论文标题

非对称性电子不稳定性的兰道理论,与对称性的破坏性理论适用于普鲁士蓝色类似物

Landau Theory for Non-Symmetry-Breaking Electronic Instability Coupled to Symmetry-Breaking Applied to Prussian Blue Analogue

论文作者

Azzolina, Giovanni, Bertoni, Roman, Ecolivet, Claude, Tokoro, Hiroko, Ohkoshi, Shin-ichi, Collet, Eric

论文摘要

通过一个或几种对称性的阶阶参数h,在兰道理论的通用框架中描述的相变的不同类型的排序现象可能发生。此外,在没有对称性的情况下,许多系统都经历了与电子不稳定性相关的相变,并最终是通过完全对称顺序参数q与体积变化线性耦合的。分析负责体积应变的非对称性电子不稳定性的耦合对对称性的现象对于自然界中的许多系统都很重要,在这里我们表明,对称性允许的QH2耦合起着核心作用。我们用作案例研究的rubidium锰六酰胺甲甲甲基甲蓝蓝色类似物,表现出可能超过100 K的磁滞的相变,并基于金属间电荷转移(CT)。在阶段过渡过程中,通过Q演化描述的金属间CT与通过H的进化所描述的Cubic-Atragonal铁弹性对称性对称性耦合。在该系统中,对称性断裂和非对称断裂变形具有相似的幅度,但大体积应变主要是由于CT造成的。我们考虑了QH2耦合,稳定伴随的CT和Jahn-Teller失真,分析了Landau理论框架内相变的铁弹性和CT特征。使用该模型获得的相图与各种实验发现具有良好的定性一致性,并适用于经历Mott过渡,旋转交叉,中性离子离子离子过渡的各种材料家族,为此,等速器电子不稳定性驱动量应变可将其与对称性划分或不折断,或者创建相转换线和驱动式合作现象。

Different types of ordering phenomena may occur during phase transitions, described within the universal framework of the Landau theory through the evolution of one, or several, symmetry-breaking order parameter h. In addition, many systems undergo phase transitions related to an electronic instability, in the absence of a symmetry-breaking and eventually described through the evolution of a totally symmetric order parameter q linearly coupled to volume change. Analyzing the coupling of a non-symmetry-breaking electronic instability, responsible for volume strain, to symmetry-breaking phenomena is of importance for many systems in nature and here we show that the symmetry-allowed qh2 coupling plays a central role. We use as case study the rubidium manganese hexacyanoferrate Prussian blue analogue, exhibiting phase transitions with hysteresis that may exceed 100 K, and based on intermetallic charge transfer (CT). During the phase transition, the intermetallic CT described through the evolution of q is coupled to cubic-tetragonal ferroelastic symmetry-breaking described through the evolution of h. In this system, the symmetry-breaking and non-symmetry breaking deformations have similar amplitudes but the large volume strain is mainly due to CT. We analyze both the ferroelastic and the CT features of the phase transition within the frame of the Landau theory, taking into account the qh2 coupling, stabilizing concomitant CT and Jahn-Teller distortion. The phase diagrams obtained with this model are in good qualitative agreement with various experimental findings and apply to diverse families of materials undergoing Mott transition, spin-crossover, neutral-ionic transition, for which isostructural electronic instability driving volume strain can couple to symmetry-breaking or not, create phase transition lines and drive cooperative phenomena.

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