Kunjwal Ravi, Baumeler Ämin
Centre for Quantum Information and Communication (QuIC), Ecole polytechnique de Bruxelles, CP 165, Université libre de Bruxelles, 1050 Brussels, Belgium.
Facoltà di scienze informatiche, Università della Svizzera italiana, 6900 Lugano, Switzerland.
Phys Rev Lett. 2023 Sep 22;131(12):120201. doi: 10.1103/PhysRevLett.131.120201.
Quantum theory admits ensembles of quantum nonlocality without entanglement (QNLWE). These ensembles consist of seemingly classical states (they are perfectly distinguishable and nonentangled) that cannot be perfectly discriminated with local operations and classical communication (LOCC). Here, we analyze QNLWE from a causal perspective, and show how to perfectly discriminate some of these ensembles using local operations and classical communication without definite causal order. Specifically, three parties with access to an instance of indefinite causal order-the Araújo-Feix-Baumeler-Wolf process-can perfectly discriminate the states in a QNLWE ensemble-the SHIFT ensemble-with local operations. Hence, this type of quantum nonlocality disappears at the expense of definite causal order while retaining classical communication. Our results thereby leverage the fact that LOCC is a conjunction of three constraints: local operations, classical communication, and definite causal order. Moreover, we show how multipartite generalizations of the Araújo-Feix-Baumeler-Wolf process are transformed into multiqubit ensembles that exhibit QNLWE. Such ensembles are of independent interest for cryptographic protocols and for the study of separable quantum operations unachievable with LOCC.
量子理论允许存在无纠缠的量子非定域性系综(QNLWE)。这些系综由看似经典的态组成(它们是完全可区分且无纠缠的),但无法通过局域操作和经典通信(LOCC)来完美区分。在此,我们从因果关系的角度分析QNLWE,并展示如何在没有确定因果顺序的情况下,利用局域操作和经典通信来完美区分其中一些系综。具体而言,三方若能访问一个具有不确定因果顺序的实例——阿劳若 - 费克斯 - 鲍姆勒 - 沃尔夫过程——就可以通过局域操作完美区分QNLWE系综中的态——SHIFT系综。因此,这种类型的量子非定域性以确定的因果顺序为代价消失了,同时保留了经典通信。我们的结果由此利用了这样一个事实,即LOCC是三个约束条件的结合:局域操作、经典通信和确定的因果顺序。此外,我们展示了阿劳若 - 费克斯 - 鲍姆勒 - 沃尔夫过程的多方推广如何转化为展现QNLWE的多量子比特系综。这样的系综对于密码协议以及对LOCC无法实现的可分量子操作的研究具有独立的意义。