• Title/Summary/Keyword: Si-core/ZnO-shell nanorods

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Synthesis and Light Emission from ZnO-Coated Silicon Nanorods

  • Kim, Hyun-Su;Jin, Chang-Hyun;Park, Sung-Hoon;Kim, Hyoun-Woo;Lee, Chong-Mu
    • Bulletin of the Korean Chemical Society
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    • v.33 no.7
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    • pp.2333-2337
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    • 2012
  • We report the synthesis and thermal annealing of Si-core/ZnO-shell nanorods using a two-step process comprising the metal-assisted electroless etching of Si and the sputter deposition of ZnO. Transmission electron microscopy and X-ray diffraction analysis showed that the cores of the annealed core-shell nanorods were single crystal diamond cubic-type Si, whereas the shells of the annealed core-shell nanorods were single crystal wurtzite-type ZnO. The PL spectra of Si nanorods consisted of a broad red emission band and a weaker blue emission band. The major emission band of Si nanorods was shifted from 700 nm (in the red region) to 440 nm (in the violet region) by ZnO coating. The violet emission of the core-shell nanorods was enhanced in intensity considerably by annealing in an oxidizing atmosphere. The origin of the PL enhancement by annealing is also discussed.

Low Temperature Optical Properties of NiO coated ZnO Nanorods (NiO 코팅 두께에 따른 ZnO 나노막대의 저온분광특성)

  • Shin, Y.H.;Park, Y.H.;Kim, Yong-Min
    • Journal of the Korean Vacuum Society
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    • v.16 no.4
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    • pp.286-290
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    • 2007
  • We fabricated NiO coated ZnO nanorods using ZnO nanorods grown on a Si substrate. After thermal hydrogenation process of these NiO-ZnO core-shell nanorods, we confirm that Ni nanodots were built up on the surface of ZnO nanorods. Photoluminescence (PL) measurements at T=5 K were made to understand the optical properties of these various nanorods. As samples sequencially transformed into $ZnO{\rightarrow}NiO-ZnO{\rightarrow}Ni$ nanodot-ZnO, PL transition energies and intensities are varied as well. In comparison to pure ZnO nanorod, the acceptor bound exciton ($A^0X$) became the minor peak for NiO-ZnO nanorods. On the other hand, for Ni nanodot-ZnO sample, ($A^0X$) transition peak intensity became the most dominant peak. This is due to the fact that during thermal hydrogenation process, appreciable amounts of Ni and hydrogen ions defused into ZnO nanorod which played as accepters.