论文标题
在石墨烯抗铁磁绝缘子中调整自旋传输
Tuning Spin Transport in a Graphene Antiferromagnetic Insulator
论文作者
论文摘要
通过抗铁磁绝缘子(AFMI)的长距离自旋运输是Spintronics研究的长期目标。与常规的旋转系统不同,量子厅制度(QH)中的单层石墨烯具有自旋极化的前所未有的可调性和QH边缘状态中的电荷载体密度。在这里,使用栅极控制的QH边缘作为自旋依赖性喷油器和全透phaphene电路中的探测器,我们首次演示了通过石墨烯$ν$ = 0 afmis的Ambipolar旋转传输的选择性调整。通过调节具有相反手势的激发偏置,磁场和电荷载体的极性,我们表明,旋转注射器区域中相邻边缘通道的自旋化学电位之间的差异对于调整整个石墨烯AFMI观察到的自旋传输至关重要。我们证明,当我们的设备中的自旋滤波器不再选择特定的自旋极化时,非本地响应会在共同传播边缘通道的逆转方向上消失。我们的结果建立了一套多功能的方法,可以通过抗铁磁介质调整纯自旋传输,并为探索其应用于广泛的抗磁性旋转式研究的广泛领域的途径。
Long-distance spin transport through anti-ferromagnetic insulators (AFMIs) is a long-standing goal of spintronics research. Unlike conventional spintronics systems, monolayer graphene in quantum Hall regime (QH) offers an unprecedented tuneability of spin-polarization and charge carrier density in QH edge states. Here, using gate-controlled QH edges as spin-dependent injectors and detectors in an all-graphene electrical circuit, for the first time we demonstrate a selective tuning of ambipolar spin transport through graphene $ν$=0 AFMIs. By modulating polarities of the excitation bias, magnetic fields, and charge carriers that host opposite chiralities, we show that the difference between spin chemical potentials of adjacent edge channels in the spin-injector region is crucial in tuning spin-transport observed across graphene AFMI. We demonstrate that non-local response vanishes upon reversing directions of the co-propagating edge channels when the spin-filters in our devices are no longer selective for a particular spin-polarization. Our results establish a versatile set of methods to tune pure spin transport via an anti-ferromagnetic media and open a pathway to explore their applications for a broad field of antiferromagnetic spintronics research.