首页> 外文会议>NATO advanced research workshop on open problems in strongly correlated electron systems >PSEUDOGAP AND KINETIC PAIRING UNDER CRITICAL DIFFERENTIATION OF ELECTRONS IN CUPRATE SUPERCONDUCTORS
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PSEUDOGAP AND KINETIC PAIRING UNDER CRITICAL DIFFERENTIATION OF ELECTRONS IN CUPRATE SUPERCONDUCTORS

机译:铜替代超导体中电子临界分化下的PseudoGAP和动力配对

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Superconducting mechanism of cuprates is discussed in the light of the proximity of the Mott insulator. The proximity accompanied by suppression of coherence takes place in an inhomogeneous way in the momentum space in finite-dimensional systems. Studies on instabilities of metals consisted of such differentiated electrons in the momentum space are reviewed from a general point of view. A typical example of the differentiation is found in the flattening of the quasiparticle dispersion discovered around momenta (π, 0) and (0, π) on 2D square lattices. This flattening even controls the criticality of the metal-insulator transition. Such differentiation and suppressed coherence subsequently cause an instability to the superconducting state in the second order of the strong coupling expansion. The d-wave pairing interaction is generated from such local but kinetic processes in the absence of disturbance from the coherent single-particle excitations. The superconducting mechanism emerges from a direct kinetic origin which is conceptually different from the pairing mechanism mediated by bosonic excitations as in magnetic, excitonic, and BCS mechanisms. Pseudogap phenomena widely observed in the underdoped cuprates are then naturally understood from the mode-mode coupling of d-wave superconducting (dSC) fluctuations repulsively coupled with antiferromagnetic (AFM) ones. When we assume the existence of a strong d-wave channel repulsively competing with AFM fluctuations under the formation of flat and damoed single-particle dispersion, we reproduce basic properties of the pseudogap seen in the magnetic resonance, neutron scattering, angle resolved photoemission and tunneling measurements in the cuprates.
机译:鉴于Mott绝缘体的接近讨论了铜替代替代替代机构。通过抑制连贯性的邻近伴随在有限维系统中的动量空间中以非均值方式进行。从一般的观点来看,对势头空间中的这种分化电子的金属稳定性的研究进行了综述。在2D方形格子上发现的Quasiparticle分散体的扁平池分散体的扁平粒子分散的扁平化的典型例子中发现了典型的分化的例子。这种扁平化甚至控制金属绝缘体过渡的临界性。这种分化和抑制的相干性随后在强耦合膨胀的二阶中导致超导状态的不稳定性。在没有与相干单粒子激发的扰动的情况下,从这种局部但动力学过程产生D波配对相互作用。超导机构从直接动力学起源出现,其概念性地与由磁性,激发器和BCS机制介导的络激激介导的配对机制不同。然后,在底铜铜酸盐中广泛观察到的假型映射现象从驱动的D波超导(DSC)波动与反铁磁体(AFM)耦合的模式耦合来自然地理解。当我们假设存在强大的D波通道的存在时,在平坦和变量的单粒子分散的形成下屈服于AFM波动,我们再现磁共振,中子散射,角度分辨的光曝光和隧道中所见的伪影像的基本性质铜酸盐中的测量。

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