论文标题
激活隐藏的传送能力:理论和实验
Activating Hidden Teleportation Power: Theory and Experiment
论文作者
论文摘要
理想的量子传送带通过使用最大纠缠状态和经典信息的通信将未知的量子状态完整地从一个党派爱丽丝转移到另一个BOB。如果爱丽丝(Alice)和鲍勃(Bob)不共享纠缠,则根据经典的措施和培训方案,要传送和所收到的状态之间的最大平均忠诚度是由函数$ f _ {\ mathrm {c}} $上限的上限,与Hilbert Space Remension截然不同。实际上,即使它们共享纠缠,所谓的传送保真度仍然可能小于经典阈值$ f _ {\ mathrm {c}} $。对于以成功的本地过滤条件为条件的两倍的纠缠状态,可以始终激活传送保真度,即在$ f _ {\ mathrm {c}} $之上增强。在这里,对于大于两个的所有维度,我们表明,隐藏在纠缠的两个问题的Werner状态中的传送能力也可以被激活。此外,我们表明,整个两个问题的缺陷状态的整个家庭都违反了可分离性的可分离性标准,因此它们的传送能力要么超过经典阈值,要么可以被激活。使用以光子对制备的杂种纠缠,我们还提供了首次放映的原则实验证明,以证明隐藏在后一个Qubit状态下的传送能力的激活。讨论了激活隐藏的传送能力与密切相关的纠缠蒸馏问题的可能性之间的联系。
Ideal quantum teleportation transfers an unknown quantum state intact from one party Alice to the other Bob via the use of a maximally entangled state and the communication of classical information. If Alice and Bob do not share entanglement, the maximal average fidelity between the state to be teleported and the state received, according to a classical measure-and-prepare scheme, is upper bounded by a function $f_{\mathrm{c}}$ that is inversely proportional to the Hilbert space dimension. In fact, even if they share entanglement, the so-called teleportation fidelity may still be less than the classical threshold $f_{\mathrm{c}}$. For two-qubit entangled states, conditioned on a successful local filtering, the teleportation fidelity can always be activated, i.e., boosted beyond $f_{\mathrm{c}}$. Here, for all dimensions larger than two, we show that the teleportation power hidden in a subset of entangled two-qudit Werner states can also be activated. In addition, we show that an entire family of two-qudit rank-deficient states violates the reduction criterion of separability, and thus their teleportation power is either above the classical threshold or can be activated. Using hybrid entanglement prepared in photon pairs, we also provide the first proof-of-principle experimental demonstration of the activation of teleportation power hidden in this latter family of qubit states. The connection between the possibility of activating hidden teleportation power with the closely-related problem of entanglement distillation is discussed.