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首页> 外文期刊>Physical Review, A >Correlation-coupling entropy as a measure of strong electron correlation and fragment-conditional density spin polarization as a measure of electron entanglement
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Correlation-coupling entropy as a measure of strong electron correlation and fragment-conditional density spin polarization as a measure of electron entanglement

机译:相关耦合熵作为强电子相关性和碎片条件密度自旋极化的量度,作为电子纠缠的量度

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Quantum entanglement has been one of the hottest topics in current day physics, since it is the driving force behind quantum cryptography, quantum teleportation, and quantum computing. Several measures of quantification of entanglement have been proposed, each of which can often only be applied to a few specific systems. In this paper we derive a kinematic measure of entanglement that is capable of giving a full description of Einstein-Podolsky-Rosen entanglement in molecular systems. The associated “coupled entropy” energy contribution generates the correct amount of strong correlation energy for the H_2 and N_2 prototype systems, and is shown to be able to perform the same feat if it is explicitly used as the correlation component in the density-matrix functional context. And, finally, we propose a nonkinematic way to measure the entanglement of spins by using the conditional density of the system.
机译:量子纠缠是当天物理学中最热门的主题之一,因为它是量子密码,量子传送和量子计算后的驱动力。 已经提出了几种定量纠缠措施,每个术语通常只能应用于少数特定系统。 在本文中,我们推出了运动的缠结测量,能够在分子系统中充分描述Einstein-Podolsky-Rosen entancement。 相关的“耦合熵”能量贡献为H_2和N_2原型系统产生了正确的强相关能量,并且如果在密度矩阵函数中明确地使用作为相关分量,则能够执行相同的壮举 语境。 最后,我们提出了一种使用系统条件密度来测量旋转的缠结方式。

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