论文标题
纠缠的核心:在田野里的基塔夫 - 坎德阶梯中的手性,nematic和不一致的阶段
The Heart of Entanglement: Chiral, Nematic, and Incommensurate Phases in the Kitaev-Gamma Ladder in a Field
论文作者
论文摘要
蜂窝状晶格上的债券依赖性基塔耶(Kitaev)模型最近引起了广泛的关注。但是,在固态材料中存在其他旋转相互作用,在此类其他相互作用中,非对角线对称伽马相互作用是键依赖性术语的另一种类型的键盘,特别具有挑战性。通过磁场下的各种数值技术研究了最小的Kitaev-Gamma(KG)模型,但是关于场诱导的自旋液体的明确结论仍然难以捉摸,一个原因可能在于二维几何形状的有限尺寸,可以访问数值。因此,我们专注于在两腿阶梯上定义的KG模型,该模型可以更适合完整的研究,并在沿[111]方向存在磁场的情况下确定整个相图。由于相互作用与田地之间的竞争,因此出现了十五个不同阶段的非常丰富的相图。我们仅在该区域内的九个不同的阶段,集中在抗磁磁性Kitaev区域附近:几个不一致的有序相,自旋列和两个具有增强纠缠的手性相。特别令人感兴趣的是一个高度纠缠的阶段,具有交错的手性,在中间场发生了零网,其伴随阶段概述了一个高纠缠的心形区域,是纠缠的心脏。我们将梯子的结果与二维蜂窝晶状体的C3对称簇进行比较,并在二维极限内对可能的自旋液体提供见解。
The bond-dependent Kitaev model on the honeycomb lattice with anyonic excitations has recently attracted considerable attention. However, in solid state materials other spin interactions are present, and among such additional interactions, the off-diagonal symmetric Gamma interaction, another type of bond-dependent term, has been particularly challenging to fully understand. A minimal Kitaev-Gamma (KG) model has been investigated by various numerical techniques under a magnetic field, but definite conclusions about field-induced spin liquids remain elusive and one reason may lie in the limited sizes of the two-dimensional geometry it is possible to access numerically. We therefore focus on the KG model defined on a two-leg ladder which is much more amenable to a complete study, and determine the entire phase diagram in the presence of a magnetic field along [111]-direction. Due to the competition between the interactions and the field, an extremely rich phase diagram emerges with fifteen distinct phases. Focusing near the antiferromagnetic Kitaev region, we identify nine different phases solely within this region: several incommensurate magnetically ordered phases, spin nematic, and two chiral phases with enhanced entanglement. Of particular interest is a highly entangled phase with staggered chirality with zero-net flux occurring at intermediate field, which along with its companion phases outline a heart-shaped region of high entanglement, the heart of entanglement. We compare our results for the ladder with a C3 symmetric cluster of the two-dimensional honeycomb lattice, and offer insights into possible spin liquids in the two-dimensional limit.