Network quantum steering enables randomness certification without seed randomness

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2024-07-19 DOI:10.22331/q-2024-07-19-1419
Shubhayan Sarkar
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Abstract

Quantum networks with multiple sources allow the observation of quantum nonlocality without inputs. Consequently, the incompatibility of measurements is not a necessity for observing quantum nonlocality when one has access to multiple quantum sources. Here we investigate the minimal scenario without inputs where one can observe any form of quantum nonlocality. We show that even two parties with two sources that might be classically correlated can witness a form of quantum nonlocality, in particular quantum steering, in networks without inputs if one of the parties is trusted, that is, performs a fixed known measurement. We term this effect as swap-steering. The scenario presented in this work is minimal to observe such an effect. Consequently, a scenario exists where one can observe quantum steering but not Bell non-locality. We further construct a linear witness to observe swap-steering. Interestingly, this witness enables self-testing of the quantum states generated by the sources and the local measurement of the untrusted party. This in turn allows certifying two bits of randomness that can be obtained from the measurement outcomes of the untrusted device without the requirement of initially feeding the device with randomness.
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网络量子转向无需种子随机性即可实现随机性认证
具有多个量子源的量子网络可以在没有输入的情况下观测量子非位置性。因此,当人们可以访问多个量子源时,测量的不兼容性并不是观测量子非位置性的必要条件。在这里,我们研究了无需输入就能观察到任何形式的量子非位置性的最小场景。我们的研究表明,在没有输入的网络中,如果其中一方是可信的,即执行了固定的已知测量,那么即使是拥有两个可能具有经典相关性的量子源的双方,也能观察到某种形式的量子非位置性,特别是量子转向。我们将这种效应称为交换转向。这项工作中提出的场景是观察到这种效应的最低限度。因此,在这种情况下,我们可以观察到量子转向,但无法观察到贝尔非位置性。我们进一步构建了一个线性见证来观察交换转向。有趣的是,这个见证器可以对源泉产生的量子态进行自我测试,并对不可信方进行本地测量。这反过来又可以认证两个比特的随机性,而这两个比特可以从不可信设备的测量结果中获得,无需最初向设备输入随机性。
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
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