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Entanglement and quantum phase transition in a mixed-spin Heisenberg chain with single-ion anisotropy

机译:具有单离子各向异性的混合自旋海森堡链中的纠缠和量子相变

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We study the ground-state and thermal entanglement in the mixed-spin (S,s)=(1,12) Heisenberg chain with single-ion anisotropy D using exact diagonalization of small clusters. In this system, a quantum phase transition is revealed to occur at the value D=0, which is the bifurcation point for the global ground state; that is, when the single-ion anisotropy energy is positive, the ground state is unique, whereas when it is negative, the ground state becomes doubly degenerate and the system has the ferrimagnetic long-range order. Using the negativity as a measure of entanglement, we find that a pronounced dip in this quantity, taking place just at the bifurcation point, serves to signal the quantum phase transition. Moreover, we show that the single-ion anisotropy helps to improve the characteristic temperatures above which the quantum behavior disappears.
机译:我们使用小簇的精确对角化研究了具有单离子各向异性D的混合自旋(S,s)=(1,12)Heisenberg链中的基态和热缠结。在该系统中,发现量子相变发生在值D = 0处,该值是全局基态的分叉点。也就是说,当单离子各向异性能为正时,基态是唯一的;而当单离子各向异性能为负时,基态会双重退化,并且系统具有亚铁磁长程。使用负性作为缠结的量度,我们发现恰好在分叉点处发生的该量的明显下降可用于发出量子相变的信号。此外,我们表明,单离子各向异性有助于改善特征温度,在该温度以上量子行为消失。

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