Solid State Physics Laboratory, ETH Zürich, 8093 Zürich, Switzerland.
Niels Bohr International Academy and Center for Quantum Devices, Niels Bohr Institute, University of Copenhagen, 2100 Copenhagen, Denmark.
Phys Rev Lett. 2016 Apr 1;116(13):136804. doi: 10.1103/PhysRevLett.116.136804.
In a quantum Hall ferromagnet, the spin polarization of the two-dimensional electron system can be dynamically transferred to nuclear spins in its vicinity through the hyperfine interaction. The resulting nuclear field typically acts back locally, modifying the local electronic Zeeman energy. Here we report a nonlocal effect arising from the interplay between nuclear polarization and the spatial structure of electronic domains in a ν=2/3 fractional quantum Hall state. In our experiments, we use a quantum point contact to locally control and probe the domain structure of different spin configurations emerging at the spin phase transition. Feedback between nuclear and electronic degrees of freedom gives rise to memristive behavior, where electronic transport through the quantum point contact depends on the history of current flow. We propose a model for this effect which suggests a novel route to studying edge states in fractional quantum Hall systems and may account for so-far unexplained oscillatory electronic-transport features observed in previous studies.
在量子 Hall 铁磁体中,通过超精细相互作用,二维电子系统的自旋极化可以动态地转移到其附近的核自旋上。由此产生的核场通常会局部反向作用,改变局部电子塞曼能量。在这里,我们报告了一种源于核极化和电子畴结构相互作用的非局域效应,这种效应出现在 ν=2/3 分数量子霍尔态中。在我们的实验中,我们使用量子点接触来局部控制和探测在自旋相变中出现的不同自旋组态的畴结构。核和电子自由度之间的反馈导致忆阻行为,其中通过量子点接触的电子输运取决于电流流动的历史。我们提出了一个模型来解释这种效应,这为研究分数量子 Hall 系统中的边缘态提供了一种新的途径,也可能解释了之前研究中观察到的迄今未解释的电子输运特征的振荡。