论文标题
观察Bloch振荡和在超导处理器上的Wannier-Start定位
Observation of Bloch Oscillations and Wannier-Stark Localization on a Superconducting Processor
论文作者
论文摘要
Bloch振荡(BO)和Wannier-Stark定位(WSL)是关于凝聚物物理学中金属绝缘体过渡的基本概念。这些现象也已经在半导体超晶格中观察到,并在光子波导阵列和冷原子等平台中进行了模拟。在这里,我们报告了对BOS和WSL进行的实验研究,该研究用5 Q量的可编程超导处理器进行了模拟,其中有效的Hamiltonian是各向同性$ XY $ SPIN链。通过正确调整所有单个量子位,将线性电势应用于系统时,我们会观察到链条上单个旋转的传播被抑制。它倾向于在其初始位置附近附近振荡,这表明了BOS和WSL的特征。我们验证WSL长度与潜在梯度成反比。得益于我们实验中所有量子位的精确单发读数,我们还可以调查热传输,这需要进行一个以上量子位的关节测量。实验结果表明,作为BOS和WSL的重要特征,在线性电势下,热传输也被阻塞。我们的实验将可扩展到更多的超导量子位,以模拟量子多体系统中的各种平衡问题。
The Bloch oscillation (BO) and Wannier-Stark localization (WSL) are fundamental concepts about metal-insulator transitions in condensed matter physics. These phenomena have also been observed in semiconductor superlattices and simulated in platforms such as photonic waveguide arrays and cold atoms. Here, we report experimental investigation of BOs and WSL simulated with a 5-qubit programmable superconducting processor, of which the effective Hamiltonian is an isotropic $XY$ spin chain. When applying a linear potential to the system by properly tuning all individual qubits, we observe that the propagation of a single spin on the chain is suppressed. It tends to oscillate near the neighborhood of their initial positions, which demonstrates the characteristics of BOs and WSL. We verify that the WSL length is inversely correlated to the potential gradient. Benefiting from the precise single-shot simultaneous readout of all qubits in our experiments, we can also investigate the thermal transport, which requires the joint measurement of more than one qubits. The experimental results show that, as an essential characteristic for BOs and WSL, the thermal transport is also blocked under a linear potential. Our experiment would be scalable to more superconducting qubits for simulating various of out-of-equilibrium problems in quantum many-body systems.