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Nonlinear lattice dynamics as a basis for enhanced superconductivity in YBa2Cu3O6.5

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arxiv 1405.2266 v2 pith:UJYBTWC3 submitted 2014-05-09 cond-mat.supr-con

classification cond-mat.supr-con
keywords structuresuperconductivityelectronicyba2cu3o6calculationschangescrystaldensity
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THz-frequency optical pulses can resonantly drive selected vibrational modes in solids and deform their crystal structure. In complex oxides, this method has been used to melt electronic orders, drive insulator to metal transitions or induce superconductivity. Strikingly, coherent interlayer transport strongly reminiscent of superconductivity can be transiently induced up to room temperature in YBa2Cu3O6+x. By combining femtosecond X-ray diffraction and ab initio density functional theory calculations, we determine here the crystal structure of this exotic non-equilibrium state. We find that nonlinear lattice excitation in normal-state YBa2Cu3O6+x at 100 K causes a staggered dilation/contraction of the Cu-O2 intra/inter- bilayer distances, accompanied by anisotropic changes in the in-plane O-Cu-O bond buckling. Density functional theory calculations indicate that these motions cause dramatic changes in the electronic structure. Amongst these, the enhancement in the dx2-y2 character of the in-plane electronic structure is likely to favor superconductivity.

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    A fast quench into a superconducting state can make the oscillating Higgs mode parametrically amplify reflected light and create an idler photon; optically driven K3C60 shows inferred reflectivity above 1.

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