Zhang Ying-Tao, Deng Xinzhou, Sun Qing-Feng, Qiao Zhenhua
College of Physics, Hebei Normal University, Shijiazhuang 050024, China.
ICQD, Hefei National Laboratory for Physical Sciences at Microscale, and Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Sci Rep. 2015 Oct 9;5:14892. doi: 10.1038/srep14892.
The quantum entanglement between two qubits is crucial for applications in the quantum communication. After the entanglement of photons was experimentally realized, much effort has been taken to exploit the entangled electrons in solid-state systems. Here, we propose a Cooper-pair splitter, which can generate spatially-separated but entangled electrons, in a quantum anomalous Hall insulator proximity-coupled with a superconductor. After coupling with a superconductor, the chiral edge states of the quantum anomalous Hall insulator can still survive, making the backscattering impossible. Thus, the local Andreev reflection becomes vanishing, while the crossed Andreev reflection becomes dominant in the scattering process. This indicates that our device can serve as an extremely high-efficiency Cooper-pair splitter. Furthermore, because of the chiral characteristic, our Cooper-pair splitter is robust against disorders and can work in a wide range of system parameters. Particularly, it can still function even if the system length exceeds the superconducting coherence length.
两个量子比特之间的量子纠缠对于量子通信中的应用至关重要。在通过实验实现光子纠缠之后,人们付出了很多努力来开发固态系统中的纠缠电子。在此,我们提出一种库珀对分离器,它可以在与超导体邻近耦合的量子反常霍尔绝缘体中产生空间分离但纠缠的电子。与超导体耦合后,量子反常霍尔绝缘体的手性边缘态仍然可以存在,从而使得背散射不可能发生。因此,局部安德列夫反射消失,而交叉安德列夫反射在散射过程中占主导地位。这表明我们的器件可以用作极高效率的库珀对分离器。此外,由于手性特性,我们的库珀对分离器对无序具有鲁棒性,并且可以在很宽的系统参数范围内工作。特别地,即使系统长度超过超导相干长度,它仍然可以工作。