• Title/Summary/Keyword: Elctroluminescence

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Fabrications and properties of ZnS thin film used as a buffer layer of electroluminescent device (전계발광소자 완충층용 ZnS 박막 제작 및 특성)

  • 김홍룡;조재철;유용택
    • Electrical & Electronic Materials
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    • v.7 no.2
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    • pp.117-122
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    • 1994
  • The role of ZnS buffer layer not only suppresses chemical reactions between emission material and insulating material but also alters the luminescence and the crystallinity of the emission layer, if ZnS buffer layer was sandwiched between emission layer and insulating layer of electroluminescent device. In this research, we fabricated ZnS thin film with rf magnetron sputter system by varying rf power 100, 200W, substrate temperature 100, 150, 200, 250.deg. C and post-annealing temperature 200, 300, 400, 500.deg. C and analysed X-ray diffraction pattern, transmission spectra and cross section by SEM photograph for seeking the optimal crystallization condition of ZnS buffer layer. As a result, increasing the rf power, the crystallinity of ZnS thin film was improved. It was found that the ZnS thin film had better properties than anything else when fabricated with the following conditions ; rf power 200W, substrate temperature 150.deg. C, and post-annealing temperature 400.deg. C. ZnS thin film had the transmittance more than 80% in visible range. So it is suitable to use as a buffer layer of electroluminescent devices.

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Optoelectronics Properties of In0.27Ga0.73N/GaN Multi-Quantum-Well Structure (In0.27Ga0.73N/GaN 다중 양자우물 구조에 대한 광전기적 특성)

  • Park, Hun-Bo;Bae, In-Ho;Kim, Ki-Hong
    • Korean Journal of Materials Research
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    • v.17 no.9
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    • pp.489-492
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    • 2007
  • Temperature and injection current dependence of elctroluminescence(EL) spectral intensity of the $In_{0.27}Ga_{0.73}N/GaN$ multi-quantum-well(MQW) have been studied over a wide temperature and as a function of injection current level. EL peaks also show significant broadening into higher photon energy region with the increase of injection current. This is explained by the band-filling effect. When temperature is slightly increased to 300 from 15 K, the EL emission peak showed red-blue-red shift. It can be explained by the carrier localization by potential fluctuation of multiple quantum well and band-gap shrinkage as temperature increase. It is found that a temperature-dependent variation pattern of the EL efficiency under very low and high injection currents show a drastic difference. This unique EL efficiency variation pattern with temperature and current is explained field effects due to the driving forward bias in presence of internal(piezo and spontaneous polarization) fields.