Azses Daniel, Haenel Rafael, Naveh Yehuda, Raussendorf Robert, Sela Eran, Dalla Torre Emanuele G
Department of Physics, Bar-Ilan University, Ramat Gan 5290002, Israel.
Center for Quantum Entanglement Science and Technology, Bar-Ilan University, Ramat Gan 5290002, Israel.
Phys Rev Lett. 2020 Sep 18;125(12):120502. doi: 10.1103/PhysRevLett.125.120502.
Identifying topological properties is a major challenge because, by definition, topological states do not have a local order parameter. While a generic solution to this challenge is not available yet, a broad class of topological states, namely, symmetry-protected topological (SPT) states, can be identified by distinctive degeneracies in their entanglement spectrum. Here, we propose and realize two complementary protocols to probe these degeneracies based on, respectively, symmetry-resolved entanglement entropies and measurement-based computational algorithms. The two protocols link quantum information processing to the classification of SPT phases of matter. They invoke the creation of a cluster state and are implemented on an IBM quantum computer. The experimental findings are compared to noisy simulations, allowing us to study the stability of topological states to perturbations and noise.
识别拓扑性质是一项重大挑战,因为根据定义,拓扑态没有局部序参量。虽然目前还没有针对这一挑战的通用解决方案,但一大类拓扑态,即对称保护拓扑(SPT)态,可以通过其纠缠谱中的独特简并性来识别。在这里,我们提出并实现了两种互补的协议,分别基于对称分辨纠缠熵和基于测量的计算算法来探测这些简并性。这两种协议将量子信息处理与物质的SPT相分类联系起来。它们需要创建一个簇态,并在IBM量子计算机上实现。实验结果与有噪声的模拟进行了比较,使我们能够研究拓扑态对微扰和噪声的稳定性。