Quantum Criticality in doped CePd_1-xRh_x Ferromagnet
J.G. Sereni, T. Westerkamp, R. Kuechler, N. Caroca-Canales, P., Gegenwart, C. Geibel

TL;DR
This study investigates the quantum critical behavior in doped CePd_1-xRh_x alloys, revealing a continuous suppression of ferromagnetism, the emergence of valence instability, and non-Fermi liquid behavior near the critical concentration.
Contribution
It provides detailed experimental evidence of quantum criticality and valence fluctuations in CePd_1-xRh_x, highlighting the coexistence of ferromagnetic and mixed valence states.
Findings
Critical concentration between x=0.87 and 0.90 identified.
Logarithmic divergence of specific heat over temperature observed.
Power law divergence of specific heat at x=0.87.
Abstract
CePd_1-xRh_x alloys exhibit a continuous evolution from ferromagnetism (T_C= 6.5 K) at x = 0 to a mixed valence (MV) state at x = 1. We have performed a detailed investigation on the suppression of the ferromagnetic (F) phase in this alloy using dc-(\chi_dc) and ac-susceptibility (\chi_ac), specific heat (C_m), resistivity (\rho) and thermal expansion (\beta) techniques. Our results show a continuous decrease of T_C (x) with negative curvature down to T_C = 3K at x*= 0.65, where a positive curvature takes over. Beyond x*, a cusp in cac is traced down to T_C* = 25 mK at x = 0.87, locating the critical concentration between x = 0.87 and 0.90. The quantum criticality of this region is recognized by the -log(T/T_0) dependence of C_m/T, which transforms into a T^-q (~0.5) one at x = 0.87. At high temperature, this system shows the onset of valence instability revealed by a deviation from…
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Taxonomy
TopicsRare-earth and actinide compounds · Physics of Superconductivity and Magnetism · Theoretical and Computational Physics
