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Quantum phase transition of correlated iron-based superconductivity in LiFe_(1-x)Co_xAs

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arxiv 1910.11396 v1 pith:GLUOIGGE submitted 2019-10-24 cond-mat.supr-con cond-mat.mes-hall

Quantum phase transition of correlated iron-based superconductivity in LiFe_(1-x)Co_xAs

classification cond-mat.supr-con cond-mat.mes-hall
keywords quantumcooperfullylifephasestatestatessuperconductivity
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The interplay between unconventional Cooper pairing and quantum states associated with atomic scale defects is a frontier of research with many open questions. So far, only a few of the high-temperature superconductors allow this intricate physics to be studied in a widely tunable way. We use scanning tunneling microscopy (STM) to image the electronic impact of Co atoms on the ground state of the LiFe$_{1-x}$Co$_x$As system. We observe that impurities progressively suppress the global superconducting gap and introduce low energy states near the gap edge, with the superconductivity remaining in the strong-coupling limit. Unexpectedly, the fully opened gap evolves into a nodal state before the Cooper pair coherence is fully destroyed. Our systematic theoretical analysis shows that these new observations can be quantitatively understood by the nonmagnetic Born-limit scattering effect in a s$\pm$-wave superconductor, unveiling the driving force of the superconductor to metal quantum phase transition.

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