首页 | 本学科首页   官方微博 | 高级检索  
     检索      

Spin Squeezed States and Entangled States
作者姓名:王晓光
作者单位:Department of Physics Wuhan University, Wuhan 430072, China
摘    要:The time evolution of spontaneous decay of a two-level atom in one dimension photonic crystals is investigated with three different methods : ( 1 ) using the Markovian approximation, (2) using the constant approximation, and (3) without using any of the two approximations. The second and third methods are Non-Markovian, which yield similar results. The second method gives us a clear physical picture of the effect of the reflected field. The Non- Markovian processes due to the reflected field have great influence on the atomic decay mainly within one tenth of an optical cycle, and reach steady state influence fter one optical cycle. The result of Markovian approximation gives almost the same result of the other two methods after one optical cycle, but misses the details within the one optical cycle.

关 键 词:自旋挤压态  纠缠态  挤压参量  外横断场

Spin Squeezed States and Entangled States
WANG Xiao-guang.Spin Squeezed States and Entangled States[J].Acta Sinica Quantum Optica,2006,12(B08):1-1.
Authors:WANG Xiao-guang
Abstract:We show that spin squeezing implies pairwise entanglement for arbitrary synnutric ultiqubit states. If the squeezing parameter is less than or equal to 1, we demonstrate a quantitative relation between the squeezing parameter and the concurrence for the even and odd states. We prove that the even states generated from the initial state with all qubits being spin down, via the one-axis twisting Hamiltonian, are spin squeezed if and only if they are pairwise entangled. For the states generated via the one-axis twisting Hamiltonian with an external transverse field for any number of qubits greater than I or via the two-axis countertwisting Hamiltonian for any even number of qubits, the numerical results suggest that such states are spin squeezed if and only if they are pairwise ntangled.
Keywords:
本文献已被 维普 等数据库收录!
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号