Field evolution of quantum critical and heavy Fermi-liquid components in the magnetization of the mixed valence compound beta-YbAlB4
arXiv:1407.6142 · doi:10.7566/JPSJ.84.024710
Abstract
We present the high-precision magnetization data of the valence fluctuating heavy fermion superconductor -YbAlB in a wide temperature range from 0.02 K to 320 K spanning four orders of magnitude. We made detailed analyses of the scaling of the magnetization, and firmly confirmed the unconventional zero-field quantum criticality (QC) without tuning. We examined other possible scaling relationship such as scaling, and confirmed that provides the best quality of the fit with an upper bound on the critical magnetic field ~mT. We further discuss the heavy Fermi-liquid component of the magnetization after subtracting the QC component estimated based on the scaling. The temperature dependence of the heavy Fermi-liquid component is found very similar to the magnetization of the polymorph -YbAlB. In addition, the heavy Fermi-liquid component is suppressed in the magnetic field above 5 T as in -YbAlB. This was also confirmed by the magnetization measurements up to T for both - and -YbAlB. Interestingly, the detailed analyses revealed that the only a part of electrons participates in the zero-field QC and the heavy fermion behavior. We also present a temperature - magnetic field phase diagram of \ybal to illustrate how the characteristic temperature and field scales evolves near the QC.
9 pages, 6 figures