Structural and optical high-pressure study of spinel-type MnIn 2S4
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MANJON, Francisco Javier, SEGURA, Alfredo, AMBOAGE, Monica, PELLICER-PORRES, Julio, SANCHEZ-ROYO, Juan F., ITIE, Jean Paul, FLANK, Anne Marie, LAGARDE, Pierre, POLIAN, Alain, URSACHI, Veaceslav, TIGINYANU, Ion. Structural and optical high-pressure study of spinel-type MnIn 2S4. In: Physica Status Solidi (B) Basic Research, 2007, vol. 244, pp. 229-233. ISSN 0370-1972. DOI: https://doi.org/10.1002/pssb.200672522
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Physica Status Solidi (B) Basic Research
Volumul 244 / 2007 / ISSN 0370-1972

Structural and optical high-pressure study of spinel-type MnIn 2S4

DOI:https://doi.org/10.1002/pssb.200672522

Pag. 229-233

Manjon Francisco Javier1, Segura Alfredo2, Amboage Monica3, Pellicer-Porres Julio2, Sanchez-Royo Juan F.2, Itie Jean Paul4, Flank Anne Marie4, Lagarde Pierre4, Polian Alain5, Ursachi Veaceslav6, Tiginyanu Ion6
 
1 Universitat Politècnica de València,
2 Universitat de València,
3 European Synchrotron Radiation Facility, Grenoble,
4 Synchrotron Soleil - Cnrs - Cea Paris-Saclay,
5 Pierre and Marie Curie University,
6 Institute of Applied Physics, Academy of Sciences of Moldova
 
 
Disponibil în IBN: 15 septembrie 2023


Rezumat

We report a combined study of the structural and electronic properties of the spinel-type semiconductor MnIn2S4 under high pressures by means of X-ray diffraction (ADXRD), X-ray absorption (XAS), and optical absorption measurements. The three techniques evidence a reversible structural phase transition near 7 GPa, that according to ADXRD measurements is to a double-NaCl structure. XAS measurements evidence predominant tetrahedral coordination for Mn in the spinel phase that does not noticeably change with increasing pressure up to the phase transition. XAS measurements indicate that the static disorder increases considerably when the sample reverts from the double-NaCl phase to the spinel phase. Optical absorption measurements show that the direct gap of MnIn2S4 exhibits a nonlinear behaviour with a positive pressure coefficient at pressures below 2.5 GPa and a negative pressure coefficient between 2.5 and 7 GPa. The pressure behavior of the bandgap seems to be affected by the defect concentration. The double-NaCl phase also exhibits a bandgap with a negative pressure coefficient. 

Cuvinte-cheie
Chalcopyrite, Energy gap, Photocatalysts