论文标题

天空的热产生,操纵和检测

Thermal generation, manipulation and detection of skyrmions

论文作者

Wang, Zidong, Guo, Minghua, Zhou, Heng-An, Zhao, Le, Xu, Teng, Tomasello, Riccardo, Bai, Hao, Dong, Yiqing, Je, Soong Geun, Chao, Weilun, Han, Hee-Sung, Lee, Suseok, Lee, Ki-Suk, Yao, Yunyan, Han, Wei, Song, Cheng, Wu, Huaqiang, Carpentieri, Mario, Finocchio, Giovanni, Im, Mi-Young, Lin, Shi-Zeng, Jiang, Wanjun

论文摘要

近年来,在实现手性磁铁1-4和不对称磁性多层5-13以及其电气操作2,7,8,10中的天空中取得了重大进展。同样重要的是,可以使用集成计算14和能量收获15来利用Skyrmions的热产生,操纵和检测。它尚未验证是否可以通过加热16,17纯粹产生天空,并且是否由温度梯度驱动的运动方向遵循扩散或相反的是宏伟的自旋扭矩17-21。在这里,我们在由多层制成的微观结构设备中解决这些重要问题:(TA_COFEB_MGO)15,(PT_COFEB_MGO_TA)15和(PT_CO_TA)15与芯片加热器集成在一起,通过使用全片柔软的X射线显微镜。密集堆积的天空的热产生归因于设备边缘处的低能屏障,以及从条纹结构域到天空的热诱导的形态过渡。在实验上观察到了天际从热区向冷区域的单向扩散。从理论上讲,这可以通过在与含量旋转旋转扭矩17,18,20,21和熵力22竞争中的排斥力和热自旋轨道扭矩之间的综合贡献来解释。这些热产生的天空可以通过测量伴随异常的Nernst电压23来进一步检测到电气检测。 Skyrmions的片上热电学生成,操纵和检测可能为启用Skyrmionics的另一个令人兴奋的途径,并促进旋转钙膦级跨学科研究15,Magnonics24和Skyrmionics 3,4,12。

Recent years have witnessed significant progresses in realizing skyrmions in chiral magnets1-4 and asymmetric magnetic multilayers5-13, as well as their electrical manipulation2,7,8,10. Equally important, thermal generation, manipulation and detection of skyrmions can be exploited for prototypical new architecture with integrated computation14 and energy harvesting15. It has yet to verify if skyrmions can be purely generated by heating16,17, and if their resultant direction of motion driven by temperature gradients follows the diffusion or, oppositely, the magnonic spin torque17-21. Here, we address these important issues in microstructured devices made of multilayers: (Ta_CoFeB_MgO)15, (Pt_CoFeB_MgO_Ta)15 and (Pt_Co_Ta)15 integrated with on-chip heaters, by using a full-field soft X-ray microscopy. The thermal generation of densely packed skyrmions is attributed to the low energy barrier at the device edge, together with the thermally induced morphological transition from stripe domains to skyrmions. The unidirectional diffusion of skyrmions from the hot region towards the cold region is experimentally observed. It can be theoretically explained by the combined contribution from repulsive forces between skyrmions, and thermal spin-orbit torques in competing with magnonic spin torques17,18,20,21 and entropic forces22. These thermally generated skyrmions can be further electrically detected by measuring the accompanied anomalous Nernst voltages23. The on-chip thermoelectric generation, manipulation and detection of skyrmions could open another exciting avenue for enabling skyrmionics, and promote interdisciplinary studies among spin caloritronics15, magnonics24 and skyrmionics3,4,12.

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