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Magnetism driven by strong electronic correlation in the heavily carrier-doped iron oxypnictide LaFeAsO_(0.49)H_(0.51)

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arxiv 2004.11547 v2 pith:4KVYDNCG submitted 2020-04-24 cond-mat.str-el

Magnetism driven by strong electronic correlation in the heavily carrier-doped iron oxypnictide LaFeAsO_(0.49)H_(0.51)

classification cond-mat.str-el
keywords phasepressuretransitionantiferromagneticcorrelationelectronichigherlafeaso
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The magnetism of the second antiferromagnetic phase (AF2) arising in the iron-based LaFeAsO$_{1-x}$H$_{x}$ superconductor for $x\gtrsim0.4$ was investigated by muon spin rotation measurements under hydrostatic pressure up to 2.6 GPa. The N\'eel temperature ($T_{\rm N}$) obtained for a sample with $x=0.51$ exhibits considerably greater sensitivity to pressure than that in the pristine antiferromagnetic phase (AF1, $x\lesssim0.06$). Moreover, while the AF1 phase is always accompanied by the structural transition (from tetragonal to orthorhombic) at a temperature ($T_{\rm s}$) which is slightly higher than $T_{\rm N}$, the AF2 phase prevails at higher pressures above $\sim$1.5 GPa where the structural transition is suppressed ($T_{\rm s}=0$). These features indicate that the microscopic origin of the AF2 phase is distinct from that of AF1, suggesting that electronic correlation plays important role in the former phase. We argue that the orbital-selective Mott transition is a plausible scenario to account for the observed pressure dependence of $T_{\rm N}$ and $T_{\rm s}$ in the AF2 phase.

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