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Optical properties of passivated silicon nanoclusters: The role of synthesis

Erik W. DraegerLawrence Livermore National Laboratory, Livermore, California 94550Jeffrey C. GrossmanLawrence Livermore National Laboratory, Livermore, California 94550Andrew WilliamsonLawrence Livermore National Laboratory, Livermore, California 94550Giulia GalliLawrence Livermore National Laboratory, Livermore, California 94550
2004en
ABI

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The effect of preparation conditions on the structural and optical properties of silicon nanoparticles is investigated. Nanoscale reconstructions, unique to curved nanosurfaces, are presented for silicon nanocrystals and shown to have lower energy and larger optical gaps than bulk-derived structures. We find that high-temperature synthesis processes can produce metastable noncrystalline nanostructures with different core structures than bulk-derived crystalline clusters. The type of core structure that forms from a given synthesis process may depend on the passivation mechanism and time scale. The effect of oxygen on the optical of different types of silicon structures is calculated. In contrast to the behavior of bulklike nanostructures, for noncrystalline and reconstructed crystalline structures surface oxygen atoms do not decrease the gap. In some cases, the presence of oxygen atoms at the nanocluster surface can significantly increase the optical absorption gap, due to decreased angular distortion of the silicon bonds. The relationship between strain and the optical gap in silicon nanoclusters is discussed.

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