Structural and thermodynamic properties of Fe1.12Te with multiple phase transitions
Dona Cherian, Sahana Rößler, Cevriye Koz, Alexander A. Tsirlin, Ulrich Schwarz, S. Wirth, Suja Elizabeth
Abstract
Dona Cherian, Sahana Rößler, Cevriye Koz, Alexander A. Tsirlin, Ulrich Schwarz, S. Wirth, Suja Elizabeth
Abstract
The parent compound of iron chalcogenide superconductors, Fe1+yTe, with a range of excess Fe concentrations exhibits intriguing structural and magnetic properties. Here, the interplay of magnetic and structural properties of Fe1.12Te single crystals have been probed by low-temperature synchrotron X-ray powder diffraction, magnetization, and specific heat measurements. Thermodynamic measurements reveal two distinct phase transitions, considered unique to samples possessing excess Fe content in the range of 0.11≤y≤0.13. On cooling, an antiferromagnetic transition, TN≈57 K is observed. A closer examination of powder diffraction data suggests that the transition at TN is not purely magnetic, but accompanied by the commencement of a structural phase transition from tetragonal to orthorhombic symmetry. This is followed by a second prominent first-order structural transition at TS with TS
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The parent compound of iron chalcogenide superconductors, Fe1+yTe, with a range of excess Fe concentrations exhibits intriguing structural and magnetic properties. Here, the interplay of magnetic and structural properties of Fe1.12Te single crystals have been probed by low-temperature synchrotron X-ray powder diffraction, magnetization, and specific heat measurements. Thermodynamic measurements reveal two distinct phase transitions, considered unique to samples possessing excess Fe content in the range of 0.11≤y≤0.13. On cooling, an antiferromagnetic transition, TN≈57 K is observed. A closer examination of powder diffraction data suggests that the transition at TN is not purely magnetic, but accompanied by the commencement of a structural phase transition from tetragonal to orthorhombic symmetry. This is followed by a second prominent first-order structural transition at TS with TS
Key concepts: Tetragonal crystal system, Materials science, Magnetization, Condensed matter physics, Monoclinic crystal system, Phase transition, Antiferromagnetism, Powder diffraction