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Misfit Strain in Superlattices Controlling the Electron-Lattice Interaction via Microstrain in Active Layers

机译:超晶格中的失配应变通过有源层中的微应变控制电子-晶格相互作用

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High-temperature superconductivity (HTS) emerges in quite different electronic materials: cuprates, diborides, and iron-pnictide superconductors. Looking for unity in the diversity we find in all these materials a common lattice architecture: they are practical realizations of heterostructures at atomic limit made of superlattices of metallic active layers intercalated by spacers as predicted in 1993 by one of us. The multilayer architecture is the key feature for the presence of electronic topological transitions where the Fermi surface of one of the subbands changes dimensionality. The superlattice misfit strain η between the active and spacer layers is shown to be a key variable to drive the system to the highest critical temperature T_c that occurs at a particular point of the 3D phase diagram T_c(δ,η) where δ is the charge transfer or doping. The plots of T_c as a function of misfit strain at constant charge transfer in cuprates show a first-order quantum critical phase transition where an itinerant striped magnetic phase competes with superconductivity in the proximity of a structural phase transition, that is, associated with an electronic topological transition. The shape resonances in these multigap superconductors is associated with the maximum T_c.
机译:高温超导(HTS)出现在完全不同的电子材料中:铜酸盐,二硼化物和铁-铁超导体。在多样性中寻找统一性,我们在所有这些材料中找到了一种通用的晶格结构:它们是原子极限的异质结构的实际实现,这种异质结构是由金属活性层的超晶格插入间隔物所组成,正如我们中的一个人在1993年所预测的那样。多层体系结构是存在电子拓扑转换的关键特征,其中子带之一的费米表面会改变尺寸。有源层和隔离层之间的超晶格失配应变η是驱动系统达到最高临界温度T_c的关键变量,该最高温度出现在3D相图T_c(δ,η)的特定点,其中δ是电荷转移或掺杂。在铜酸盐中恒定电荷转移下,T_c与失配应变的函数关系图显示了一阶量子临界相变,其中流动性带状磁相在结构相变附近与超导竞争,即与电子相关拓扑过渡。这些多间隙超导体中的形状共振与最大T_c相关。

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