| Literature DB >> 31048551 |
Zhiguang Yan1,2, Yu-Ran Zhang3,4,5, Ming Gong1,2, Yulin Wu1,2, Yarui Zheng1,2, Shaowei Li1,2, Can Wang1,2, Futian Liang1,2, Jin Lin1,2, Yu Xu1,2, Cheng Guo1,2, Lihua Sun1,2, Cheng-Zhi Peng1,2, Keyu Xia6,7,4, Hui Deng1,2, Hao Rong1,2, J Q You8,3, Franco Nori4,9, Heng Fan10,11, Xiaobo Zhu12,2, Jian-Wei Pan1,2.
Abstract
Quantum walks are the quantum analogs of classical random walks, which allow for the simulation of large-scale quantum many-body systems and the realization of universal quantum computation without time-dependent control. We experimentally demonstrate quantum walks of one and two strongly correlated microwave photons in a one-dimensional array of 12 superconducting qubits with short-range interactions. First, in one-photon quantum walks, we observed the propagation of the density and correlation of the quasiparticle excitation of the superconducting qubit and quantum entanglement between qubit pairs. Second, when implementing two-photon quantum walks by exciting two superconducting qubits, we observed the fermionization of strongly interacting photons from the measured time-dependent long-range anticorrelations, representing the antibunching of photons with attractive interactions. The demonstration of quantum walks on a quantum processor, using superconducting qubits as artificial atoms and tomographic readout, paves the way to quantum simulation of many-body phenomena and universal quantum computation.Entities:
Year: 2019 PMID: 31048551 DOI: 10.1126/science.aaw1611
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728