
The -type four-particle entangled state generated by using superconducting artificial atoms with broken symmetry
Author(s) -
Chun-Ling Leng,
Ying-Qiao Zhang,
Xin Ji
Publication year - 2015
Publication title -
wuli xuebao
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.199
H-Index - 47
ISSN - 1000-3290
DOI - 10.7498/aps.64.184207
Subject(s) - physics , qubit , coherence (philosophical gambling strategy) , circuit quantum electrodynamics , atom (system on chip) , excited state , coupling (piping) , quantum mechanics , symmetry (geometry) , scheme (mathematics) , resonator , atomic physics , topology (electrical circuits) , quantum , computer science , optoelectronics , materials science , geometry , mathematics , mathematical analysis , combinatorics , metallurgy , embedded system
We propose a scheme for generating a genuine -type four-particle entangled state of superconducting artificial atoms with broken symmetry by using one-dimensional transmission line resonator as a data bus. With the help of the Circuit quantum electrodynamics system composed of -type three-level artificial atoms and transmission line resonator, our scheme also has long coherence time and storage time. Meanwhile, the -type three-level artificial atom used in the scheme is different from natural atom and has cyclic transitions. Furthermore, our scheme is easy to control and flexible. Through a suitable choice of the Rabi frequencies and detunings of the classical fields, we can use this system to implement the selective coupling between two arbitrary qubits. After suitable interaction time and simple operations, the desired entangled state can be obtained. Since artificial atomic excited states and photonic states are adiabatically eliminated, our scheme is robust against the spontaneous emissions of artificial atoms and the decays of transmission line resonator. We also analyze the performance and the experimental feasibility of the scheme, and show that our scheme is feasible under existing experimental conditions.