• Title/Summary/Keyword: Doping of tin

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H2 gas sensing characteristics of SnO2 nano-powdersprepared by homogeneous precipitation method (균일침전법을 이용한 SnO2 나노분말의 H2 감지 특성)

  • Kim, Yeong-Bok;Lee, Woon-Young;Park, Jin-Seong
    • Journal of Sensor Science and Technology
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    • v.17 no.5
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    • pp.361-368
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    • 2008
  • Nanosized $SnO_2$ particles were synthesized by homogeneous precipitation method using tin chloride ($SnCl_4{\cdot}5H_{2}O$) and urea ($CO(NH_2)_2$). The powders were heated at $500^{\circ}C$ and $600^{\circ}C$ for 2h. The crystal structure, microstructure, thermal behavior, specific surface area were analyzed using XRD, FE-SEM, TGA and BET, respectively. The initial resistance and the $H_2$ sensing properties were measured as a function of ${Sb_2}{O_3}$ and Pd doping concentrations. The resistance was decreased with the addition of ${Sb_2}{O_3}$ and the sensitivity for $H_2$ gas was increased with the addition of Pd. Thus, the optimum $H_2$ gas sensing property was obtained in the 0.25.mol% ${Sb_2}{O_3}$ and 1.w% added $SnO_2$ powders.

Fast Responding Gas Sensors Using Sb-Doped SnO2 Nanowire Networks (Sb-첨가 SnO2 나노선 네트워크를 이용한 고속응답 가스센서)

  • Kwak, Chang-Hoon;Woo, Hyung-Sik;Lee, Jong-Heun
    • Journal of Sensor Science and Technology
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    • v.22 no.4
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    • pp.302-307
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    • 2013
  • The Sb-doped $SnO_2$ nanowire network sensors were prepared by thermal evaporation of the mixtures between tin and antimony powders. Pure $SnO_2$ nanowire networks showed high sensor resistance in air ($99M{\Omega}$), similar gas responses to 4 diffferent gases (5 ppm $C_2H_5OH$, CO, $H_2$, and trimethylamine), and very sluggish recovery speed (90% recovery time > 800 s). In contrast, 2 wt% Sb-doped $SnO_2$ showed the selective detection toward $C_2H_5OH$ and trimethylamine, relatively low resistance ($176k{\Omega}$) for facile measurement, and ultrafast recovery speed (90% recovery times: 6 - 18 s). The change of gas sensing charactersitics by Sb doping was discussed in relation to gas sensing mechanism.

인가된 압력에 의한 탄소나노튜브 전극 특성 향상

  • Jeon, Ju-Hui;Choe, Ji-Hyeok;Mun, Gyeong-Ju;Gang, Yun-Hui;Lee, Tae-Il;Myeong, Jae-Min
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2010.05a
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    • pp.57.2-57.2
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    • 2010
  • 대표적인 투명 전극 재료indium tin oxide(ITO)의 경우, 우수한 투과성과 낮은 면저항을 기반으로 차세대 디스플레이용 전극으로 각광 받고 있다. 하지만 제조 단가가 높으며 brittle 하여 유연 디스플레이에 적용이 어려우며 대면적 제조가 어렵다는 단점이 있어 이를 대체할 수 있는 새로운 물질이 필요한 실정이다. 대표적인 후보 물질로는 탄소 육각형이 서로 연결된 관 형태인 탄소나노튜브가 있으며 뛰어난 전기 전도도와 물리적 특성을 투명 전극에 적용하기 위한 연구가 활발히 진행 중이다. 본 연구에서는 탄소나노튜브 투명 전극 제조 시 잔여 분산제 제거 및 doping의 효과를 위해 수행되는 산처리 공정을 하지 않고 투명 전극의 특성을 향상 시키는 연구를 진행하였다. 제작된 박막에 압력을 인가하여 탄소나노튜브 네트워킹의 향상과 두께의 감소를 얻을 수 있었다. 실험에 사용된 탄소나노튜브는 아크 방전 공정으로 합성된 2nm의 single wall 탄소나노튜브이며 이를 분산제인 sodium dodecyl sulfate(SDS)에 분산하여 용액형태로 제작하여 사용하였다. 분산제를 제거하기 위해 탈이온수를 사용하였으며 고분자 mold를 사용하여 압력을 인가하여 그에 따른 전기적, 광학적 변화를 관찰하였다. 제조된SWCNT 박막은 four point probe measurement를 이용하여 sheet resistance를 측정하였고 UV-vis를 이용하여 투과도와 반사도 등의 광학적 특성을 측정하였다. 박막의 표면은 field emission scanning electron microscope (FESEM)과 Atomic force microscope(AFM)를 이용하여 관찰하였다.

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A study on characteristics of $SnO_2:F$:F film based on optimum performance Solar cells by APCVD (APCVD법을 이용한 박막 태양전지용 $SnO_2:F$ 투명전극 특성 연구)

  • Ok, Youn-Deok;Kim, Yu-Seung;Yi, Bo-Ram;Kim, Min-Kyoung;Kim, Byung-Kuk;Kim, Hoon;Lee, Jeong-Min;Kim, Hyung-Jun
    • 한국신재생에너지학회:학술대회논문집
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    • 2009.06a
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    • pp.65-68
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    • 2009
  • 본 연구에서는 eagle 2000 glass위에 APCVD(atmospheric CVD)증착법으로 $SnO_2$:F 박막을 제조하였다. 공정 온도, doping 농도, TTC(Tin tetrachloride)와 $H_2O$, $CH_3OH$의 조성비를 공정 변수로 두었으며, 각 변수에 대한 전기적, 광학적 특성 및 결정성을 확인하였다. hall measurement를 이용 제작된 박막의 전기적 특성을 확인 하였고, uv-VIS spectroscopy, hazemeer를 이용 박막의 광학적 특성을 확인 하였다. 또한 XRD, FESEM, AFM을 이용 박막의 결정성 및 표면 특성을 확인 하였다. 박막의 결정성을 결정짓는 증착 온도의 경우 $590^{\circ}C$에서 완벽한 Tetragonal rutile 형태의 결정성을 보였으며 $SnO_2$:F film $1{\mu}m$ thickness에서 $10({\Omega}/{\square})$ 내외의 우수한 면저항값과 $30(cm^2/Vs)$ 이상의 mobility값을 확인 하였으며, 가시광영역대 에서 높은 투과율과 우수한 haze값을 얻었다.

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Fabrication and Characterization of Polymer Light Emitting Diodes by Using PFO/PFO:MEH-PPV Double Emitting Layer (PFO/PFO:MEH-PPV 이중 발광층을 이용한 고분자 유기발광다이오드의 제작과 특성 연구)

  • Chang, Young-Chul;Shin, Sang-Baie
    • Journal of the Microelectronics and Packaging Society
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    • v.15 no.2
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    • pp.23-28
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    • 2008
  • To improve the external quantum efficiency by means of the optimization of the polymer light emitting diodes(PLEDs) structure, the PLED with ITO/PEDOT:PSS/(PFO)/PFO:MEH-PPV/LiF/Al structure were fabricated and investigated the electrical and optical properties for the prepared devices. ITO(indium tin oxide) and PEDOT:PSS [poly (3,4-ethylenedioxythiophene): poly(styrene sulfolnate)] were used as transparent anode film and hole transport materials, respectively. PFO[poly(9,9-dioctylfluorene)] and MEHPPV[poly(2-methoxy-5(2-ethylhe xoxy)-1,4-phenylenevinyle)] were used as the light emitting host and dopant materials. The doping concentration of MEH-PPV was 9wt% with thickness of about $400{\AA}$. We investigated the dependence of the PFO thickness ranging from $200{\AA}$ to $300{\AA}$ on the electrical, optical properties of PLEDs. Among prepared PLED devices with different PFO thicknesses, the highest value of the luminance was obtained for the PLED device with $250{\AA}$ in thickness. As a result, the current density and luminance ware found to be about $400mA/cm^2$ and $1500cd/m^2$ at 13V, respectively. In addition, the luminance and current efficiency of PLED device with double emitting layer (PFO/PFO:MEH-PPV) were improved about 3 times compared with the one with single emitting layer (PFO:MEH-PPV).

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Enhanced Efficiency of Organic Electroluminescence Diode Using 2-TNATA:C60 Hole Injection Layer (2-TNATA:C60 정공 주입층을 이용한 유기발광다이오드의 성능 향상 연구)

  • Park, So-Hyun;Kang, Do-Soon;Park, Dae-Won;Choe, Young-Son
    • Polymer(Korea)
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    • v.32 no.4
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    • pp.372-376
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    • 2008
  • Vacuum deposited 4,4',4"-tris(N-(2-naphthyl)-N-phenylamino)-triphenylamine (2-TNATA), used as a hole injection (HIL) material in OLEDs, is placed as a thin interlayer between indium tin oxide (ITO) electrode and a hole transporting layer (HTL) in the devices. C60-doped 2-TNATA:C60 (20 wt%) film was formed via co-evaporation process and molecular ordering and topology of 2-TNATA:C60 films were investigated using XRD and AFM. The J-V, L-V and current efficiency of multi-layered devices were characterized as well. Vacuum-deposited C60 film was molecularly oriented, but neither was 2-TNATA:C60 film due to the uniform dispersion of C60 molecules in the film. By using C60-doped 2-TNATA:C60 film as a HIL, the current density and luminance of a multi-layered ITO/2-TNATA:C60/NPD/$Alq_3$/LiF/Al device were significantly increased and the current efficiency of the device was increased from 4.7 to 6.7 cd/A in the present study.

Electrical Properties of Al3+ and Y3+ Co-doped SnO2 Transparent Conducting Films (Al3+와 Y3+ 동시치환 SnO2 투명전극 박막의 전기적 특성)

  • Kim, Geun-Woo;Seo, Yong-Jun;Sung, Chang-Hoon;Park, Keun-Young;Cho, Ho-Je;Heo, Si-Nae;Koo, Bon-Heun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.25 no.10
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    • pp.805-810
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    • 2012
  • Transparent conducting oxides (TCOs) have wide range of application areas in transparent electrode for display devices, Transparent coating for solar energy heat mirrors, and electromagnetic wave shield. $SnO_2$ is intrinsically an n-type semiconductor due to oxygen deficiencies and has a high energy-band gap more than 3.5 eV. It is known as a transparent conducting oxide because of its low resistivity of $10^{-3}{\Omega}{\cdot}cm$ and high transmittance over 90% in visible region. In this study, co-doping effects of Al and Y on the properties of $SnO_2$ were investigated. The addition of Y in $SnO_2$ was tried to create oxygen vacancies that increase the diffusivity of oxygen ions for the densification of $SnO_2$. The addition of Al was expected to increase the electron concentration. Once, we observed solubility limit of $SnO_2$ single-doped with Al and Y. $\{(x/2)Al_2O_3+(x/2)Y_2O_3\}-SnO_2$ was used for the source of Al and Y to prevent the evaporation of $Al_2O_3$ and for the charge compensation. And we observed the valence changes of aluminium oxide because generally reported of valence changes of aluminium oxide in Tin - Aluminium binary system. The electrical properties, solubility limit, densification and microstructure of $SnO_2$ co-doped with Al and Y will be discussed.

Role of PEDOT:PSS in Doping Stability of Reduced Graphene Oxide/Single Walled Carbon Nanotubes-Based Tranparent Conductive Electrodes Hybrid Films with AuCl3 Doping

  • Lee, Byeong-Ryong;Kim, Su-Jin;Kim, Hui-Dong;Yun, Min-Ju;Jeon, Dong-Su;Kim, Tae-Geun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.383-383
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    • 2014
  • 최근 디스플레이, 태양전지 그리고 touch screen panels 등 optoelectronic 장치의 시장이 성장함에 따라 투명전극의 수요가 증가하고 있다. Indium tin oxide (ITO)의 좋은 특성 때문에 주로 투명전극에 많이 사용되고 있다. 그러나 화학적 안정성이 떨어지고, 휘어질 때 특성저하가 심하여 금속나노와이어, 탄소나노튜브, 전도성폴리머, 그리고 그래핀 등의 다른 투명전극의 연구가 활발히 진행되고 있다. 그 중에서 그래핀은 높은 전자 이동도(200000 cm2v-1s-1)와 휘어져도 전기적 크게 변하지 않는 특성 때문에 유망한 투명 전도성 전극 (Transparent Conductive Electrodes, TCEs)으로 연구되어왔다. 또한 다양한 속성 가운데, 높은 광 투과성은 그래핀의 가장 큰 장점이다 [1]. 최근, 화학 기상 증착 (Chemical Vapor Deposition, CVD) 등 다양한 제조 방법이 대량 생산을 위해 개발되었다. 그러나 이 방법은 비용이 많이 들며, 과정이 상당히 복잡하고 높은 온도 (${\sim}1000^{\circ}C$)를 필요로 한다. 따라서 용매 기반의 환원된 그래핀 산화물(Reduced Graphene Oxides, RGOs)이 최근 주목 받고 있다. 그러나 RGOs의 면저항이 높아 전극으로서 사용이 제한된다. 따라서 전기적 특성을 향상시키는 방법으로 단일 벽 탄소 나노튜브 (Single-Walled Carbon Nanotubes, SWNTs)를 혼합하거나 화학적 도핑을 통하여 면저항을 크게 향상시키는 연구가 활발히 진행되고 있다. 그러나 이런 화학적 도핑의 경우 박막이 공기 중에 직접 산소나 습기와 반응하여 전기적 특성이 저하되는 문제점을 가지고 있다 [2]. 이러한 문제를 해결하기 위해 AuCl3을 도핑한 박막에 내열성 및 내광성 등의 화학적 안정성이 뛰어난 PEDOT:PSS를 코팅하여 필름의 공기중의 노출을 막아 줌으로써 도핑의 안전성 및 전기적 특성을 최적화하였다. 본 연구에서는 간단한 dip-coating방법을 사용하여 4개의 RGO/SWNTs 박막을 흡착하였다. 다음으로 AuCl3를 도핑하여 면저항 $4.909K{\Omega}$, $4.381K{\Omega}$인 두 개의 샘플의 시간과 온도에 따른 면저항의 변화를 확인하였다. 그리고 필름의 도핑 안전성을 향상 시키기 위해 AuCl3를 도핑한 필름 위에 전도성 폴리머 PEDOT:PSS 코팅하여 면저항 $886.1{\Omega}$, $837.5{\Omega}$인 두 개의 샘플의 시간과 온도에 따른 면저항의 변화를 확인하였다. AuCl3 도핑된 필름의 경우 공기 중에 150시간 노출 시 72%의 면저항 증가가 발생하였지만 PEDOT:PSS가 코팅된 필름의 경우 5%의 면저항 증가가 나타나 확연한 차이를 보였다. 또한 AuCl3 도핑한 필름의 경우 $150^{\circ}C$에서 60시간동안 공기중에 노출되었을 때 525%의 면저항 증가가 발생하였지만 PEDOT:PSS가 코팅된 필름의 경우 58%의 면저항 증가를 나타내었다. 이것은 PEDOT:PSS가 passivation역할을 하여 필름이 공기에 노출된 부분을 막아주어 도핑된 필름의 면저항의 변화를 줄여 주었음을 알 수 있다.

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Some properties on Conversion Efficiency of Flexible Film-Typed DSCs with ZnO:Al and ITO Transparent Conducting layers (플랙시블 염료태양전지 특성에 미치는 ZnO 및 ITO의 영향)

  • Kim, Ji-Hoon;Kwak, Dong-Joo;Sung, Youl-Moon;Choo, Young-Bae
    • Proceedings of the KIEE Conference
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    • 2009.07a
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    • pp.1096_1097
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    • 2009
  • Aluminium doped zinc oxide(ZnO:Al) thin film, which is mainly used as a transparent conducting electrode in electronic devices, has many advantages compared with conventional indium tin oxide(ITO). In this paper in order to investigate the possible application of ZnO:Al thin films as a transparent conducting electrode for flexible film-typed dye sensitized solar cell (FT-DSCs), ZnO:Al and ITO thin films were prepared on the polyethylene terephthalate (PET) substrate by r. f. magnetron sputtering method. Specially one-inched FT-DSCs using either a ZnO:Al or ITO electrode were also fabricated separately under the same manufacturing conditions. Some properties of both the FT-DSCs with ZnO:Al and ITO transparent electrodes, such as conversion efficiency, fill factor, and photocurrent were measured and compared with each other. The results showed that by doping the ZnO target with 2 wt% of $Al_2O_3$, the film deposited at discharge power of 200W resulted in the minimum resistivity of $2.2\times10^{-3}\Omega/cm$ and at ransmittance of 91.7%, which are comparable with those of commercially available ITO. Two types of FT-DSCs showed nearly the same tendency of I-V characteristics and the same value of conversion efficiencies. Efficiency of FT-DSCs using ZnO:Al electrode was around 2.6% and that of fabricated FT-DSCs using ITO was 2.5%. This means that ZnO:Al thin film can be used in FT-DSCs as a transparent conducting layer.

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Electrical and Optical Study of PLED & OLEDS Structures

  • Mohammed, BOUANATI Sidi;SARI, N. E. CHABANE;Selma, MOSTEFA KARA
    • Transactions on Electrical and Electronic Materials
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    • v.16 no.3
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    • pp.124-129
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    • 2015
  • Organic electronics are the domain in which the components and circuits are made of organic materials. This new electronics help to realize electronic and optoelectronic devices on flexible substrates. In recent years, organic materials have replaced conventional semiconductors in many electronic components such as, organic light-emitting diodes (OLEDs), organic field-effect transistors (OFETs) and organic photovoltaic (OPVs). It is well known that organic light emitting diodes (OLEDs) have many advantages in comparison with inorganic light-emitting diodes LEDs. These advantages include the low price of manufacturing, large area of electroluminescent display, uniform emission and lower the requirement for power. The aim of this paper is to model polymer LEDs and OLEDs made with small molecules for studying the electrical and optical characteristics. The purpose of this modeling process is, to obtain information about the running of OLEDs, as well as, the injection and charge transport mechanisms. The first simulation structure used in this paper is a mono layer device; typically consisting of the poly (2-methoxy-5(2'-ethyl) hexoxy-phenylenevinylene) (MEH-PPV) polymer sandwiched between an anode with a high work function, usually an indium tin oxide (ITO) substrate, and a cathode with a relatively low work function, such as Al. Electrons will then be injected from the cathode and recombine with electron holes injected from the anode, emitting light. In the second structure, we replaced MEH-PPV by tris (8-hydroxyquinolinato) aluminum (Alq3). This simulation uses, the Poole-Frenkel -like mobility model and the Langevin bimolecular recombination model as the transport and recombination mechanism. These models are enabled in ATLAS- SILVACO. To optimize OLED performance, we propose to change some parameters in this device, such as doping concentration, thickness and electrode materials.