Dobrovolskiy Oleksandr V, Huth Michael, Shklovskij Valerij A, Vovk Ruslan V
Physikalisches Institut, Goethe University, Frankfurt am Main, 60438, Germany.
Physics Department, V. Karazin Kharkiv National University, Kharkiv, 61022, Ukraine.
Sci Rep. 2017 Oct 23;7(1):13740. doi: 10.1038/s41598-017-14232-z.
The interaction of (quasi)particles with a periodic potential arises in various domains of science and engineering, such as solid-state physics, chemical physics, and communication theory. An attractive test ground to investigate this interaction is represented by superconductors with artificial pinning sites, where magnetic flux quanta (Abrikosov vortices) interact with the pinning potential U(r) = U(r + R) induced by a nanostructure. At a combination of microwave and dc currents, fluxons act as mobile probes of U(r): The ac component shakes the fluxons in the vicinity of their equilibrium points which are unequivocally determined by the local pinning force counterbalanced by the Lorentz force induced by the dc current, linked to the curvature of U(r) which can then be used for a successful fitting of the voltage responses. A good correlation of the deduced dependences U(r) with the cross sections of the nanostructures points to that pinning is primarily caused by vortex length reduction. Our findings pave a new route to a non-destructive evaluation of periodic pinning in superconductor thin films. The approach should also apply to a broad class of systems whose evolution in time can be described by the coherent motion of (quasi)particles in a periodic potential.
(准)粒子与周期性势场的相互作用出现在科学和工程的各个领域,如固态物理学、化学物理学和通信理论。研究这种相互作用的一个有吸引力的试验场是具有人工钉扎位点的超导体,其中磁通量量子(阿布里科索夫涡旋)与由纳米结构诱导的钉扎势U(r) = U(r + R)相互作用。在微波和直流电流的组合作用下,磁通子充当U(r)的移动探针:交流分量使磁通子在其平衡点附近振动,这些平衡点由与直流电流感应的洛伦兹力平衡的局部钉扎力明确确定,该洛伦兹力与U(r)的曲率相关,然后可用于成功拟合电压响应。推导得到的U(r)依赖关系与纳米结构的横截面具有良好的相关性,这表明钉扎主要是由涡旋长度减小引起的。我们的发现为超导体薄膜中周期性钉扎的无损评估开辟了一条新途径。该方法也应适用于一类广泛的系统,其随时间的演化可以用(准)粒子在周期性势场中的相干运动来描述。