CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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The Optical Study of Single Crystalline Cs0.8(Fe1.05Se)2 with High Néel Temperature |
YUAN Rui-Hua, DONG Tao, WANG Nan-Lin** |
Laboratory of Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190
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Cite this article: |
YUAN Rui-Hua, DONG Tao, WANG Nan-Lin 2013 Chin. Phys. Lett. 30 077403 |
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Abstract We report an optical spectroscopy study on an iron-selenide single crystal of insulating Cs0.8(Fe1.05Se)2 with relatively high Néel temperature. The resistivity and magnetization measurements reveal a semiconductor behavior with TN=492 K. The sample has been examined in the temperature range from 10 K up to 500 K by using infrared measurement. The low frequency optical measurement implies an insulating response with a major absorption near 0.31 eV. The double-peak structure in the mid-infrared region and the low-frequency phonon modes support the presence of the blocked anti-ferromagnetism. The infrared measurement reveals no signature of SDW-type energy gap formation below the anti-ferromagnetic-order temperature.
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Received: 13 March 2013
Published: 21 November 2013
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PACS: |
74.25.Gz
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(Optical properties)
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74.70.-b
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(Superconducting materials other than cuprates)
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74.62.Bf
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(Effects of material synthesis, crystal structure, and chemical composition)
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