论文标题
在可编程的2000 Qubit Ising链中连贯的量子退火
Coherent quantum annealing in a programmable 2000-qubit Ising chain
论文作者
论文摘要
量子模拟已成为一种有价值的领域,用于证明和了解近期量子计算机的功能。量子退火已成功地用于模拟一系列开放量子系统,无论是在平衡和均衡状态下。但是,在以前的所有实验中,由于环境的热效应开始,退火太慢而无法相干地模拟封闭的量子系统。在这里,我们通过在1D横向场链的范式设置中通过量子相变的量子相变演示了连贯的演变,在可编程量子退火器中最多使用2000个超导通量量子。在大型系统中,我们观察到具有理论上预测的扭结统计数据的量子千阵容机制,以及与系统温度无关的特征正相关相关性。在小链中,激发统计数据验证了最小间隙的Landau-Zener转变的图像。在这两种情况下,结果均与封闭系统量子模型的分析解决方案都符合定量一致。对于较慢的退火,我们观察到跨量子量量子状态的抗Kibble-Zurek缩放。这些实验表明,大规模量子退火器可以连贯地操作,为利用量子优化,机器学习和仿真任务中的一致动力学铺平了道路。
Quantum simulation has emerged as a valuable arena for demonstrating and understanding the capabilities of near-term quantum computers. Quantum annealing has been used successfully in simulating a range of open quantum systems, both at equilibrium and out of equilibrium. However, in all previous experiments, annealing has been too slow to simulate a closed quantum system coherently, due to the onset of thermal effects from the environment. Here we demonstrate coherent evolution through a quantum phase transition in the paradigmatic setting of the 1D transverse-field Ising chain, using up to 2000 superconducting flux qubits in a programmable quantum annealer. In large systems we observe the quantum Kibble-Zurek mechanism with theoretically predicted kink statistics, as well as characteristic positive kink-kink correlations, independent of system temperature. In small chains, excitation statistics validate the picture of a Landau-Zener transition at a minimum gap. In both cases, results are in quantitative agreement with analytical solutions to the closed-system quantum model. For slower anneals we observe anti-Kibble-Zurek scaling in a crossover to the open quantum regime. These experiments demonstrate that large-scale quantum annealers can be operated coherently, paving the way to exploiting coherent dynamics in quantum optimization, machine learning, and simulation tasks.