| Literature DB >> 29883139 |
Sunjae Chung1,2,3, Q Tuan Le1,2, Martina Ahlberg1,4, Ahmad A Awad1,4, Markus Weigand5, Iuliia Bykova5, Roman Khymyn1, Mykola Dvornik1, Hamid Mazraati2,4, Afshin Houshang1,4, Sheng Jiang2, T N Anh Nguyen1,2,6, Eberhard Goering5, Gisela Schütz5, Joachim Gräfe5, Johan Åkerman1,2,4.
Abstract
Magnetic droplets are nontopological dynamical solitons that can be nucleated in nanocontact based spin torque nano-oscillators (STNOs) with perpendicular magnetic anisotropy free layers. While theory predicts that the droplet should be of the same size as the nanocontact, its inherent drift instability has thwarted attempts at observing it directly using microscopy techniques. Here, we demonstrate highly stable magnetic droplets in all-perpendicular STNOs and present the first detailed droplet images using scanning transmission X-ray microscopy. In contrast to theoretical predictions, we find that the droplet diameter is about twice as large as the nanocontact. By extending the original droplet theory to properly account for the lateral current spread underneath the nanocontact, we show that the large discrepancy primarily arises from current-in-plane Zhang-Li torque adding an outward pressure on the droplet perimeter. Electrical measurements on droplets nucleated using a reversed current in the antiparallel state corroborate this picture.Year: 2018 PMID: 29883139 DOI: 10.1103/PhysRevLett.120.217204
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161