An atomically tailored chiral magnet with small skyrmions at room temperature

Author:

Liu Tao,Selcu Camelia M.,Wang Binbin,Bagués Núria,Wu Po-Kuan,Hartnett Timothy Q.,Cheng Shuyu,Pelekhov Denis,Bennett Roland A.,Corbett Joseph Perry,Repicky Jacob R.ORCID,McCullian BrendanORCID,Chris Hammel P.,Gupta Jay A.ORCID,Randeria Mohit,Balachandran Prasanna V.ORCID,McComb David W.ORCID,Kawakami Roland K.ORCID

Abstract

AbstractCreating materials that do not exist in nature can lead to breakthroughs in science and technology. Magnetic skyrmions are topological excitations that have attracted great attention recently for their potential applications in low power, ultrahigh density memory. A major challenge has been to find materials that meet the dual requirement of small skyrmions stable at room temperature. Here we meet both these goals by developing epitaxial FeGe films with excess Fe using atomic layer molecular beam epitaxy (MBE) far from thermal equilibrium. Our atomic layer design permits the incorporation of 20% excess Fe while maintaining a non-centrosymmetric crystal structure supported by theoretical calculations and necessary for stabilizing skyrmions. We show that the Curie temperature is well above room temperature, and that the skyrmions have sizes down to 15 nm as imaged by Lorentz transmission electron microscopy (LTEM) and magnetic force microscopy (MFM). The presence of skyrmions coincides with a topological Hall effect-like resistivity. These atomically tailored materials hold promise for future ultrahigh density magnetic memory applications.

Funder

United States Department of Defense | Defense Advanced Research Projects Agency

NSF | Directorate for Mathematical & Physical Sciences | Division of Materials Research

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy

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