Nematic quantum disordered state in FeSe
Ruixian Liu, Matthew B. Stone, Shang Gao, Mitsutaka Nakamura, Kazuya, Kamazawa, Aleksandra Krajewska, Helen C. Walker, Peng Cheng, Rong Yu, Qimiao, Si, Pengcheng Dai, and Xingye Lu

TL;DR
This study maps out the spin excitations in detwinned FeSe, revealing a nematic quantum disordered state intertwined with superconductivity and electronic nematicity, and provides a microscopic understanding of its magnetic properties.
Contribution
The paper presents the first detailed mapping of intrinsic spin excitations in detwinned FeSe across the Brillouin zone, establishing a microscopic model of its magnetic interactions.
Findings
Stripe spin excitations exhibit C2 symmetry up to 120 meV.
Néel spin excitations retain C4 symmetry in the nematic state.
FeSe is near a crossover between different magnetic ordering regimes.
Abstract
The unusual quantum-disordered magnetic ground state intertwined with superconductivity and electronic nematicity in FeSe has been a research focus in iron-based superconductors. However, the intrinsic spin excitations across the entire Brillouin zone in detwinned FeSe, which forms the basis for a microscopic understanding of the magnetic state and superconductivity, remain to be determined. Here, we use inelastic neutron scattering to map out the spin excitations of FeSe dewtinned with a uniaxial-strain device. We find that the stripe spin excitations (Q=(1, 0)/(0, 1)) exhibit the symmetry up to meV, while the N{\'e}el spin excitations (Q=(1, 1)) retain their symmetry in the nematic state. The temperature dependence of the difference in the spin excitations at Q=(1, 0) and (0, 1) for temperatures above the structural phase transition unambiguously shows the…
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Taxonomy
TopicsIron-based superconductors research · Fossil Insects in Amber
