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Pairwise entanglement and the Mott transition for correlated electrons in nanochains

机译:纳米链中相关电子的成对纠缠和莫特跃迁

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Download video View all New J. Phys. video abstracts Pairwise entanglement, calculated separately for charge and spin degrees of freedom, is proposed as a ground-state signature of the Mott transition in correlated nanoscopic systems. Utilizing the exact diagonalization—ab initio, for chains containing hydrogenic-like atoms (at the half filling), we find that the vanishing of the nearest-neighbor charge concurrence indicates the crossover from a?partly-localized quantum liquid to the Mott insulator. Spin concurrence remains nonzero at the insulating phase, showing that the decopling of spin and charge degrees of freedom may manifest itself by wavefunctions entangled in spin, but separable in charge coordinates. At the quarter filling, the analysis for shows that spin concurrence vanishes immediately when the charge-energy gap obtained from the scaling with vanishes, constituting a?finite-system version of the Mott transition. Analytic derivations of the formulas expressing either charge or spin concurrence in terms of ground-state correlation functions are also provided.
机译:下载视频查看全部New J. Phys。视频摘要分别针对电荷和自旋自由度计算的成对纠缠被提议作为相关纳米系统中Mott跃迁的基态签名。利用精确的对角线化-从头开始,对于包含氢原子的原子(在半填充处),我们发现最近邻电荷并存的消失表明从局部局域的量子液体到Mott绝缘子的交叉。自旋并发在绝缘阶段保持为非零,这表明自旋和电荷自由度的解脱可以通过自旋纠缠的波函数来体现,但在电荷坐标中是可分离的。在四分之一填充时,的分析表明,自旋并存会立即消失,这是由按比例缩放获得的电荷能隙消失时,构成莫特跃迁的有限系统形式。还提供了根据基态相关函数表示电荷或自旋并发性的公式的解析推导。

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