论文标题
自旋1/2的伪临界行为,是钻石和四面体链
Pseudo-critical behavior of spin-1/2 Ising diamond and tetrahedral chains
论文作者
论文摘要
由于其特殊的热力学行为,一些范式的一维晶格统计旋转模型最近引起了极大的科学兴趣,这使人联想到温度驱动的相变。一维晶格统计旋转模型的伪转换与几个重要方面的实际相位过渡不同:吉布斯自由能的一阶导数(例如熵或磁化)在伪转换附近表现出突然的持续变化,而不是真正的差异性,而不是二等的差异,而二等又有特殊性的特殊性,而二等又有范围的特殊性,吉布(GIB伪过渡是有限的有限峰,而不是实际的幂律差异。在本章中,我们将通过详细检查基本的磁化剂量量(例如熵,特定的热量和易感性),全面研究自旋1/2伊辛钻石和四面体链的伪临界行为。将证明,这些磁化磁化量的密度图为建立有限的温度图提供了有用的工具,尽管缺乏任何非零温度下的真实自发的长距离顺序,但该图清楚地划定了单个准强度之间的边界。有人提出,自旋-1/2伊斯丁钻石的两个基态的脱落和四面体链之间的差异是观察其地面相边界附近相关伪临界行为的必要先决条件。
A few paradigmatic one-dimensional lattice-statistical spin models have recently attracted a vigorous scientific interest owing to their peculiar thermodynamic behavior, which is highly reminiscent of a temperature-driven phase transition. The pseudotransitions of one-dimensional lattice-statistical spin models differ from actual phase transitions in several important aspects: the first-order derivatives of the Gibbs free energy such as entropy or magnetization exhibit near a pseudo-transition an abrupt continuous change instead of a true discontinuity, whereas the second-order derivatives of the Gibbs free energy such as specific heat or susceptibility display near a pseudo-transition a vigorous finite peak instead of an actual power-law divergence. In the present chapter we will comprehensively examine a pseudo-critical behavior of the spin-1/2 Ising diamond and tetrahedral chains by a detailed examination of basic magnetothermodynamic quantities such as the entropy, specific heat and susceptibility. It will be demonstrated that density plots of these magnetothermodynamic quantities provide a useful tool for establishing a finite-temperature diagram, which clearly delimits boundaries between individual quasi-phases in spite of a lack of true spontaneous long-range order at any nonzero temperature. It is suggested that a substantial difference between the degeneracies of two ground states of the spin-1/2 Ising diamond and tetrahedral chains is an essential prerequisite for observation of a relevant pseudo-critical behavior in a close vicinity of their ground-state phase boundary.