• 제목/요약/키워드: quinacridone

검색결과 5건 처리시간 0.018초

Quinacridone을 첨가시킨 SnO2가 도핑된 TiO2 분말의 광촉매 특성 (Photoactivity of SnO2-Doped TiO2 Powder Sensitized with Quinacridone)

  • 정미원;곽윤정
    • 공업화학
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    • 제18권6호
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    • pp.650-653
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    • 2007
  • $SnO_2$가 도핑된 $TiO_2$ 분말을 tin (IV) bis(acetylacetonate) dichloride와 titanium diisopropoxide bis(acetylacetonate)를 출발물질로, 유기염료인 quinacridone을 첨가하여 합성하였다. 반응 전후 염료의 구조를 FT-IR로 관찰하였고, 입자의 모양과 형태 및 결정의 구조는 FE-SEM과 XRD 분석기로 알아보았다. 환경오염물질로 유기염료인 indigo carmine을 선택하여 관찰한결과, 아나타제 구조를 갖는 quinacridone이 첨가된 분말을 합성하여, 가시광선 영역에서 광분해 효과를 관찰할 수 있었다.

Synthesis of Novel Quinacridone Dyes and Their Photovoltaic Performances in Organic Dye-sensitized Solar Cells

  • SaKong, Chun;Kim, Se-Hun;Yuk, Sim-Bum;Kim, Jeong-Yun;Park, Se-Woong;Ko, Min-Jae;Kim, Jae-Pil
    • Bulletin of the Korean Chemical Society
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    • 제32권8호
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    • pp.2553-2559
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    • 2011
  • Two novel quinacridone (QNC) dyes with thiophene or benzene-conjugated bridge and cyanoacrylic acid acceptor were first designed and synthesized for use in dye-sensitized solar cells (DSSCs). The absorption spectra, electrochemical and photovoltaic properties of these dyes were investigated. Under simulated AM 1.5G irradiation conditions, the solar cell based on the quinacridone dye containing thiophene as a bridge unit had a short-circuit photocurrent density of 8.51 $mA{\cdot}cm^{-2}$, an open-circuit voltage of 643.6 mV, and a fill factor of 0.70, corresponding to an overall conversion efficiency of 3.86%.

저분자 화합물을 이용한 유기 전계발광소자의 제작과 특성 연구 (Preparation and Properties of Organic Electroluminescent Devices Using Low Molecule Compounds)

  • 노준서;조중연;유정희;장영철;장호정
    • 마이크로전자및패키징학회지
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    • 제10권1호
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    • pp.1-5
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    • 2003
  • 본 연구에서는 ITO (indium tin oxide)/glass 투명기판 위에 다층구조의 OELD (organic electroluminescent devices) 소자를 진공 열증착법으로 제작하였다. 발광층 재료로서 Alq$_3$(tris-(8-hydroxyquinoline)aluminum)물질을 사용하였고, 정공수송층으로는 TPD (triphenyl-diamine) 및 $\alpha-NPD$를 사용하였다. 정공주입층 재료로서 CuPc (Copper phthalocyanine)를 사용하였다. 또한 QD2(quinacridone2) 물질을 $Alq_3$ 발광층내에 약 $10\AA$ 두께로 증착하여 발광효율 향상을 시도하였다. 제작된 모든 소자의 발광개시전압은 약 7 V 이었으며, 정공수송층으로 TPD 물질대신에 열적안정성이 우수한 $\alpha-NPD$를 사용한 경우 휘도값과 발광효율이 개선되었다. $Alq_3$ 발광층 사이에 QD2 물질을 적층한 소자에서 발광효율은 1.55 lm/W 값을 나타내어 $Alq_3$ 발광층만을 사용한 경우에 비해 약 8배 발광효율이 향상되었다.

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Synthesis, application of thermally stable red dyes for LCD colorfilter ; Influence of dye structures on the aggregation property in the film state

  • Sakong, Chun;Kim, Young-Do;Kim, Jae-Pil
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2008년도 International Meeting on Information Display
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    • pp.847-850
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    • 2008
  • Three thermally stable red dyes of azo, quinacridone and perylene derivatives were synthesized and dye-based color filters were manufactured for liquid crystal display. Aggregation behavior of the dyes and their spectral property in film state were investigated by concentration dependent spectroscopy and field emission scanning electron microscopy (FE-SEM). These dyes have remarkable difference on their aggregation behavior in film state. Such difference of aggregation behavior affects the spectral property of the film, and it can cause decreasing the transmittance of dye-based color filters.

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Co-doping을 이용한 OLED의 발광 효율 향상 (Improving electroluminescent efficiency of organic light emitting diodes by co-doping)

  • 박영욱;김영민;최진환;주병권
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2006년도 학술대회 및 기술세미나 논문집 디스플레이 광소자
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    • pp.81-82
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    • 2006
  • Doping is a well-known method for improving electroluminescent (EL) efficiency of organic light emitting diodes. In our study, doping with 2 materials simultaneously, we could achieve improved EL efficiency. The emission layer was tris-(8-hydroxyquinoline)aluminum, and the 2 dopants were N,N'-dimethyl-quinacridone (DMQA) and 10-(2-Benzothiazolyl)-2, 3, 6, 7-tetrahydro-1,1,7,7,-tetramethyl 1-1H, 5H, 11H-[1] benzopyrano [6,7,8-ij]quinolizin-11-one (C-545T). The EL intensity of co-doped device was nearly flat, it shows that co-doping technique could be a effective way to improve the EL efficiency. EL efficiency of Single-doped device based on DMQA and C-S45T were ~6.47Cd/A and ~7.45Cd/A, respectively. Co-doped device showed higher EL efficiency of ~8.30Cd/A.

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