Literature DB >> 30074484

High-pressure studies on heavy-fermion antiferromagnet CeCuBi2.

M M Piva1, M O Ajeesh, D S Christovam, R D Dos Reis, C B R Jesus, P F S Rosa, C Adriano, R R Urbano, M Nicklas, P G Pagliuso.   

Abstract

We report in-plane electrical resistivity studies of CeCuBi2 and LaCuBi2 single crystals under applied pressure. At ambient pressure, CeCuBi2 is a c-axis Ising antiferromagnet with a transition temperature [Formula: see text] K. In a magnetic field applied along the c-axis at [Formula: see text] K a spin-flop transition takes place [Formula: see text] T. Applying pressure on CeCuBi2 suppresses T N at a slow rate. [Formula: see text] extrapolates to zero temperature at [Formula: see text] GPa. The critical field of the spin-flop transition [Formula: see text] displays a maximum of 6.8 T at [Formula: see text] GPa. At low temperatures, a zero-resistance superconducting state emerges upon the application of external pressure having a maximum T c of 7 K at 2.6 GPa in CeCuBi2. High-pressure electrical-resistivity experiments on the non-magnetic reference compound LaCuBi2 reveal also a zero resistance state with similar critical temperatures in the same pressure range as CeCuBi2. The great similarity between the superconducting properties of both materials and elemental Bi suggests a common origin of the superconductivity. We discuss that the appearance of this zero resistance state superconductivity may be related to the Bi layers present in the crystalline structure of both compounds and, therefore, could be intrinsic to CeCuBi2 and LaCuBi2, however further experiments under pressure are necessary to clarify this issue.

Entities:  

Year:  2018        PMID: 30074484     DOI: 10.1088/1361-648X/aad7d8

Source DB:  PubMed          Journal:  J Phys Condens Matter        ISSN: 0953-8984            Impact factor:   2.333


  1 in total

1.  Electronic and magnetic properties of stoichiometric CeAuBi2.

Authors:  M M Piva; R Tartaglia; G S Freitas; J C Souza; D S Christovam; S M Thomas; J B Leão; W Ratcliff; J W Lynn; C Lane; J-X Zhu; J D Thompson; P F S Rosa; C Adriano; E Granado; P G Pagliuso
Journal:  Phys Rev B       Date:  2020-06       Impact factor: 4.036

  1 in total

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