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基于有机磁体V(TCNE)(TCNE = 四氰基乙烯)中的自旋波激发、检测与应用

Spin Wave Excitation, Detection, and Utilization in the Organic-Based Magnet, V(TCNE) (TCNE = Tetracyanoethylene).

作者信息

Liu Haoliang, Malissa Hans, Stolley Ryan M, Singh Jaspal, Groesbeck Matthew, Popli Henna, Kavand Marzieh, Chong Su Kong, Deshpande Vikram V, Miller Joel S, Boehme Christoph, Vardeny Z Valy

机构信息

Department of Physics and Astronomy, University of Utah, Salt Lake City, UT, 84112, USA.

Department of Chemistry, University of Utah, Salt Lake City, UT, 84112, USA.

出版信息

Adv Mater. 2020 Oct;32(39):e2002663. doi: 10.1002/adma.202002663. Epub 2020 Aug 26.

Abstract

Spin waves, quantized as magnons, have low energy loss and magnetic damping, which are critical for devices based on spin-wave propagation needed for information processing devices. The organic-based magnet [V(TCNE) ; TCNE = tetracyanoethylene; x ≈ 2] has shown an extremely low magnetic damping comparable to, for example, yttrium iron garnet (YIG). The excitation, detection, and utilization of coherent and non-coherent spin waves on various modes in V(TCNE) is demonstrated and show that the angular momentum carried by microwave-excited coherent spin waves in a V(TCNE) film can be transferred into an adjacent Pt layer via spin pumping and detected using the inverse spin Hall effect. The spin pumping efficiency can be tuned by choosing different excited spin wave modes in the V(TCNE) film. In addition, it is shown that non-coherent spin waves in a V(TCNE) film, excited thermally via the spin Seebeck effect, can also be used as spin pumping source that generates an electrical signal in Pt with a sign change in accordance with the magnetization switching of the V(TCNE) . Combining coherent and non-coherent spin wave detection, the spin pumping efficiency can be thermally controlled, and new insight is gained for the spintronic applications of spin wave modes in organic-based magnets.

摘要

作为磁振子被量子化的自旋波具有低能量损耗和磁阻尼,这对于基于信息处理设备所需的自旋波传播的器件至关重要。有机基磁体[V(TCNE);TCNE = 四氰基乙烯;x≈2]已显示出极低的磁阻尼,例如可与钇铁石榴石(YIG)相媲美。在V(TCNE)中各种模式下相干和非相干自旋波的激发、检测和利用得到了证明,结果表明,V(TCNE)薄膜中微波激发的相干自旋波所携带的角动量可通过自旋泵浦转移到相邻的Pt层,并利用逆自旋霍尔效应进行检测。自旋泵浦效率可通过在V(TCNE)薄膜中选择不同的激发自旋波模式来调节。此外,研究表明,V(TCNE)薄膜中通过自旋塞贝克效应热激发的非相干自旋波也可用作自旋泵浦源,该源在Pt中产生与V(TCNE)的磁化切换符号变化一致的电信号。结合相干和非相干自旋波检测,可以对自旋泵浦效率进行热控制,并且为有机基磁体中自旋波模式的自旋电子学应用获得了新的见解。

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