Rosenblatt Amir, Konyzheva Sofia, Lafont Fabien, Schiller Noam, Park Jinhong, Snizhko Kyrylo, Heiblum Moty, Oreg Yuval, Umansky Vladimir
Braun Center for Submicron Research, Department of Condensed Matter Physics, Weizmann Institute of Science, Rehovot 761001, Israel.
Institute for Theoretical Physics, University of Cologne, Zülpicher Straße 77, 50937 Köln, Germany.
Phys Rev Lett. 2020 Dec 18;125(25):256803. doi: 10.1103/PhysRevLett.125.256803.
Studies of energy flow in quantum systems complement the information provided by common conductance measurements. The quantum limit of heat flow in one-dimensional ballistic modes was predicted, and experimentally demonstrated, to have a universal value for bosons, fermions, and fractionally charged anyons. A fraction of this value is expected in non-Abelian states; harboring counterpropagating edge modes. In such exotic states, thermal-energy relaxation along the edge is expected, and can shed light on their topological nature. Here, we introduce a novel experimental setup that enables a direct observation of thermal-energy relaxation in chiral 1D edge modes in the quantum Hall effect. Edge modes, emanating from a heated reservoir, are partitioned by a quantum point contact (QPC) constriction, which is located at some distance along their path. The resulting low frequency noise, measured downstream, allows determination of the "effective temperature" of the edge mode at the location of the QPC. An expected, prominent energy relaxation was found in hole-conjugate states. However, relaxation was also observed in particlelike states, where heat is expected to be conserved. We developed a model, consisting of distance-dependent energy loss, which agrees with the observations; however, we cannot exclude energy redistribution mechanisms, which are not accompanied with energy loss.
量子系统中的能量流研究补充了普通电导测量所提供的信息。一维弹道模式下热流的量子极限已被预测并通过实验证明,对于玻色子、费米子和分数带电任意子具有一个通用值。在非阿贝尔态中预计会有该值的一部分;存在反向传播的边缘模式。在这种奇异态中,预计会有沿边缘的热能弛豫,这可以揭示它们的拓扑性质。在这里,我们介绍一种新颖的实验装置,它能够直接观测量子霍尔效应中手征一维边缘模式的热能弛豫。从加热的储能器发出的边缘模式被一个量子点接触(QPC)收缩所分隔,该收缩位于沿其路径的一定距离处。在下游测量得到的由此产生的低频噪声允许确定QPC位置处边缘模式的“有效温度”。在空穴共轭态中发现了预期的显著能量弛豫。然而,在类粒子态中也观察到了弛豫,而在这种态中预计热量是守恒的。我们开发了一个由距离相关能量损失组成的模型,它与观测结果相符;然而,我们不能排除不伴随能量损失的能量重新分布机制。