Magnetic field-driven quantum criticality in antiferromagnetic CePtIn<sub>4</sub>.

Das, Debarchan; Gnida, Daniel; Wiśniewski, Piotr; Kaczorowski, Dariusz · Proc Natl Acad Sci U S A · 2019

basic_science · Level V

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Abstract

Physics of the quantum critical point is one of the most perplexing topics in current condensed-matter physics. Its conclusive understanding is forestalled by the scarcity of experimental systems displaying novel aspects of quantum criticality. We present comprehensive experimental evidence of a magnetic field-tuned tricritical point separating paramagnetic, antiferromagnetic, and metamagnetic phases in the compound CePtIn<sub>4</sub> Analyzing field variations of its magnetic susceptibility, magnetoresistance, and specific heat at very low temperatures, we trace modifications of the antiferromagnetic structure of the compound. Upon applying a magnetic field of increasing strength, the system undergoes metamagnetic transitions which persist down to the lowest temperature investigated, exhibiting first-order-like boundaries separating magnetic phases. This yields a unique phase diagram where the second-order phase transition line terminates at a tricritical point followed by 2 first-order lines reaching quantum critical end points as [Formula: see text] 0. Our findings demonstrate that CePtIn<sub>4</sub> provides innovative perspective for studies of quantum criticality.