Zheng Wayne, Weng Zheng-Yu
Institute for Advanced Study, Tsinghua University, Beijing, 100084, China.
Collaborative Innovation Center of Quantum Matter, Tsinghua University, Beijing, 100084, China.
Sci Rep. 2018 Feb 26;8(1):3612. doi: 10.1038/s41598-018-21775-2.
We investigate the ground state and excitations of finite-size Heisenberg loops doped with one hole as the simplest example to illustrate the nature of strong correlations in a doped Mott insulator. We show that the doped hole form a peculiar long-range entanglement with the surrounding spins as revealed by inspecting the mutual correlations between the charge and spin using exact diagonalization (ED). In particular, the one-hole ground state acquires a series of non-trivial total momenta depending on the ratio J/t (J and t denote the superexchange coupling and hopping integral, respectively), which gives rise to distinct quantum phases separated by critical points (CPs). Interestingly the novel total momentum and correlations completely disappear once a singular sign structure is turned off in the t-J model, indicating the latter is the true original source for strong correlation via many-body quantum interference. We emphasize that the novelties discovered here are not restricted to the one-dimensional loop. We introduce a new charge-spin mutual entanglement that can well characterize these exotic properties, which can be then easily generalized to more realistic situations like two dimensions.
我们研究掺杂一个空穴的有限尺寸海森堡环的基态和激发态,以此作为最简单的例子来说明掺杂莫特绝缘体中强关联的本质。我们表明,通过使用精确对角化(ED)检查电荷与自旋之间的相互关联可以发现,掺杂的空穴与周围的自旋形成了一种特殊的长程纠缠。特别地,单空穴基态根据J/t的比值(J和t分别表示超交换耦合和跳跃积分)获得一系列非平凡的总动量,这导致由临界点(CPs)分隔的不同量子相。有趣的是,一旦t-J模型中的奇异符号结构被关闭,新颖的总动量和关联就会完全消失,这表明后者是通过多体量子干涉产生强关联的真正原始来源。我们强调,这里发现的新奇之处并不局限于一维环。我们引入了一种新的电荷-自旋相互纠缠,它可以很好地表征这些奇异性质,然后可以很容易地推广到更实际的情况,如二维情况。