Electronic State and Concentration of Fe in CuAl<sub>1-x</sub>Fe<sub>x</sub>O<sub>2</sub> Determined by Magnetic Investigations
ORAL
Abstract
CuAlO2 is among several ternary delafossites in which the electronic bandgap (2.68 eV) is less than the optical bandgap (3.5 eV), due to Laporte selection rules. Because alloying is expected to provide band engineering in delafossites, we are investigating Fe-doped CuAlO2. Here, magnetic characterization of the CuAl1-xFexO2 system (x = 0, 1, 5, and 10%) is reported. The samples were prepared by a solid-state reaction at 1100 °C. X-ray diffraction of the powder samples showed an expansion of the rhombohedral unit cell with increasing x, in accordance with Vegard’s Law (Fe3+ has a larger ionic radius than Al3+). Analysis of the magnetization (M) vs. temperature data (T = 5 to 300 K) and magnetic field (up to H = 90 kOe) verifies Fe3+ as the electronic state of Fe. M vs. T is fitted to the Curie-Weiss Law: M ∝ H/(T-θ) and, using the isothermal data of M vs. H, the variation of M vs. H/(T-θ) is fitted to a modified Brillouin function to determine x. The CuAlO2 (x=0) sample also shows significant paramagnetism probably due to defects or Fe3+ impurities. The Curie-Weiss fits require a negative θ, which signifies antiferromagnetic Fe3+-Fe3+ exchange coupling. Optical investigations are now in progress.
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Presenters
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Mina Aziziha
- Physics and Astronomy, West Virginia Univ