Müller M, Liensberger L, Flacke L, Huebl H, Kamra A, Belzig W, Gross R, Weiler M, Althammer M
Walther-Meißner-Institut, Bayerische Akademie der Wissenschaften, 85748 Garching, Germany.
Physik-Department, Technische Universität München, 85748 Garching, Germany.
Phys Rev Lett. 2021 Feb 26;126(8):087201. doi: 10.1103/PhysRevLett.126.087201.
We investigate the injection of quasiparticle spin currents into a superconductor via spin pumping from an adjacent ferromagnetic metal layer. To this end, we use NbN-Ni_{80}Fe_{20}(Py) heterostructures with a Pt spin sink layer and excite ferromagnetic resonance in the Permalloy layer by placing the samples onto a coplanar waveguide. A phase sensitive detection of the microwave transmission signal is used to quantitatively extract the inductive coupling strength between the sample and the coplanar waveguide, interpreted in terms of inverse current-induced torques, in our heterostructures as a function of temperature. Below the superconducting transition temperature T_{c}, we observe a suppression of the dampinglike torque generated in the Pt layer by the inverse spin Hall effect, which can be understood by the changes in spin current transport in the superconducting NbN layer. Moreover, below T_{c} we find a large fieldlike current-induced torque.
我们研究了通过从相邻铁磁金属层进行自旋泵浦,将准粒子自旋电流注入超导体的过程。为此,我们使用了带有铂自旋吸收层的氮化铌 - 镍铁合金(Py)异质结构,并通过将样品放置在共面波导上,在坡莫合金层中激发铁磁共振。利用微波传输信号的相敏检测来定量提取样品与共面波导之间的电感耦合强度,根据逆电流感应转矩来解释,在我们的异质结构中,该强度是温度的函数。在超导转变温度(T_{c})以下,我们观察到由逆自旋霍尔效应在铂层中产生的类似阻尼转矩受到抑制,这可以通过超导氮化铌层中自旋电流传输的变化来理解。此外,在(T_{c})以下,我们发现了一个大的类似场的电流感应转矩。