• 제목/요약/키워드: PEDOT/PSS

검색결과 236건 처리시간 0.022초

N형 유기물질을 이용한 세로형 유기 발광트랜지스터의 제작 및 특성에 관한 연구 (Characteristics and Fabrication of Vertical Type Organic Light Emitting Transistors Using n-Type Organic Materials)

  • 오세용;김희정;장경미
    • 폴리머
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    • 제30권3호
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    • pp.253-258
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    • 2006
  • 4 종류의 n형 유기 반도체 물질 F16CuPC, NTCDA, PTCDA, PTCDI C-8을 사용하여 ITO/n형 활성물질/Al gate/n형 활성물질/Al으로 구성되는 세로형 유기 박막트랜지스터를 제작하였다. 캐리어 이동도의 차이를 갖는 유기 물질의 종류와 유기 박막층의 두께 조절에 따른 유기 박막트랜지스터의 전류전압(I-V) 특성 및 전류의 온오프비에 미치는 영향을 조사하였다. PTCDI C-8을 사용한 세로형 유기 박막트랜지스터에서 낮은 구동전압과 높은 스위칭 특성을 보였다. ITO/PEDOT-PSS/P3HT/F16CuPc/Al gate/F16CuPc/Al으로 구성되는 발광트랜지스터를 제작하였고, 20 V에서 최고 0.054의 양자 효율을 나타내었다.

White Organic Light-Emitting Diodes Using a New DCM Derivative as an Efficient Orange-Red Doping Molecule

  • Lee, Jong-Don;Hwang, Do-Hoon;Cho, Nam-Sung;Lee, Sang-Kyu;Shim, Hong-Ku;Lee, Chang-Hee
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2005년도 International Meeting on Information Displayvol.II
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    • pp.1416-1418
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    • 2005
  • A new DCM derivative containing a phenothiazine moiety, 4-(dicyanomethylene)-2-t-butyl-6-(9-ethylphenothiazine-2- enyl)-4H-pyran (DCPTZ), has been synthesized as an orange-red fluorescent dye molecule for organic lightemitting diodes (OLEDs). EL devices with the structure of $ITO/PEDOT-PSS/{\alpha}-NPD/Alq_3:DCPTZ/Alq_3/LiF/Al$ have been fabricated with changing the doping concentration of the DCPTZ. Maximum EL spectra of the devices ranged from $580{\sim}620$ nm depending on the doping concentration of the dye molecule. An EL device with 0.5 % doping concentration showed CIE coordinate (0.51, 0.47) at luminance of 100 $cd/m^2$. White light-emitting devices with the structure of $ITO/PEDOT-PSS/{\alpha}-NPD/{\alpha}-NPD:DCPTZ/DPVBi/Alq_3/$ LiF/Al have been also fabricated. The thickness of blue light-emitting 1,4-bis(2,2- diphenylvinyl)benzene (DPVBi) layer was changed to obtain a white light-emission. A white light-emission from the device was observed when the thickness of the DPVBi layer became thicker than 10 nm.

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유연 복합재료 전극 제조 및 표면조도에 따른 접착 특성에 대한 연구 (A Study on the Fabrication of Flexible Composite Electrodes and Its Bonding Characteristics According to Surface Roughness)

  • 이한영;정경채;한민구;장승환
    • Composites Research
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    • 제27권6호
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    • pp.242-247
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    • 2014
  • 전기활성고분자의 종류 중 하나인 유전성 탄성체의 거동에 대응할 수 있는 유연전극 제조에 대한 연구를 수행하였다. 전도성 고분자(PEDOT:PSS)에 가소제 역할을 하는 자이리톨(Xylitol)을 첨가하여 기계적 특성을 평가하였다. 자이리톨을 첨가한 전극의 유연성을 확인하기 위해 실리콘 시편에 전극을 도포하여 인장시험을 수행하였다. 자이리톨을 70 wt% 첨가한 조건에서 연신률이 크게 증가함을 확인하였고 실리콘 거동에 큰 영향을 미치지 않는 것을 확인하였다. 또한, 전극과 실리콘의 접착성을 향상시키기 위해 표면조도가 다른 실리콘 필름을 제작하였으며 사포 #120으로 처리한 시편에서 실리콘 필름과 전극의 접착성이 향상됨을 확인하였다.

Phenothiazine계 전도성고분자의 합성 및 유기박막태양전지로의 적용 연구 (Synthesis and Photovoltaic Properties of Conducting Polymers Based on Phenothiazine)

  • 유한솔;박용성
    • 공업화학
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    • 제24권1호
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    • pp.93-98
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    • 2013
  • 본 연구에서는 고온 고압반응을 통하여 4종의 전도성 고분자 poly[(N-butyl-phenothiazine)-sulfide] (PBPS), poly[(N-hexyl-phenothiazine)-sulfide] (PHPS), poly[(N-decyl-phenothiazine)-sulfide] (PDPS), poly[(N-(2-ethylhexyl)-phenothiazine)-sulfide] (PEHPS)를 합성하였다. 각 단계의 합성된 화합물의 구조는 $^1H-NMR$을 통하여 확인하였고, UV-Vis, cyclic voltammetry, GPC를 이용하여 합성된 고분자의 물성을 확인하였다. PBPS, PHPS, PDPS, PEHPS의 최대흡수파장은 각각 338, 341, 340, 334 nm이었으며, 각 고분자의 광학적 밴드 갭은 3.11, 3.13, 3.16, 3.05 eV이었다. 유기박막태양전지로서의 적용가능성을 확인하기 위해 합성된 고분자를 전자 받개 물질인 $PC_{71}BM$과 블렌딩하여 ITO/PEDOT : PSS/polymer (PBPS, PDPS) : $PC_{71}BM$ (1 : 3, w/w)/$BaF_2$/Ba/Al 구조의 소자를 제작하였고, solar simulator로 광전변환효율을 측정하였다. PBPS의 광전변환효율은 0.076%이었고, PDPS의 광전변환효율은 0.136%이었다.

토출 및 흡입 Needle을 이용한 유기 박막 패터닝 공정 (A Patterning Process for Organic Thin Films Using Discharge and Suction Needles)

  • 김대엽;신동균;이진영;박종운
    • 반도체디스플레이기술학회지
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    • 제19권1호
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    • pp.79-84
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    • 2020
  • Unlike a printing process, it is difficult to pattern organic thin films in the longitudinal (coating) direction using a coating process. In this paper, we have investigated the feasibility of patterning organic thin films using needles. To this end, we have slot-coated an aqueous poly(3,4-ethylenedioxythiophene):poly(4-styrenesulfonate) (PEDOT:PSS) solution in the form of a fine stripe or large area and then applied the dual needle; one for discharging the main solvent of the underlying thin film and the other for sucking the dissolved thin film. We have found that the pattern width and depth increase as the moving speed of the plate decreases. However, it is observed that the sidewall slope is very gentle (the length of the slope is of the order of 200 ㎛) due to the fact that the discharged main solvent is widely spread and then isotropic etching occurs. With this scheme, we have also demonstrated that a fine stripe can be obtained by scanning the dual needle closely. To demonstrate its applicability to solution-processable organic light-emitting diodes (OLEDs), we have also fabricated OLED with the patterned PEDOT:PSS stripe and observed the insulation property in the strong light-emitting stripe.

PFO : MEH-PPV 발광층과 정공 차단층을 이용한 고분자 발광다이오드의 특성 (Properties of Polymer Light Emitting Diodes Using PFO : MEH-PPV Emission Layer and Hole Blocking Layer)

  • 이학민;공수철;신상배;박형호;전형탁;장호정
    • 반도체디스플레이기술학회지
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    • 제7권2호
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    • pp.49-53
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    • 2008
  • The yellow base polymer light emitting diodes(PLEDs) with double emission and hole blocking layers were prepared to improve the light efficiency. ITO(indium tin oxide) and PEDOT : PSS[poly(3,4-ethylenedioxythiophene) : poly(styrene sulfolnate)] were used as cathode and hole transport materials. The PFO[poly(9,9-dioctylfluorene)] and MEH-PPV[poly(2-methoxy-5(2-ethylhe xoxy)-1,4-phenylenevinyle)] were used as the light emitting host and guest materials, respectively. TPBI[Tpbi1,3,5-tris(N-phenylbenzimidazol-2-yl)benzene] was used as hole blocking layer. To investigate the optimization of device structure, we prepared four kinds of PLED devices with different structures such as single emission layer(PFO : MEH-PPV), two double emission layer(PFO/PFO : MEH-PPV, PFO : MEH-PPV/PFO) and double emission layer with hole blocking layer(PFO/PFO : MEH-PPV/TPBI). The electrical and optical properties of prepared devices were compared. The prepared PLED showed yellow emission color with CIE color coordinates of x = 0.48, y = 0.48 at the applied voltage of 14V. The maximum luminance and current density were found to be about 3920 cd/$m^2$ and 130 mA/$cm^2$ at 14V, respectively for the PLED device with the structure of ITO/PEDOT : PSS/PFO/PFO : MEH-PPV/TPBI/LiF/Al.

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유기 발광소자 ITO/Buffer $layer/TPD/Alq_3/LiAl$ 구조에서의 수명 분석 (Lifetime analysis of organic light-emitting diodes in ITO/Buffer $layer/TPD/Alq_3/LiAl$ structure)

  • 정동회;최운식;박권화;이준웅;김진철;김태완
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2004년도 하계학술대회 논문집 Vol.5 No.1
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    • pp.158-161
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    • 2004
  • We have studied a lifetime in organic light-emitting diodes depending on buffer layer. A transparent electrode of indium-tin-oxide(ITO) was used as an anode. And the cathode for electron injection was LiAl. Phthalocyanine Copper(CuPc), Poly(3,4-ethylenedioxythiophene):poly (PEDOT:PSS), or poly (9-vinylcarbazole)(PVK) material was used as a buffer layer. A thermal evaporation was performed to make a thickness of 40nm of TPD layer at a rate of $0.5{\sim}1\;{\AA}/s$ at a base pressure of $5{\times}10^{-6}\;torr$. A material of tris(8-hydroxyquinolinate) Aluminum($Alq_3$) was used as an electron transport and emissive layer. A thermal evaporation of $Alq_3$ was done at a deposition rate of $0.7{\sim}0.8[{\AA}/s]$ at a base pressure of $5{\times}10^{-6}\;torr$. By varying the buffer material, hole injection at the interface could be controlled because of the change in work function. Devices with CuPc and PEDOT:PSS buffer layer are superior to the other PVK buffer layer.

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순환전류법을 이용해 ZnO 금속산화물과 Graphene을 동시에 제막한 전자수송층을 갖는 유기태양전지의 특성 (Characteristics of Organic Solar Cell having an Electron Transport Layer co-Deposited with ZnO Metal Oxide and Graphene using the Cyclic Voltammetry Method)

  • 안준섭;한은미
    • 마이크로전자및패키징학회지
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    • 제29권1호
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    • pp.71-75
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    • 2022
  • Graphene oxide를 ZnCl2:NaCl 전해질과 함께 교반한 후 순환 전압전류법에 의해 전기화학적으로 제막하여 유기태양전지용 전자수송층 제막과정을 단순화하고 이를 갖는 유기태양전지를 제작하였다. 소자의 구조는 FTO/ZnO:graphene 전자수송층/P3HT:PCBM 광활성층/PEDOT:PSS 정공수송층/Ag이다. ETL의 형태 및 화학적 특성은 주사전자현미경(scanning electron microscopy, SEM), X선 광전자 분광법(X-ray photoelectron spectroscopy, XPS), 라만 분광법으로 확인하였다. XPS 측정결과 ZnO 금속산화물 및 탄소결합이 동시에 확인되었고, 라만 분광법에서 ZnO와 graphene 피크를 확인하였다. 제작한 태양전지의 전기적 특성을 솔라시뮬레이터로 측정하였고 0.05 V/s의 속도로 2회 제막한 ETL 소자에서 1.94%의 가장 높은 광전변환효율을 나타내었다.

Efficient orange-red OLED using a new DCM derivative as a doping molecule

  • Hwang, Do-Hoon;Lee, Jong-Don;Lee, Moon-Jae;Lee, Chang-Hee
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2004년도 Asia Display / IMID 04
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    • pp.579-581
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    • 2004
  • A new DCM derivative containing the phenoxazine moiety (DCPXZ) has been synthesized for use as a red fluorescent dye molecule in organic light-emitting diodes (OLEDs). The photoluminescence and electroluminescence properties of DCPXZ were examined. The maximum photoluminescence of DCPXZ in chloroform solution ($10^{-5}$ mol) was observed at 616 nm. EL devices were fabricated with the structure ITO/PEDOT-PSS/Cu-PC(15nm)/${\alpha}$-NPD(45nm)/$Alq_3$:DCPXZ(30nm)/$Alq_3$(30nm)/LiF(0.5nm)/Al. The maximum EL emission for the 2.0% DCPXZ-doped device was at 608 nm with CIE coordinates (0.57, 0.42). The EL device exhibited a maximum brightness of 15,000 cd/$m^2$ at 19.4 V and a power efficiency of 1.04 lm/W at a luminance of 100 cd/$m^2$.

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PEDOT:PSS/Single Wall Carbon Nanotube Composite Nanoparticles as an Additive for Electric-double Layer Capacitor

  • Park, Jong Hyeok;Lee, Sang Young;Kim, Jong Hun;Ahn, Sunho
    • Journal of Electrochemical Science and Technology
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    • 제3권3호
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    • pp.143-148
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    • 2012
  • The unique effects of highly conductive conducting polymer/SWNT (single walled carbon nanotube) composite nanoparticles in electric double layer capacitors are studied for the enhancement of the adhesive properties, specific capacitance and power characteristics of the electrode. Because the conducting polymer/SWNT composite material, which is believed to act as a polymer binder, an active material for charge storage and a conducting agent, is well distributed on the activated carbon, greatly enhanced adhesion properties, cell capacitance and power characteristics were obtained.