• Title/Summary/Keyword: ITO dot

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ITO Dot과 알루미늄 반사판을 이용한 InGaN 기반 박막태양전지

  • Choe, Sang-Bae;Seo, Dong-Ju;Sim, Jae-Pil;Lee, Dong-Seon
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.440-441
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    • 2013
  • 현재 친환경 에너지에 대한 관심의 증대로 인하여 박막 태양전지 연구에 대한 수요가 증가하고 있다. 특히 InGaN 기반의 박막태양전지는 태양 스펙트럼 전체를 흡수 할 수 있는 넓은 흡수 대역, 비교적 높은 흡수 계수 ($>{\sim}10^5cm^{-1}$) 및 전자의 이동도 등으로 인하여 연구가 활발히 진행되고 있다. InGaN 박막 태양전지의 경우 ITO 층을 전류확산 층으로 많이 사용되는데, 일반적으로 평평한 박막의 형태를 갖는다. 이 평면 ITO 층에 dot을 형성하게 되면 상대적인 굴절률의 차이를 감소시켜 반사되는 빛의 양을 감소시킬 수 있어 태양전지가 흡수할 수 있는 빛의 양을 증가시켜 태양전지의 효율을 향상시킬 수 있다. 또한, 장파장대의 빛의 경우 투과도가 높아 태양전지의 흡수 층을 투과할 가능성을 인하여 효율이 저하될 수 있다. 따라서 반사판을 사용하게 되면 빛의 광학적 경로를 증가시켜 효율을 향상시킬 수 있다. 알루미늄의 경우 InGaN 태양전지의 흡수대역에서 반사도가 90% 이상으로 알려져 있어 반사판으로 사용되기에 적절하여 많이 사용되고 있다. 본 연구에서는 FDTD 툴을 이용하여 ITO dot과 알루미늄 반사판을 이용하여 효율이 향상된 InGaN 박막태양전지의 시뮬레이션을 수행하였다. ITO dot이 존재하는 전류 확산층과 알루미늄 반사판의 투과도 및 반사율을 먼저 계산한 후 태양전지 구조에 적용하여 전류-전압 특성, 외부 양자효율 특성을 예측하였다. Fig. 1은 시뮬레이션된 InGaN 박막태양전지의 구조이다.

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ITO-Ag NW based Transparent Quantum Dot Light Emitting Diode (ITO-Ag NW기반 투명 양자점 발광 다이오드)

  • Kang, Taewook;Kim, Hyojun;Jeong, Yongseok;Kim, Jongsu
    • Korean Journal of Materials Research
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    • v.30 no.8
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    • pp.421-425
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    • 2020
  • A transparent quantum dot (QD)-based light-emitting diode (LED) with silver nanowire (Ag NW) and indium-tin oxide (ITO) hybrid electrode is demonstrated. The device consists of an Ag NW-ITO hybrid cathode (-), zinc oxide, poly (9-vinylcarbazole) (PVK), CdSe/CdZnS QD, tungsten trioxide, and ITO anode (+). The device shows pure green-color emission peaking at 548 nm, with a narrow spectral half width of 43 nm. Devices with hybrid cathodes show better performances, including higher luminance with higher current density, and lower threshold voltage of 5 V, compared with the reference device with a pure Ag NW cathode. It is worth noting that our transparent device with hybrid cathode exhibits a lifetime 9,300 seconds longer than that of a device with Ag NW cathode. This is the reason that the ITO overlayer can protect against oxidization of Ag NW, and the Ag NW underlayer can reduce the junction resistance and spread the current efficiently. The hybrid cathode for our transparent QD LED can applicable to other quantum structure-based optical devices.

Direct indium-tin oxide (ITO) nano-patterning using ITO nano particle solution (Indium-tin oxide (ITO) 나노 입자 용액을 이용한 직접 ITO 나노 패턴 제작 기술)

  • Yang, Gi-Yeon;Yun, Gyeong-Min;Lee, Heon
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2009.10a
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    • pp.247-247
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    • 2009
  • 본 연구에서는 indium-tin oxide (ITO) 나노 입자 용액을 이용하여 간단한 공정을 통해 ITO 나노 패턴을 직접적으로 제작하는 기술에 대한 연구를 진행하였다. 이를 이용하여 300nm급 ITO 나노 dot 패턴을 제작하는데 성공하였으며 이를 glass 표면에 구현하는데 성공하였다.

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Nano Pillar의 두께에 따라 적용된 AlGaInP Vertical LED의 광추출효율 향상 연구

  • Ryu, Ho-Seong;Park, Min-Ju;Baek, Jong-Hyeop;O, Hwa-Seop;Gwak, Jun-Seop
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.593-593
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    • 2013
  • 나노패턴 제작은 차세대 초고밀도 반도체 메모리기술과 바이오칩 등 나노기술의 핵심 분야로, 나노패턴 구조를 나노-바이오 전자소자 및 반도체 산업분야에 적용할 경우 시장 선점 및 막대한 부가가치 창출 등을 통해 국가경쟁력 강화에 크게 기여할 것으로 기대된다. 하지만 대면적 패턴형성이 어려워 뿐만 아니라 $300^{\circ}$ 이상의 열처리 과정에 의한 생산성이 떨어진다. 또한 나노구조가 잘 이루어진 차원, 표면상태, 결정성, 화학적 조성을 갖도록 하는 합성 및 제조상의 어려움 때문이다. 이에 반해 자기정렬 ITO Dot 형성은 상기 기술한 1차원 나노구조형성을 하는 것에 비하여, 나노구조를 제작하기 위하여 공정이 단순하며, 비용 및 생산성 측면에서 유리 할 것으로 생각된다. 이에 본 연구는 E-beam을 이용하여 형성된 ITO 박막에 HCl solution을 이용하여 자기정렬 ITO Dot 형성 후 n-AlGaInP Vertical LED[VLED] 표면에 nano pillar의 두께에 각기 다르게 형성하였으며, 최종적으로 제작된 VLED의 전기적, 광학적 특성을 조사하였다.

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Fabrication Process of Light Emitting Diodes Using CdSe/CdS/ZnS Quantum Dot

  • Cho, Nam Kwang;Kang, Seong Jun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.428-428
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    • 2013
  • Red color light emitting diodes were fabricated using CdSe/CdS/ZnS quantum dots (QDs). Patterned indium-tin-oxide (ITO) was used as a transparent anode, and oxygen plasma treatment on a surface of ITO was performed. Poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) was spin coated on the ITO surface as a hole injection layer. Then CdSe/CdS/ZnS QDs was spin coated and thermal treatment was performed for the cross-linking of QDs. TiO2 was coated on the QDs as an electron transport layer, and 150 nm of aluminum cathode was formed using thermal evaporator and shadow mask. The device shows a pure red color emission at 606 nm wavelength. Device characteristics will be presented in detail.

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Flexible quantum dot solar cells with PbS-MIx/PbS-BuDT bilayers

  • Choe, Geun-Pyo;Yang, Yeong-U;Yun, Ha-Jin;Im, Sang-Gyu
    • Proceedings of the Korean Vacuum Society Conference
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    • 2016.02a
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    • pp.347.2-347.2
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    • 2016
  • Recently, in order to improve the performance of the colloidal quantum dot solar cells (CQDSCs), various efforts such as the modification of the cell architecture and surface treatment for quantum dot (QD) passivation have been made. Especially, the incorporation of halides into the QD matrix was reported to improve the performances significantly via passivating QD trap states that lower the life-time of the minority-carrier. In this work, we fabricated a lead sulfide (PbS) QD bilayer treated with different ligands and utilized it as a photoactive layer of the CQDSCs. The bottom and top PbS layer was treated using metal iodide ($MI_x$ and butanedithiol (BuDT), respectively. All the depositions and ligand treatments were carried out in air using layer-by-layer spin-coating process. The fabrication of the active layers as well as the n-type zinc oxide (ZnO) layer was successfully carried out on the bendable indium-tin-oxide (ITO)-coated polyethylene terephthalate (PET) substrate, which implies that this technique can be applied to the fabrication of flexible and/or wearable solar cells. The power conversion efficiency (PCE) of the CQDSCs with the architecture of $PET/ITO/ZnO/PbS-MI_x/PbS-BuDT/MoO_x/Ag$ reached 4.2 %, which is significantly larger than that of the cells with single QD (PbS-BuDT) layer.

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Fabrication of Silver Micro Lines by Ink-Jet Method (잉크젯 기법을 이용한 은 미세라인 형성)

  • Byun, Jong-Hoon;Seo, Dong-Soo;Choi, Yuungmin;Chang, Hyunju;Kong, Ki-Jeong;Lee, Jung-O;Ryu, Beyong-Hwan
    • Journal of the Korean Ceramic Society
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    • v.41 no.10 s.269
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    • pp.788-791
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    • 2004
  • We have studied the fabrication of silver micro lines using the silver nano sol on ITO substrate by an ink-jet method. The average particles size of $10wt\%$ silver nano sol synthesized with polyelectrolytes was smaller than 10 nm. The pattern formation of silver nano sol on the substrate closely related with the contact angle of the silver nano sol. The dot shaped of silver nano sol on bare ITO substrate was formed due to the high contact angle of silver nano sol. When ITO substrates was treated with 100 ppm polyethylenimine for silver nano sol patterning, fine silver micro lines of $60{\sim}100{\mu}m$ width was fabricated by ink-jet method.

InP/ZnS Core/shell as Emitting Layer for Quantum Dot LED

  • Kwon, Byoung-Wook;Son, Dong-Ick;Lee, Bum-Hee;Park, Dong-Hee;Lim, Ki-Pil;Woo, Kyoung-Ja;Choi, Heon-Jin;Choi, Won-Kook
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.451-451
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    • 2012
  • Instead of a highly toxic CdSe and ZnScore-shell,InP/ZnSecore-shell quantum dots [1,2] were investigated as an active material for quantum dot light emitting diode (QD-LED). In this paper, aquantum dot light-emitting diode (QDLED), consisting of a InP/ZnS core-shell type materials, with the device structure of glass/indium-tin-oxide (ITO)/PEDOT:PSS/Poly-TPD/InP-ZnS core-shell quantum dot/Cesium carbonate(CsCO3)/Al was fabricated through a simple spin coating technique. The resulting InP/ZnS core-shell QDs, emitting near blue green wavelength, were more efficient than the above CdSe QDs, and their luminescent properties were comparable to those of CdSe QDs.Thebrightness ofInP/ZnS QDLED was maximumof 179cd/m2.

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Enhancement of Hole Injection in Organic Light Emitting Device by using Ozone Treated Ag Nanodots Dispersed on ITO Anode (나노 사이즈의 Ag dot을 성막한 ITO 애노드의 오존처리에 의한 유기발광소자의 홀 주입 특성 향상)

  • Moon, Jong-Min;Bae, Jung-Hyeok;Jeong, Soon-Wook;Li, Min-Su;Kim, Han-Ki
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.19 no.11
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    • pp.1037-1043
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    • 2006
  • We report the enhancement of hole injection using ozone-treated Ag nanodots dispersed on indium tin oxide anode in $Ir(ppy)_3-doped$ phosphorescent OLED. Phosphorescent OLED fabricated on Ag nanodots dispersed ITO anode showed a lower turn on voltage and higher luminescence than those of OLEDS prepared commercial ITO anode. Synchrotron x-ray scattering examination results showed that the Ag nanodots dispersed on ITO anode is amorphous structure due to low deposition temperature. It was thought that decrease of the energy barrier height as Ag nanodots changed to $AgO_x$ nanodots by surface treatment using ozone for 10 min led to enhancement of hole injection in phosphorescent OLED. Futhermore, efficient hole injection can be explained by increase of contact region between anode material and organic material through introduction of $Ag_2O$ nanodots.

Growth of Electrochemical Nickel Thin Film on ITO(Indium Tin Oxide) Electrode (ITO(Indium Tin Oxide) 전극상의 전기화학적 Nickel 박막형성)

  • Kim, Woo-Seong;Seong, Jeong-Sub
    • Journal of Korean Ophthalmic Optics Society
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    • v.7 no.2
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    • pp.155-161
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    • 2002
  • We studied the formation of nickel nano thin film that have various electrochromic properties. Nickel thin film having various thickness will apply photoelectronic devices, specially, electrochromic devices. These devices will apply lens, battery, glass and solar cell that have light, thin, simple and small that applied nanotechnology and quantum dot. Nickel thin film was coated by electrochemical method on ITO electrode. We studied the thin film properties by Cyclic voltammetry, Chronoamperometry. Impedance. X-ray diffraction analysis and Atomic force microscopy.

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