论文标题
非常规的自旋挫败感是由于Martini和Martini-Diled Lattice上的两种竞争性铁磁相互作用而引起的,
Unconventional spin frustration due to two competing ferromagnetic interactions of a spin-1/2 Ising-Heisenberg model on martini and martini-diced lattice
论文作者
论文摘要
Martini和Martini-Conted晶格上的Spin-1/2 Ising-Heisenberg模型通过星形三角转换精确解决,该转换提供了与三角形晶格上有效的Spin-1/2 Ising模型的精确映射对应。两个研究的量子自旋模型的地面相图显示了两个自发有序的铁磁相和一个宏观变性的相位。与经典的铁磁阶段相反,iSing的自发磁化以及海森堡旋转获得了完全饱和的值,因此,海森堡旋转的自发磁化量会在量子效力相位量中量化其饱和值的三分之一。每当研究的量子自旋模型被驱动到高度退化的无序相时,特定热的自发磁化和对数差异是两种铁磁相的最重要特征。具有非零残留熵的无序阶段源于由抗铁磁相互作用引起的几何自旋挫败感,或者更引人注目的是,它可能分别是由铁磁ising的竞争和易于轴和易于平面类型的Heisenberg相互作用引起的。所有三个可用的基接地状态在一个三重点共存在一起,可以检测到异常的磁和热力学行为。
The spin-1/2 Ising-Heisenberg model on martini and martini-diced lattice is exactly solved using a star-triangle transformation, which affords an exact mapping correspondence to an effective spin-1/2 Ising model on a triangular lattice. The ground-state phase diagram of both investigated quantum spin models display two spontaneously ordered ferromagnetic phases and one macroscopically degenerate disordered phase. In contrast to a classical ferromagnetic phase where the spontaneous magnetization of the Ising as well as Heisenberg spins acquire fully saturated values the spontaneous magnetization of the Heisenberg spins is subject to a quantum reduction to one-third of its saturated value within a quantum ferromagnetic phase. The spontaneous magnetization and logarithmic divergence of the specific heat as the most essential features of both ferromagnetic phases disappear whenever the investigated quantum spin model is driven to the highly degenerate disordered phase. The disordered phase with nonzero residual entropy originates either from a geometric spin frustration caused by antiferromagnetic interactions or more strikingly it may also alternatively arise from a competition of the ferromagnetic Ising and Heisenberg interactions of easy-axis and easy-plane type, respectively. All three available ground states coexist together at a single triple point, around which anomalous magnetic and thermodynamic behavior can be detected.