4.6 Article

Nonsuperconducting electronic ground state in pressurized BaFe2S3 and BaFe2S2.5Se0.5

Journal

PHYSICAL REVIEW B
Volume 101, Issue 20, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.101.205129

Keywords

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Funding

  1. National Natural Science Foundation of China [11904414, 11904416]
  2. Natural Science Foundation of Guangdong [2018A030313055]
  3. National Key Research and Development Program of China [2017YFA0302900, 2016YFA0300300, 2019YFA0705700]
  4. Fundamental Research Funds for the Central Universities [18lgpy73]
  5. Hundreds of Talents program of Sun Yat-Sen University
  6. Young Zhujiang Scholar program
  7. Office of Science, Office of Basic Energy Sciences (BES), Materials Sciences and Engineering Division of the US Department of Energy (DOE) within the Quantum Materials Program [DE-AC02-05-CH1231, KC2202]
  8. BES

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We report a comprehensive study of the spin ladder compound BaFe2S2.5Se0.5 using neutron diffraction, inelastic neutron scattering, high pressure synchrotron diffraction, and high pressure transport techniques. We find that BaFe2S2.5Se0.5 possesses the same Cmcm structure and stripe antiferromagnetic order as does BaFe2S3, but with a reduced Ned temperature of T-N = 98 K compared to 120 K for the undoped system, and a slightly increased ordered moment of 1.40 mu B per iron. The low-energy spin excitations in BaFe2S2.5Se0.5 are likewise similar to those observed in BaFe2S3 . However, unlike the reports of superconductivity in BaFe2S3 below T-c similar to 14 K under pressures of 10 GPa or more, we observe no superconductivity in BaFe2S2.5Se0.5 at any pressure up to 19.7 GPa. In contrast, the resistivity exhibits an upturn at low temperature under pressure. Furthermore, we show that additional high-quality samples of BaFe2S3 synthesized for this study likewise fail to become superconducting under pressure, instead displaying a similar upturn in resistivity at low temperature. These results demonstrate that microscopic, sample-specific details play an important role in determining the ultimate electronic ground state in this spin ladder system. We suggest that the upturn in resistivity at low temperature in both BaFe2S3 and BaFe2S2.5Se0.5 may result from Anderson localization induced by S vacancies and random Se substitutions, enhanced by the quasi-one-dimensional ladder structure.

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