paper

Nuclear-order-induced quantum criticality and heavy-fermion superconductivity at ultra-low temperatures in YbRhSi

arXiv:2203.01617

Abstract

The tetragonal heavy-fermion metal YbRhSi orders antiferromagnetically at mK and exhibits an unconventional quantum critical point (QCP) of Kondo-destroying type at mT, for the magnetic field applied within the basal () plane. Ultra-low-temperature magnetization and heat-capacity measurements at very low fields indicate that the 4-electronic antiferromagnetic (AF) order is strongly suppressed by a nuclear-dominated hybrid order (`A-phase') at mK, such that quantum critical fluctuations develop at (Schuberth et al., Science \textbf{351}, 485 (2016)). This enables the onset of heavy-fermion superconductivity ( mK) which appears to be suppressed by the primary AF order at elevated temperatures. Measurements of the Meissner effect reveal bulk superconductivity, with decreasing under applied field to mK at mT. The observation of a weak but distinct superconducting shielding signal at a temperature as high as 10 mK suggests the formation of insulated random islands with emergent A-phase order and superconductivity. Upon cooling, the shielding signal increases almost linearly in temperature, indicating a growth of the islands which eventually percolate at mK. Recent electrical-resistivity results by Nguyen et al. (Nat. Commun. \textbf{12}, 4341 (2021)) confirm the existence of superconductivity in YbRhSi at ultra-low temperatures. The combination of the results of Schuberth et al. and Nguyen et al. at ultra-low temperatures below , along with those previously established at higher temperatures in the paramagnetic state, provide compelling evidence that the Kondo-destruction quantum criticality robustly drives unconventional superconductivity.

review, 14 pages