†St. Petersburg State University, 198504 St. Petersburg, Russia.
‡Physikalisches Institut, Universität zu Köln, Zülpicher Strasse 77, 50937 Köln, Germany.
Nano Lett. 2015 Apr 8;15(4):2396-401. doi: 10.1021/nl504693u. Epub 2015 Mar 4.
With the discovery and first characterization of graphene, its potential for spintronic applications was recognized immediately. Since then, an active field of research has developed trying to overcome the practical hurdles. One of the most severe challenges is to find appropriate interfaces between graphene and ferromagnetic layers, which are granting efficient injection of spin-polarized electrons. Here, we show that graphene grown under appropriate conditions on Co(0001) demonstrates perfect structural properties and simultaneously exhibits highly spin-polarized charge carriers. The latter was conclusively proven by observation of a single-spin Dirac cone near the Fermi level. This was accomplished experimentally using spin- and angle-resolved photoelectron spectroscopy, and theoretically with density functional calculations. Our results demonstrate that the graphene/Co(0001) system represents an interesting candidate for applications in devices using the spin degree of freedom.
随着石墨烯的发现和首次特性描述,其在自旋电子学应用中的潜力立即得到了认可。从那时起,一个积极的研究领域已经发展起来,试图克服实际障碍。其中最严峻的挑战之一是找到石墨烯与铁磁层之间合适的界面,以确保高效注入自旋极化电子。在这里,我们表明,在适当条件下在 Co(0001)上生长的石墨烯表现出完美的结构特性,同时表现出高度自旋极化的载流子。后者通过观察费米能级附近的单个自旋狄拉克锥得到了明确证明。这是通过自旋和角度分辨光电子能谱实验以及密度泛函计算理论来实现的。我们的结果表明,石墨烯/Co(0001)系统是利用自旋自由度在器件应用中的一个有趣候选者。