| Literature DB >> 31748514 |
Q Li1, M Yang1, C Klewe2, P Shafer2, A T N'Diaye2, D Hou3, T Y Wang1, N Gao1, E Saitoh3, C Hwang4, R J Hicken5, J Li6, E Arenholz2, Z Q Qiu7.
Abstract
The recent discovery of spin current transmission through antiferromagnetic insulating materials opens up vast opportunities for fundamental physics and spintronics applications. The question currently surrounding this topic is: whether and how could THz antiferromagnetic magnons mediate a GHz spin current? This mismatch of frequencies becomes particularly critical for the case of coherent ac spin current, raising the fundamental question of whether a GHz ac spin current can ever keep its coherence inside an antiferromagnetic insulator and so drive the spin precession of another ferromagnet layer coherently? Utilizing element- and time-resolved x-ray pump-probe measurements on Py/Ag/CoO/Ag/Fe75Co25/MgO(001) heterostructures, here we demonstrate that a coherent GHz ac spin current pumped by the Py ferromagnetic resonance can transmit coherently across an antiferromagnetic CoO insulating layer to drive a coherent spin precession of the Fe75Co25 layer. Further measurement results favor thermal magnons rather than evanescent spin waves as the mediator of the coherent ac spin current in CoO.Entities:
Year: 2019 PMID: 31748514 PMCID: PMC6868243 DOI: 10.1038/s41467-019-13280-5
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Ac spin current transmission through the CoO layer. a Schematic drawing of the spin configuration within the sample. b FMR fields for the Py and Fe75Co25 layers within the Py/Ag/CoO/Ag(10 nm)/Fe75Co25/MgO(001) sample. The dashed line shows where the ac XMCD/XMLD measurement was performed at the ALS. c, d Ac XMCD signals showing Py and Fe75Co25 spin precession at the Py FMR field at 280 K and 180 K, respectively. e Temperature-dependent ratio of Fe75Co25 precession amplitude to Py precession amplitude AFeCo⁄APy for the Py/Ag/CoO/Ag(2 nm)/Fe75Co25/MgO(001) and Py/Ag/CoO/Ag(10 nm)/Fe75Co25/MgO(001) samples. The error bars denote the standard errors of the means determined from the fittings of Fe75Co25 spin procession. f Temperature-dependent ratio of the Co precession amplitude to the Py precession amplitude for the Py/Ag/Co/CoO/MgO(001) sample
Fig. 2Separation of spin current and interlayer coupling contributions to the torque driving the Fe75Co25 spin precession. a Schematic drawing of ac spin current and interlayer coupling as the driving mechanisms of Fe75Co25 spin precession originating from the Py FMR. b, d Field dependence of the amplitude and c, e field dependence of the phase of Py and Fe75Co25 spin precession at 280 K from b, c Py/Ag/CoO/Ag(2 nm)/Fe75Co25 and d, e Py/Ag/CoO/Ag(10 nm)/Fe75Co25, respectively. Red and blue lines are fits to the Py and Fe75Co25 signals, respectively. The error bars denote the standard errors of the means determined from the fittings of FM spin procession. f Temperature dependence of the spin current (βsc) and interlayer coupling (βint) coefficients for the two samples. The error bars denote the standard errors of the means determined from the fittings of field-dependent FM spin processions based on Eq. (1) and Eq. (2)
Fig. 3Measurement of AFM CoO spin axis precession. a Py ac XMCD signal at 210 K. CoO ac XMLD signal at b 210 K and c 280 K