Department of Physics, University of Ottawa, 25 Templeton Street, Ottawa, Ontario K1N 6N5, Canada.
Department of Physics, University of Ottawa, 25 Templeton Street, Ottawa, Ontario K1N 6N5, Canada.; Institute of Optics, University of Rochester, Rochester, NY 14627, USA.
Sci Adv. 2017 Feb 3;3(2):e1601915. doi: 10.1126/sciadv.1601915. eCollection 2017 Feb.
Attempts at cloning a quantum system result in the introduction of imperfections in the state of the copies. This is a consequence of the no-cloning theorem, which is a fundamental law of quantum physics and the backbone of security for quantum communications. Although perfect copies are prohibited, a quantum state may be copied with maximal accuracy via various optimal cloning schemes. Optimal quantum cloning, which lies at the border of the physical limit imposed by the no-signaling theorem and the Heisenberg uncertainty principle, has been experimentally realized for low-dimensional photonic states. However, an increase in the dimensionality of quantum systems is greatly beneficial to quantum computation and communication protocols. Nonetheless, no experimental demonstration of optimal cloning machines has hitherto been shown for high-dimensional quantum systems. We perform optimal cloning of high-dimensional photonic states by means of the symmetrization method. We show the universality of our technique by conducting cloning of numerous arbitrary input states and fully characterize our cloning machine by performing quantum state tomography on cloned photons. In addition, a cloning attack on a Bennett and Brassard (BB84) quantum key distribution protocol is experimentally demonstrated to reveal the robustness of high-dimensional states in quantum cryptography.
克隆量子系统的尝试会导致复制品状态的不完美。这是量子物理学基本定律——克隆定理的结果,也是量子通信安全性的基础。尽管禁止完美复制,但可以通过各种最优克隆方案以最大精度复制量子态。最优量子克隆位于无信号定理和海森堡不确定性原理施加的物理极限边界上,已经在低维光子态的实验中得到了实现。然而,量子系统的维度增加对于量子计算和通信协议非常有益。尽管如此,迄今为止,尚未在高维量子系统中展示最优克隆机的实验演示。我们通过对称化方法对高维光子态进行最优克隆。我们通过克隆大量任意输入态展示了我们技术的通用性,并通过对克隆光子进行量子态层析成像来充分表征我们的克隆机。此外,我们还通过实验演示了对 Bennett 和 Brassard(BB84)量子密钥分发协议的克隆攻击,以揭示量子密码学中高维态的稳健性。