arXiv · 1710.06640
Quantum Phase transition under pressure in a heavily hydrogen-doped iron-based superconductor LaFeAsO
Abstract
Hydrogen (H)-doped LaFeAsO is a prototypical iron-based superconductor. However, its phase diagram extends beyond the standard framework, where a superconducting (SC) phase follows an antiferromagnetic (AF) phase upon carrier doping; instead, the SC phase is sandwiched between two AF phases appearing in lightly and heavily H-doped regimes. We performed nuclear magnetic resonance (NMR) measurements under pressure, focusing on the second AF phase in the heavily H-doped regime. The second AF phase is strongly suppressed when a pressure of 3.0 GPa is applied, and apparently shifts to a highly H-doped regime, thereby a "bare" quantum critical point (QCP) emerges. A quantum critical regime emerges in a paramagnetic state near the QCP, however, the influence of the AF critical fluctuations to the SC phase is limited in the narrow doping regime near the QCP. The optimal SC condition ($T_c \sim$ 48 K) is unaffected by AF fluctuations.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Naoki Fujiwara, Naoto Kawaguchi, Soushi IImura, Satoru Matsuishi, Hideo Hosono. 2017-10-18. Quantum Phase transition under pressure in a heavily hydrogen-doped iron-based superconductor LaFeAsO. https://doi.org/10.1103/physrevb.96.140507
Cite the original work for its findings. Save a collection to share your selection of sources.