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Intrinsic point defects and the n- and p-type dopability of the narrow gap semiconductors GaSb and InSb

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arxiv 1907.13063 v1 pith:QHOG4CT3 submitted 2019-07-30 cond-mat.mtrl-sci

Intrinsic point defects and the $n$- and $p$-type dopability of the narrow gap semiconductors GaSb and InSb

classification cond-mat.mtrl-sci
keywords gasbconcentrationsdefectdefectsdopabilityinsbintrinsicpoint
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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abstract

The presence of defects in the narrow-gap semiconductors GaSb and InSb affects their dopability and hence applicability for a range of optoelectronic applications. Here, we report hybrid density functional theory based calculations of the properties of intrinsic point defects in the two systems, including spin orbit coupling effects, which influence strongly their band structures. With the hybrid DFT approach we adopt, we obtain excellent agreement between our calculated band dispersions, structural, elastic and vibrational properties and available measurements. We compute point defect formation energies in both systems, finding that antisite disorder tends to dominate, apart from in GaSb under certain conditions, where cation vacancies can form in significant concentrations. Calculated self-consistent Fermi energies and equilibrium carrier and defect concentrations confirm the intrinsic $n$- and $p$-type behaviour of both materials under anion-rich and anion-poor conditions. Moreover, by computing the compensating defect concentrations due to the presence of ionised donors and acceptors, we explain the observed dopability of GaSb and InSb.

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