GSTDTAP  > 地球科学
DOI10.1038/s41586-020-1950-4
Spin current from sub-terahertz-generated antiferromagnetic magnons
Zemp, M.; Huss, M.; Thibert, E.; Eckert, N.; McNabb, R.; Huber, J.; Barandun, M.; Machguth, H.; Nussbaumer, S. U.; Gartner-Roer, I.; Thomson, L.; Paul, F.; Maussion, F.; Kutuzov, S.; Cogley, J. G.
2020-01-30
发表期刊NATURE
ISSN0028-0836
EISSN1476-4687
出版年2020
卷号578期号:7793页码:70-+
文章类型Article
语种英语
国家USA
英文关键词

Pure spin currents are simultaneously generated and detected electrically through sub-terahertz magnons in the antiferromagnetic insulator Cr2O3, demonstrating the potential of magnon excitations in antiferromagnets for high-frequency spintronic devices.


Spin dynamics in antiferromagnets has much shorter timescales than in ferromagnets, offering attractive properties for potential applications in ultrafast devices(1-3). However, spin-current generation via antiferromagnetic resonance and simultaneous electrical detection by the inverse spin Hall effect in heavy metals have not yet been explicitly demonstrated(4-6). Here we report sub-terahertz spin pumping in heterostructures of a uniaxial antiferromagnetic Cr2O3 crystal and a heavy metal (Pt or Ta in its beta phase). At 0.240 terahertz, the antiferromagnetic resonance in Cr2O3 occurs at about 2.7 tesla, which excites only right-handed magnons. In the spin-canting state, another resonance occurs at 10.5 tesla from the precession of induced magnetic moments. Both resonances generate pure spin currents in the heterostructures, which are detected by the heavy metal as peaks or dips in the open-circuit voltage. The pure-spin-current nature of the electrically detected signals is unambiguously confirmed by the reversal of the voltage polarity observed under two conditions: when switching the detector metal from Pt to Ta, reversing the sign of the spin Hall angle(7-9), and when flipping the magnetic-field direction, reversing the magnon chirality(4,5). The temperature dependence of the electrical signals at both resonances suggests that the spin current contains both coherent and incoherent magnon contributions, which is further confirmed by measurements of the spin Seebeck effect and is well described by a phenomenological theory. These findings reveal the unique characteristics of magnon excitations in antiferromagnets and their distinctive roles in spin-charge conversion in the high-frequency regime.


领域地球科学 ; 气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000509653700002
WOS关键词RESONANCE ; MEMORY
WOS类目Multidisciplinary Sciences
WOS研究方向Science & Technology - Other Topics
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/281458
专题地球科学
资源环境科学
气候变化
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GB/T 7714
Zemp, M.,Huss, M.,Thibert, E.,et al. Spin current from sub-terahertz-generated antiferromagnetic magnons[J]. NATURE,2020,578(7793):70-+.
APA Zemp, M..,Huss, M..,Thibert, E..,Eckert, N..,McNabb, R..,...&Cogley, J. G..(2020).Spin current from sub-terahertz-generated antiferromagnetic magnons.NATURE,578(7793),70-+.
MLA Zemp, M.,et al."Spin current from sub-terahertz-generated antiferromagnetic magnons".NATURE 578.7793(2020):70-+.
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