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arXiv · cond-mat/0405700

Electronic structure of crystalline binary and ternary Cd-Te-O compounds

Abstract

The electronic structure of crystalline CdTe, CdO, $α$-TeO$_2$, CdTeO$_3$ and Cd$_3$TeO$_6$ is studied by means of first principles calculations. The band structure, total and partial density of states, and charge densities are presented. For $α$-TeO$_2$ and CdTeO$_3$, Density Functional Theory within the Local Density Approximation (LDA) correctly describes the insulating character of these compounds. In the first four compounds, LDA underestimates the optical bandgap by roughly 1 eV. Based on this trend, we predict an optical bandgap of 1.7 eV for Cd$_3$TeO$_6$. This material shows an isolated conduction band with a low effective mass, thus explaining its semiconducting character observed recently. In all these oxides, the top valence bands are formed mainly from the O 2p electrons. On the other hand, the binding energy of the Cd 4d band, relative to the valence band maximum, in the ternary compounds is smaller than in CdTe and CdO.

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Eduardo Ariel Menendez Proupin, Gonzalo Gutierrez, Ernesto Palmero, J. L. Peña. 2004-05-30. Electronic structure of crystalline binary and ternary Cd-Te-O compounds. https://doi.org/10.1103/physrevb.70.035112

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