TY - JOUR
T1 - Thermal nucleation and high-resolution imaging of submicrometer magnetic bubbles in thin thulium iron garnet films with perpendicular anisotropy
AU - Büttner, Felix
AU - Mawass, Mohamad A.
AU - Bauer, Jackson
AU - Rosenberg, Ethan
AU - Caretta, Lucas
AU - Avci, Can Onur
AU - Gräfe, Joachim
AU - Finizio, Simone
AU - Vaz, C. A.F.
AU - Novakovic, Nina
AU - Weigand, Markus
AU - Litzius, Kai
AU - Förster, Johannes
AU - Träger, Nick
AU - Groß, Felix
AU - Suzuki, Daniel
AU - Huang, Mantao
AU - Bartell, Jason
AU - Kronast, Florian
AU - Raabe, Jörg
AU - Schütz, Gisela
AU - Ross, Caroline A.
AU - Beach, Geoffrey S.D.
N1 - Publisher Copyright:
© 2020 American Physical Society.
PY - 2020/1/28
Y1 - 2020/1/28
N2 - Ferrimagnetic iron garnets are promising materials for spintronics applications, characterized by ultralow damping and zero current shunting. It has recently been found that few nm-thick garnet films interfaced with a heavy metal can also exhibit sizable interfacial spin-orbit interactions, leading to the emergence, and efficient electrical control, of one-dimensional chiral domain walls. Two-dimensional bubbles, by contrast, have so far only been confirmed in micrometer-thick films. Here, we show by high resolution scanning transmission x-ray microscopy and photoemission electron microscopy that submicrometer bubbles can be nucleated and stabilized in ∼25-nm-thick thulium iron garnet films via short heat pulses generated by electric current in an adjacent Pt strip, or by ultrafast laser illumination. We also find that quasistatic processes do not lead to the formation of a bubble state, suggesting that the thermodynamic path to reaching that state requires transient dynamics. X-ray imaging reveals that the bubbles have Bloch-type walls with random chirality and topology, indicating negligible chiral interactions at the garnet film thickness studied here. The robustness of thermal nucleation and the feasibility demonstrated here to image garnet-based devices by x-rays both in transmission geometry and with sensitivity to the domain wall chirality are critical steps to enabling the study of small spin textures and dynamics in perpendicularly magnetized thin-film garnets.
AB - Ferrimagnetic iron garnets are promising materials for spintronics applications, characterized by ultralow damping and zero current shunting. It has recently been found that few nm-thick garnet films interfaced with a heavy metal can also exhibit sizable interfacial spin-orbit interactions, leading to the emergence, and efficient electrical control, of one-dimensional chiral domain walls. Two-dimensional bubbles, by contrast, have so far only been confirmed in micrometer-thick films. Here, we show by high resolution scanning transmission x-ray microscopy and photoemission electron microscopy that submicrometer bubbles can be nucleated and stabilized in ∼25-nm-thick thulium iron garnet films via short heat pulses generated by electric current in an adjacent Pt strip, or by ultrafast laser illumination. We also find that quasistatic processes do not lead to the formation of a bubble state, suggesting that the thermodynamic path to reaching that state requires transient dynamics. X-ray imaging reveals that the bubbles have Bloch-type walls with random chirality and topology, indicating negligible chiral interactions at the garnet film thickness studied here. The robustness of thermal nucleation and the feasibility demonstrated here to image garnet-based devices by x-rays both in transmission geometry and with sensitivity to the domain wall chirality are critical steps to enabling the study of small spin textures and dynamics in perpendicularly magnetized thin-film garnets.
UR - http://www.scopus.com/inward/record.url?scp=85082681480&partnerID=8YFLogxK
U2 - 10.1103/PhysRevMaterials.4.011401
DO - 10.1103/PhysRevMaterials.4.011401
M3 - Article
AN - SCOPUS:85082681480
SN - 2475-9953
VL - 4
JO - Physical Review Materials
JF - Physical Review Materials
IS - 1
M1 - 011401
ER -