INRS researchers and international partners have succeeded in looking at spin inside rare earth materials, using a tabletop ultrafast soft-X-ray microscope, for the first time.

MONTRÉAL AND VARENNES, QC, April 25, 2022 /CNW Telbec/ - Sharing real-time information requires complex networks of systems. A promising approach for speeding up data storage devices consists of switching the magnetization, or the electrons' spin, of magnetic materials with ultra-short femtosecond laser pulses. But, how the spin evolves in the nanoworld on extremely short time scales, in one millionth of one billionth of a second, has remained largely mysterious. The team of Professor François Légaré This hyperlink will open in a new window. at the Institut national de la recherche scientifique This hyperlink will open in a new window. (INRS) has made a major breakthrough in this field, in collaboration with TU Wien This hyperlink will open in a new window., Austria, the French national synchrotron facility This hyperlink will open in a new window. (SOLEIL) and other international partners. Their work This hyperlink will open in a new window. was published in the journal Optica.

Ultrafast magnetic scattering on ferrimagnets enabled by a bright Ytterbium-based soft x-ray source. Image: Ella Maru Studio (CNW Group/Institut National de la recherche scientifique (INRS))

So far, studies on the subject strongly rely on limited access large X-ray facilities such as free-electron lasers and synchrotrons. The team demonstrates, for the first time, a tabletop ultrafast soft X-ray microscope to spatio-temporally resolve the spin dynamics inside rare earth materials, which are promising for spintronic devices.

This new soft X-ray source based on a high-energy Ytterbium laser represents a critical advance for studying future energy-efficient and high-speed spintronic devices and could be used for many applications in physics, chemistry, and biology.

"Our approach provides a robust, cost-efficient and energy-scalable elegant solution for many laboratories. It allows the study of ultrafast dynamics in nanoscale and mesoscale structures with both nanometre spatial and femtosecond temporal resolutions, as well as with the element specificity," says Professor Andrius Baltuska, at TU Wien.

Bright X-ray pulses to watch the spin

With this bright source of X-ray photons, a series of snapshot images of the nanoscale rare earth magnetic structures have been recorded. They clearly expose the fast demagnetization process, and the results provide rich information on the magnetic properties that are as accurate as those obtained using large-scale X-ray facilities.

"Development of ultrafast tabletop X-ray sources is exciting for cutting-edge technological applications and modern fields of science. We are excited about our results, that could be helpful for future research for spintronics, as well as other potential fields," says INRS postdoctoral researcher, Dr. Guangyu Fan.

"Rare earth systems are trending in the community because of their nanometer size, faster speed, and topologically protected stability. The X-ray source is very attractive for many studies on future spintronic devices composed of rare earth." says Nicolas Jaouen, senior scientist at the French national synchrotron facility.

Professor Légaré emphasizes the collaborative work between experts in the development of state-of-the-art light sources and ultrafast dynamics in magnetic materials at the nanoscale. "Considering the quick emergence of high-power Ytterbium laser technology, this work represents huge potential for high-performance soft X-ray sources. This new generation of lasers, which will be available soon at the Advanced Laser Light Source This hyperlink will open in a new window. (ALLS), will have many future applications for the fields of physics, chemistry, and even biology," he says.

About the study

The article « Ultrafast magnetic scattering on ferrimagnets enabled by a bright Yb-based soft x-ray source This hyperlink will open in a new window. » by G. Fan, K. Légaré, V. Cardin, X. Xie, R. Safaei, E. Kaksis, G. Andriukaitis, A. Pugžlys, B. E. Schmidt, J. P. Wolf, M. Hehn, G. Malinowski, B. Vodungbo, E. Jal, J. Lüning, N. Jaouen, G. Giovannetti, F. Calegari, Z. Tao, A. Baltuška, F. Légaré, and T. Balčiūnas, was published in the journal Optica on April 6, 2022. The study received fincancial support from the Natural Sciences and Engineering Research Council of Canada This hyperlink will open in a new window., the Fonds de recherche du Québec – Nature et technologies This hyperlink will open in a new window. (FRQNT) and PRIMA Québec This hyperlink will open in a new window., among others. The ALLS laboratory also benefits from an investment from the Canada Foundation for Innovation This hyperlink will open in a new window. (CFI).

About INRS

INRS This hyperlink will open in a new window. is a university dedicated exclusively to graduate level research and training. Since its creation in 1969, INRS has played an active role in Québec's economic, social, and cultural development and is ranked first for research intensity in Québec. INRS is made up of four interdisciplinary research and training centres in Québec City, Montréal, Laval, and Varennes, with expertise in strategic sectors: Eau Terre Environnement This hyperlink will open in a new window., Énergie Matériaux Télécommunications This hyperlink will open in a new window., Urbanisation Culture Société This hyperlink will open in a new window., and Armand-Frappier Santé Biotechnologie This hyperlink will open in a new window.. The INRS community includes more than 1,500 students, postdoctoral fellows, faculty members, and staff.

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Last update: April 25, 2022