论文标题
$ t-j $型号中的重和轻孔的二分法
Dichotomy of heavy and light pairs of holes in the $t-J$ model
论文作者
论文摘要
揭示表现出非常规超导性材料奥秘的关键步骤是了解基本的配对机制。虽然广泛同意的是,其中许多系统中的配对胶源自抗磁性自旋相关性,但仍然缺乏对电荷载体对的微观描述。 在这里,我们使用最先进的数值方法来探测四腿圆柱体中量子抗铁磁体对载体对的内部结构和动力学特性。利用模拟中的全部动量分辨率,我们能够区分两种定性不同类型的界面状态:一对高度移动,元稳定的对,其分散与跳孔跳跃$ t $成比例,并且只能由于旋转交换过程而可以移动,并且在模型的iSing限制中可以移动。一方面,了解配对机制可以为增强相关模型中的结合能铺平道路,而另一方面,可以洞悉密切相关的电子系统中物质各个阶段的复杂竞争。
A key step in unraveling the mysteries of materials exhibiting unconventional superconductivity is to understand the underlying pairing mechanism. While it is widely agreed upon that the pairing glue in many of these systems originates from antiferromagnetic spin correlations, a microscopic description of pairs of charge carriers remains lacking. Here we use state-of-the art numerical methods to probe the internal structure and dynamical properties of pairs of charge carriers in quantum antiferromagnets in four-legged cylinders. Exploiting the full momentum resolution in our simulations, we are able to distinguish two qualitatively different types of bound states: a highly mobile, meta-stable pair, which has a dispersion proportional to the hole hopping $t$, and a heavy pair, which can only move due to spin exchange processes and turns into a flat band in the Ising limit of the model. Understanding the pairing mechanism can on the one hand pave the way to boosting binding energies in related models, and on the other hand enable insights into the intricate competition of various phases of matter in strongly correlated electron systems.