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Superconductors as giant atoms: Qualitative aspects

机译:作为巨型原子的超导体:定性方面

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When the Fermi level is near the top of a band the carriers (holes) are maximally dressed by electron-ion and electron-electron interactions. The theory of hole superconductivity predicts that only in that case can superconductivity occur, and that it is driven by undressing of the carriers at the Fermi energy upon pairing. Indeed, experiments show that dressed hole carriers in the normal state become undressed electron carriers in the superconducting state. This leads to a description of superconductors as giant atoms, where undressed time-reversed electrons are paired and propagate freely in a uniform positive background. The pairing gap provides rigidity to the wavefunction, and electrons in the giant atom respond to magnetic fields the same way as electrons in diamagnetic atoms. We predict that there is an electric field in the interior of superconductors and that the charge distribution is inhomogeneous, with higher concentration of negative charge near the surface; that the ground state of superconductors has broken parity and possesses macroscopic spin currents, and that negative charge spills out when a body becomes superconducting.
机译:当费米能级在能带的顶部附近时,载流子(空穴)被电子离子和电子电子相互作用最大程度地修饰。空穴超导理论预测,只有在这种情况下才会发生超导,并且它是由配对时载流子在费米能量处脱脱而驱动的。实际上,实验表明,正常状态下的修整空穴载流子在超导状态下变成未修整的电子载流子。这导致将超导体描述为巨型原子,其中未整理的时间反转电子配对并在均匀的正背景中自由传播。配对间隙为波函数提供了刚性,并且巨原子中的电子对磁场的响应与反磁性原子中的电子相同。我们预测超导体内部会存在一个电场,并且电荷分布是不均匀的,表面附近的负电荷浓度较高。超导体的基态已经破坏了奇偶校验并且具有宏观的自旋电流,并且当人体变得超导时,负电荷会溢出。

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