10.1038/ncomms13758
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