The antiferromagnetic insulator α-Fe2O3 (hematite), widely used in spintronics and magnonics, features a spin-reorientation transition (Morin transition) at 263 K. Thin films, however, often lack this Morin transition, limiting their potential applications. Here, we investigate the impact of different growth conditions on the magnetic anisotropy in α-Fe2O3 films to tune the Morin transition temperature. To this end, we compare the structural, magnetic, and magnon-based spin transport properties of α-Fe2O3 films with different thicknesses grown by pulsed laser deposition in molecular and atomic oxygen atmospheres. We observe a finite Morin transition for those grown by atomic-oxygen-assisted deposition, interestingly even down to 19 nm thick...
We report the fabrication of high crystal quality epitaxial thin films of maghemite (¿-Fe2O3), a cla...
Thin α-Fe2O3 films on semi-quartz substrates have been prepared by radio frequency (RF) sputtering o...
Reading the magnetic state of antiferromagnetic (AFM) thin films is key for AFM spintronic devices. ...
Antiferromagnetic insulators are a ubiquitous class of magnetic materials, holding the promise of lo...
We present comprehensive studies of strain effects on the spin reorientation transition (SRT), the s...
Antiferromagnets possess a number of intriguing and promising properties for electronic devices, whi...
DoctorMorin transition in α-Fe2O3(0001) films have been one of the puzzling topic. Differently from ...
Low-power spintronic devices based on the propagation of pure magnonic spin currents in antiferromag...
Antiferromagnetic materials can host spin-waves with polarizations ranging from circular to linear d...
We present comprehensive studies of strain effects on the spin reorientation transition (SRT), the s...
International audienceAntiferromagnetic materials can host spin-waves with polarizations ranging fro...
Antiferromagnets possess a number of intriguing and promising properties for electronic devices, whi...
We report the fabrication of high crystal quality epitaxial thin films of maghemite (γ−Fe2O3), a cla...
7 pags., 6 figs.The evolution of the magnetic anisotropy directions has been studied in a magnetite ...
The epsilon Fe2O3 phase of iron oxide has been studied to understand the spin structure and the magn...
We report the fabrication of high crystal quality epitaxial thin films of maghemite (¿-Fe2O3), a cla...
Thin α-Fe2O3 films on semi-quartz substrates have been prepared by radio frequency (RF) sputtering o...
Reading the magnetic state of antiferromagnetic (AFM) thin films is key for AFM spintronic devices. ...
Antiferromagnetic insulators are a ubiquitous class of magnetic materials, holding the promise of lo...
We present comprehensive studies of strain effects on the spin reorientation transition (SRT), the s...
Antiferromagnets possess a number of intriguing and promising properties for electronic devices, whi...
DoctorMorin transition in α-Fe2O3(0001) films have been one of the puzzling topic. Differently from ...
Low-power spintronic devices based on the propagation of pure magnonic spin currents in antiferromag...
Antiferromagnetic materials can host spin-waves with polarizations ranging from circular to linear d...
We present comprehensive studies of strain effects on the spin reorientation transition (SRT), the s...
International audienceAntiferromagnetic materials can host spin-waves with polarizations ranging fro...
Antiferromagnets possess a number of intriguing and promising properties for electronic devices, whi...
We report the fabrication of high crystal quality epitaxial thin films of maghemite (γ−Fe2O3), a cla...
7 pags., 6 figs.The evolution of the magnetic anisotropy directions has been studied in a magnetite ...
The epsilon Fe2O3 phase of iron oxide has been studied to understand the spin structure and the magn...
We report the fabrication of high crystal quality epitaxial thin films of maghemite (¿-Fe2O3), a cla...
Thin α-Fe2O3 films on semi-quartz substrates have been prepared by radio frequency (RF) sputtering o...
Reading the magnetic state of antiferromagnetic (AFM) thin films is key for AFM spintronic devices. ...