Conventional empirical law reverses in the phase transitions of 122-type iron-based superconductors

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Abstract

Phase transition of solid-state materials is a fundamental research topic in condensed matter physics, materials science and geophysics. It has been well accepted and widely proven that isostructural compounds containing different cations undergo same pressure-induced phase transitions but at progressively lower pressures as the cation radii increases. However, we discovered that this conventional law reverses in the structural transitions in 122-type iron-based superconductors. In this report, a combined low temperature and high pressure X-ray diffraction (XRD) measurement has identified the phase transition curves among the tetragonal (T), orthorhombic (O) and the collapsed-tetragonal (cT) phases in the structural phase diagram of the iron-based superconductor AFe2As2 (A5Ca, Sr, Eu, and Ba). The cation radii dependence of the phase transition pressure (T → cT) shows an opposite trend in which the compounds with larger ambient radii cations have a higher transition pressure.

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Yu, Z., Wang, L., Wang, L., Liu, H., Zhao, J., Li, C., … Mao, H. K. (2014). Conventional empirical law reverses in the phase transitions of 122-type iron-based superconductors. Scientific Reports, 4. https://doi.org/10.1038/srep07172

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