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Quantum-critical scale invariance in a transition metal alloy

Authors :
Nakajima, Y.
Metz, T.
Eckberg, C.
Kirshenbaum, K.
Hughes, A.
Wang, R.
Wang, L.
Saha, S. R.
Liu, I-L.
Butch, N. P.
Campbell, D.
Eo, Y. S.
Graf, D.
Liu, Z.
Borisenko, S. V.
Zavalij, P. Y.
Paglione, J.
Source :
Commun. Phys. 3, 181 (2020)
Publication Year :
2019

Abstract

Quantum-mechanical fluctuations between competing phases at $T=0$ induce exotic finite-temperature collective excitations that are not described by the standard Landau Fermi liquid framework. These excitations exhibit anomalous temperature dependences, or non-Fermi liquid behavior, in the transport and thermodynamic properties in the vicinity of a quantum critical point, and are often intimately linked to the appearance of unconventional Cooper pairing as observed in strongly correlated systems including the high-$T_c$ cuprate and iron pnictide superconductors. The presence of superconductivity, however, precludes direct access to the quantum critical point, and makes it difficult to assess the role of quantum-critical fluctuations in shaping anomalous finite-temperature physical properties. Here we report temperature-field scale invariance of non-Fermi liquid thermodynamic, transport, and Hall quantities in a non-superconducting iron-pnictide, Ba(Fe$_{1/3}$Co$_{1/3}$Ni$_{1/3}$)$_{2}$As$_{2}$, indicative of quantum criticality at zero temperature and zero applied magnetic field. Beyond a linear in temperature resistivity, the hallmark signature of strong quasiparticle scattering, we find the scattering rate that obeys a universal scaling relation between temperature and applied magnetic fields down to the lowest energy scales. Together with the dominance of hole-like carriers close to the zero-temperature and zero-field limits, the scale invariance, isotropic field response, and lack of applied pressure sensitivity suggests a unique quantum critical system that does not drive a pairing instability.<br />Comment: 37 pages, 15 figures

Details

Database :
arXiv
Journal :
Commun. Phys. 3, 181 (2020)
Publication Type :
Report
Accession number :
edsarx.1902.01034
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s42005-020-00448-5