论文标题
拓扑铁磁铁的宏观量子隧道
Macroscopic Quantum Tunneling of a Topological Ferromagnet
论文作者
论文摘要
物质拓扑状态的最近出现产生了许多重大发现。量子异常霍尔效应[1-3]是一个很好的例子,因为它在量子计量学中的应用潜力[4,5]及其对对基本拓扑和磁性状态的基本研究的影响[6-11]和轴支电动力学[2,12-14]。在这里,我们对A(V,BI,SB)2TE3铁磁拓扑绝缘子纳米结构进行电子传输研究。这使我们可以访问单个铁磁域的动态。该结构域的体积估计约为85 000 nm3,含有约50 000个钒原子,分布在115 nm的宏观距离上。在霍尔信号中观察到该域的磁化波动产生的电报噪声。仔细分析温度和外部磁场对域切换统计的影响提供了证据,证明了磁化强度[15-22]的量子状态[15-22]。这种铁磁宏生不仅是观察到量子隧穿的最大磁对象,而且还是物质拓扑状态下对效果的首次观察。
The recent advent of topological states of matter spawned many significant discoveries. The quantum anomalous Hall effect[1-3] is a prime example due to its potential for applications in quantum metrology[4, 5] as well as its influence on fundamental research into the underlying topological and magnetic states[6-11] and axion electrodynamics[2, 12-14]. Here, we perform electronic transport studies on a (V,Bi,Sb)2Te3 ferromagnetic topological insulator nanostructure in the quantum anomalous Hall regime. This allows us access to the dynamics of an individual ferromagnetic domain. The volume of the domain is estimated to be about 85 000 nm3, containing some 50 000 vanadium atoms, spread over a macroscopic distance of 115 nm. Telegraph noise resulting from the magnetization fluctuations of this domain is observed in the Hall signal. Careful analysis of the influence of temperature and external magnetic field on the domain switching statistics provides evidence for quantum tunneling of magnetization[15-22] in a macrospin state. This ferromagnetic macrospin is not only the largest magnetic object in which quantum tunneling has been observed, but also the first observation of the effect in a topological state of matter.