Thekkadath G S, Saaltink R Y, Giner L, Lundeen J S
Department of Physics, Centre for Research in Photonics, University of Ottawa, 25 Templeton Street, Ottawa, Ontario K1N 6N5, Canada.
Phys Rev Lett. 2017 Aug 4;119(5):050405. doi: 10.1103/PhysRevLett.119.050405.
In a classical world, simultaneous measurements of complementary properties (e.g., position and momentum) give a system's state. In quantum mechanics, measurement-induced disturbance is largest for complementary properties and, hence, limits the precision with which such properties can be determined simultaneously. It is tempting to try to sidestep this disturbance by copying the system and measuring each complementary property on a separate copy. However, perfect copying is physically impossible in quantum mechanics. Here, we investigate using the closest quantum analog to this copying strategy, optimal cloning. The coherent portion of the generated clones' state corresponds to "twins" of the input system. Like perfect copies, both twins faithfully reproduce the properties of the input system. Unlike perfect copies, the twins are entangled. As such, a measurement on both twins is equivalent to a simultaneous measurement on the input system. For complementary observables, this joint measurement gives the system's state, just as in the classical case. We demonstrate this experimentally using polarized single photons.
在经典世界中,对互补性质(例如位置和动量)的同时测量给出了系统的状态。在量子力学中,测量引起的干扰对于互补性质来说是最大的,因此限制了同时确定这些性质的精度。人们很想通过复制系统并在单独的副本上测量每个互补性质来避开这种干扰。然而,在量子力学中完美复制在物理上是不可能的。在此,我们研究使用与这种复制策略最接近的量子模拟,即最优克隆。所生成克隆状态的相干部分对应于输入系统的“孪生体”。与完美副本一样,两个孪生体都忠实地再现了输入系统的性质。与完美副本不同的是,孪生体是纠缠的。因此,对两个孪生体的测量等同于对输入系统的同时测量。对于互补可观测量,这种联合测量给出了系统的状态,就如同在经典情形中一样。我们使用偏振单光子通过实验证明了这一点。