Fan Yabin, Finley Joseph, Han Jiahao, Holtz Megan E, Quarterman Patrick, Zhang Pengxiang, Safi Taqiyyah S, Hou Justin T, Grutter Alexander J, Liu Luqiao
Microsystems Technology Laboratories, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
NIST Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, MD, 20899, USA.
Adv Mater. 2021 Jun;33(22):e2008555. doi: 10.1002/adma.202008555. Epub 2021 Apr 25.
While being electrically insulating, magnetic insulators can behave as good spin conductors by carrying spin current with excited spin waves. So far, magnetic insulators are utilized in multilayer heterostructures for optimizing spin transport or to form magnon spin valves for reaching controls over the spin flow. In these studies, it remains an intensively visited topic as to what the corresponding roles of coherent and incoherent magnons are in the spin transmission. Meanwhile, understanding the underlying mechanism associated with spin transmission in insulators can help to identify new mechanisms that can further improve the spin transport efficiency. Here, by studying spin transport in a magnetic-metal/magnetic-insulator/platinum multilayer, it is demonstrated that coherent magnons can transfer spins efficiently above the magnon bandgap of magnetic insulators. Particularly the standing spin-wave mode can greatly enhance the spin flow by inducing a resonant magnon transmission. Furthermore, within the magnon bandgap, a shutdown of spin transmission due to the blocking of coherent magnons is observed. The demonstrated magnon transmission enhancement and filtering effect provides an efficient method for modulating spin current in magnonic devices.
虽然磁绝缘体具有电绝缘性,但通过携带由激发的自旋波产生的自旋电流,它们可以表现为良好的自旋导体。到目前为止,磁绝缘体被用于多层异质结构中以优化自旋输运,或形成磁振子自旋阀以实现对自旋流的控制。在这些研究中,相干磁振子和非相干磁振子在自旋传输中的相应作用仍然是一个备受关注的话题。同时,理解与绝缘体中自旋传输相关的潜在机制有助于识别可以进一步提高自旋输运效率的新机制。在此,通过研究磁性金属/磁绝缘体/铂多层结构中的自旋输运,证明了相干磁振子可以在磁绝缘体的磁振子带隙之上有效地转移自旋。特别是驻立自旋波模式可以通过诱导共振磁振子传输极大地增强自旋流。此外,在磁振子带隙内,观察到由于相干磁振子的阻塞导致自旋传输停止。所展示的磁振子传输增强和滤波效应为调制磁振子器件中的自旋电流提供了一种有效的方法。