CAS Key Laboratory of Microscale Magnetic Resonance and Department of Modern Physics, University of Science and Technology of China, Hefei 230026, China.
Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei 230026, China.
Phys Rev Lett. 2018 Mar 23;120(12):120501. doi: 10.1103/PhysRevLett.120.120501.
Adiabatic cyclic modulation of a one-dimensional periodic potential will result in quantized charge transport, which is termed the Thouless pump. In contrast to the original Thouless pump restricted by the topology of the energy band, here we experimentally observe a generalized Thouless pump that can be extensively and continuously controlled. The extraordinary features of the new pump originate from interband coherence in nonequilibrium initial states, and this fact indicates that a quantum superposition of different eigenstates individually undergoing quantum adiabatic following can also be an important ingredient unavailable in classical physics. The quantum simulation of this generalized Thouless pump in a two-band insulator is achieved by applying delicate control fields to a single spin in diamond. The experimental results demonstrate all principal characteristics of the generalized Thouless pump. Because the pumping in our system is most pronounced around a band-touching point, this work also suggests an alternative means to detect quantum or topological phase transitions.
一维周期性势的绝热循环调制将导致量子化电荷输运,这被称为 Thouless 泵。与受能带拓扑限制的原始 Thouless 泵不同,我们在这里实验观察到一种广义的 Thouless 泵,可以广泛且连续地控制。新泵的非凡特征源于非平衡初始态中的能带间相干性,这一事实表明,不同本征态的量子叠加,每个本征态都经历量子绝热过程,也可能是经典物理学中缺失的一个重要成分。在金刚石中通过施加精细控制场到单个自旋,实现了对双带绝缘体中这种广义 Thouless 泵的量子模拟。实验结果证明了广义 Thouless 泵的所有主要特征。由于我们系统中的泵送在能带接触点附近最为明显,因此这项工作还为检测量子或拓扑相变提供了另一种方法。