• 제목/요약/키워드: optoelectronic devices

검색결과 264건 처리시간 0.025초

Reduced graphene oxide field-effect transistor for biomolecule detection and study of sensing mechanism

  • Kim, D.J.;Sohn, I.Y.;Kim, D.I.;Yoon, O.J.;Yang, C.W.;Lee, N.E.;Park, J.S.
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2011년도 제40회 동계학술대회 초록집
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    • pp.431-431
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    • 2011
  • Graphene, two dimensional sheet of sp2-hybridized carbon, has attracted an enormous amount of interest due to excellent electrical, chemical and mechanical properties for the application of transparent conducting films, clean energy devices, field-effect transistors, optoelectronic devices and chemical sensors. Especially, graphene is promising candidate to detect the gas molecules and biomolecules due to the large specific surface area and signal-to-noise ratios. Despite of importance to the disease diagnosis, there are a few reports to demonstrate the graphene- and rGO-FET for biological sensors and the sensing mechanism are not fully understood. Here we describe scalable and facile fabrication of rGO-FET with the capability of label-free, ultrasensitive electrical detection of a cancer biomarker, prostate specific antigen/${\alpha}1$-antichymotrypsin (PSA-ACT) complex, in which the ultrathin rGO sensing channel was simply formed by a uniform self-assembly of two-dimensional rGO nanosheets on aminated pattern generated by inkjet printing. Sensing characteristics of rGO-FET immunosensor showed the highly precise, reliable, and linear shift in the Dirac point with the analyte concentration of PSA-ACT complex and extremely low detection limit as low as 1 fg/ml. We further analyzed the charge doping mechanism, which is the change in the charge carrier in the rGO channel varying by the concentration of biomolecules. Amenability of solution-based scalable fabrication and extremely high performance may enable rGO-FET device as a versatile multiplexed diagnostic biosensor for disease biomarkers.

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초음파 분무 열분해 증착 중 기판 회전 속도에 따른 플루오린 도핑 된 주석산화물 막의 전기적 및 광학적 특성 (Electrical and Optical Properties of Fluorine-Doped Tin Oxide Films Fabricated at Different Substrate Rotating Speeds during Ultrasonic Spray Pyrolysis Deposition)

  • 이기원;조명훈;안효진
    • 한국재료학회지
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    • 제34권1호
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    • pp.55-62
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    • 2024
  • Fluorine-doped tin oxide (FTO) has been used as a representative transparent conductive oxide (TCO) in various optoelectronic applications, including light emitting diodes, solar cells, photo-detectors, and electrochromic devices. The FTO plays an important role in providing electron transfer between active layers and external circuits while maintaining high transmittance in the devices. Herein, we report the effects of substrate rotation speed on the electrical and optical properties of FTO films during ultrasonic spray pyrolysis deposition (USPD). The substrate rotation speeds were adjusted to 2, 6, 10, and 14 rpm. As the substrate rotation speed increased from 2 to 14 rpm, the FTO films exhibited different film morphologies, including crystallite size, surface roughness, crystal texture, and film thickness. This FTO film engineering can be attributed to the variable nucleation and growth behaviors of FTO crystallites according to substrate rotation speeds during USPD. Among the FTO films with different substrate rotation speeds, the FTO film fabricated at 6 rpm showed the best optimized TCO characteristics when considering both electrical (sheet resistance of 13.73 Ω/□) and optical (average transmittance of 86.76 % at 400~700 nm) properties with a figure of merit (0.018 Ω-1).

Microtube Light-Emitting Diode Arrays with Metal Cores

  • Tchoe, Youngbin;Lee, Chul-Ho;Park, Junbeom;Baek, Hyeonjun;Chung, Kunook;Jo, Janghyun;Kim, Miyoung;Yi, Gyu-Chul
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.287.1-287.1
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    • 2016
  • Three-dimensional (3-D) semiconductor nanoarchitectures, including nano- and micro- rods, pyramids, and disks, are emerging as one of the most promising elements for future optoelectronic devices. Since these 3-D semiconductor nanoarchitectures have many interesting unconventional properties, including the use of large light-emitting surface area and semipolar/nonpolar nano- or micro-facets, numerous studies reported on novel device applications of these 3-D nanoarchitectures. In particular, 3-D nanoarchitecture devices can have noticeably different current spreading characteristics compared with conventional thin film devices, due to their elaborate 3-D geometry. Utilizing this feature in a highly controlled manner, color-tunable light-emitting diodes (LEDs) were demonstrated by controlling the spatial distribution of current density over the multifaceted GaN LEDs. Meanwhile, for the fabrication of high brightness, single color emitting LEDs or laser diodes, uniform and high density of electrical current must be injected into the entire active layers of the nanoarchitecture devices. Here, we report on a new device structure to inject uniform and high density of electrical current through the 3-D semiconductor nanoarchitecture LEDs using metal core inside microtube LEDs. In this work, we report the fabrications and characteristics of metal-cored coaxial $GaN/In_xGa_{1-x}N$ microtube LEDs. For the fabrication of metal-cored microtube LEDs, $GaN/In_xGa_{1-x}N/ZnO$ coaxial microtube LED arrays grown on an n-GaN/c-Al2O3 substrate were lifted-off from the substrate by wet chemical etching of sacrificial ZnO microtubes and $SiO_2$ layer. The chemically lifted-off layer of LEDs were then stamped upside down on another supporting substrates. Subsequently, Ti/Au and indium tin oxide were deposited on the inner shells of microtubes, forming n-type electrodes of the metal-cored LEDs. The device characteristics were investigated measuring electroluminescence and current-voltage characteristic curves and analyzed by computational modeling of current spreading characteristics.

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Ag의 두께에 따른 V2O5/Ag/ITO 구조의 다층 박막의 광학적, 전기적 특성 (The Effect of Ag thickness on Optical and Electrical Properties of V2O5/Ag/ITO Multilayer)

  • 고영희;박광훈;고항주;하준석
    • 마이크로전자및패키징학회지
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    • 제21권1호
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    • pp.7-11
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    • 2014
  • 최근 유기태양전지의 효율향상을 위하여 고분자의 PEDOT:PSS 양극(Anode) 버퍼층이 널리 사용되고 있다. 그러나 고효율 태양전지의 개발과 더불어 새로이 적용되고 있는 역구조 유기 태양전지에는 이 같은 친수성의 PEDOT:PSS 고분자가 소수성의 양극이나 광활성층 상에 균일하게 코팅되는 것이 문제점으로 지적되고 있다. 이러한 문제점을 극복하기 위해서 양극 버퍼층으로 $V_2O_5$와 같은 p-type 금속산화물을 사용한 연구가 많이 보고되고 있다. 본 연구에서는 저항을 낮추고 홀 이동도를 향상 시키기 위해 Ag를 삽입층으로 한 $V_2O_5$/Ag/ITO 구조의 다층 박막을 제작하고 Ag두께에 따른 전기적, 광학적, 구조적 특성의 변화에 대하여 살펴보았다. 가시광 영역에서는 Ag 두께가 증가함에 따라 광 투과율이 감소하는 반면 전기적 특성은 향상되는 것을 볼 수 있었다. 광소자의 투명전극산화물로 적합한 구조인지 평가하기 위해 Figure Of Merit(FOM)의 값을 측정하였고, 그 결과 Ag의 두께가 4 nm에서 가장 좋은 특성을 나타냈다. $V_2O_5$/Ag/ITO 구조의 다층 박막은 가시광 영역에서 Ag의 두께가 4 nm일 때 88%의 광 투과율을 나타내었고 저항 값은 $4{\times}10^{-4}{\Omega}cm$로써 광소자로 적합한 구조임을 확인하였다.

동시 스퍼터링으로 제조한 AZO-ITO 혼합박막의 증착 중 수소 혼입 영향 분석 (Effect of H2 Addition on the Properties of Transparent Conducting Oxide Films Deposited by Co-sputtering of ITO and AZO)

  • 김혜리;김동호;이성훈;이건환
    • 한국표면공학회지
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    • 제42권6호
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    • pp.267-271
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    • 2009
  • Multicomponent transparent conducting oxide films were deposited on glass substrates at 150 by dual magnetron sputtering of AZO and ITO targets. In the case of mixing a limited amount of ITO (10W), resistivity of TCO films was significantly increased compared to the AZO film; from $3.5{\times}10^{-3}$ to $9.7{\times}10^{-3}{\Omega}{\cdot}cm$. Deterioration of the electrical conductivity is attributed to the decreases in carrier concentration and Hall mobility. Improvement of the conductivity could be obtained for the films prepared with ITO powers larger than 40 W. The lowest resistivity ($\rho$) of $7.3{\times}10^{-4}{\Omega}{\cdot}cm$ was achieved when ITO power was 100 W. Effects of $H_2$ incorporation on the electrical and optical properties of AZO-ITO films were investigated in this work. Addition of small amount of hydrogen resulted in the increase of carrier concentration and the improvement of electrical conductivity. It is apparent that the roughness of AZO-ITO films decreases dramatically after the transition of microstructure from polycrystalline to amorphous phase, which gives practical advantages such as an excellent uniformity of surface and a high etching rate. AZO-ITO films grown at sputtering ambient with hydrogen gas are expected to be applicable to optoelectronic devices such as organic light emitting diodes and flexible displays due to their sufficient electrical and structural properties.

층상구조 망간산화물에서의 구조적 안정도와 결정성과의 관계 (Relationship between Structural Stability and Crystallinity in Layered Manganese Oxide)

  • 황성주
    • 대한화학회지
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    • 제48권1호
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    • pp.46-52
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    • 2004
  • 층상구조를 갖는 망간산화물에서 결정성과 구조적 안정도 간의 관계에 대해 조사하였다. 좋은 결정성을 갖는 망간산화물은 고상합성법-이온교환법을 이용하여 합성하였으며, 나노결정 망간산화물은 실온에서의 Chimie-Douce 반응을 통해 얻어졌다. 마이크로 라만 분광과 X선 흡수분광 결과는 결정성에 상관없이 이들 화합물에 존재하는 망간이온이 공통적으로 층상구조의 팔면체 자리에 안정화되어 있음을 보여준다. 미분전하용량 분석 결과는 나노결정 화합물의 층상구조가 전기화학적 충방전 과정 동안 안정하다는 사실을 보여주며, 이와는 대조적으로 좋은 결정성을 갖는 층상구조 화합물의 경우 현저한 구조변화를 겪는다는 사실을 보여준다. 마이크로 라만 분광 결과는 이러한 구조전이가 층상 구조로부터 스핀넬 타입 구조로의 변화에 해당함을 보여준다. 위 실험 결과로부터 나노결정성이 층상구조의 안정도를 향상시킨다는 결론을 얻을 수 있었다.

Fabrication from the Hybrid Quantum Dots of CdTe/ZnO/G.O Quasi-core-shell-shell for the White LIght Emitting DIodes

  • Kim, Hong Hee;Lee, YeonJu;Lim, Keun yong;Park, CheolMin;Hwang, Do Kyung;Choi, Won Kook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.189-189
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    • 2016
  • Recently, many researchers have shown an increased interest in colloidal quantum dots (QDs) due to their unique physical and optical properties of size control for energy band gap, narrow emission with small full width at half maxima (FWHM), broad spectral photo response from ultraviolet to infrared, and flexible solution processing. QDs can be widely used in the field of optoelectronic and biological applications and, in particular, colloidal QDs based light emitting diodes (QDLEDs) have attracted considerable attention as an emerging technology for next generation displays and solid state lighting. A few methods have been proposed to fabricate white color QDLEDs. However, the fabrication of white color QDLEDs using single QD is very challenging. Recently, hybrid nanocomposites consisting of CdTe/ZnO heterostructures were reported by Zhimin Yuan et al.[1] Here, we demonstrate a novel but facile technique for the synthesis of CdTe/ZnO/G.O(graphene oxide) quasi-core-shell-shell quantum dots that are applied in the white color LED devices. Our best device achieves a maximum luminance of 484.2 cd/m2 and CIE coordinates (0.35, 0.28).

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DC 마그네트론 스퍼터링법으로 증착된 초박형 Al 박막의 투명전극 적용성 연구 (Ultra-thin aluminum thin films deposited by DC magnetron sputtering for the applications in flexible transparent electrodes)

  • 김대균;최두호
    • 마이크로전자및패키징학회지
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    • 제25권2호
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    • pp.19-23
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    • 2018
  • 광전소자용 투명전극으로 적용하기 위한 초박형 Al 박막에 대한 기초연구를 수행하였다. 유리 기판 상에 3-12 nm의 두께를 가지는 Al 박막을 형성하였으며, 박막의 두께가 7 nm 이상일 때부터 면저항이 측정되었으며 두께가 증가할 때 면저항이 점진적으로 감소하였다. 박막 내 그레인 크기(Grain size)는 두께가 증가할수록 비례하여 증가하였다. 광 투과도의 경우 가시광선영역(380~770 nm) 파장 기준으로, 3 nm 박막 두께에서 평균 85%의 투과도가 측정된 데 반하여, 4, 5 nm 두께에서 평균 50, 60%로 급격하게 감소되기 시작하며 그 이후 두께 증가에 따라 투과도가 점진적으로 감소하였다. 본 연구결과는 향후 Oxide/Metal/Oxide(OMO) 구조의 고투과, 저저항 투명전극 적용을 위한 기초 결과로 활용될 것으로 기대된다.

스퍼터링 증착법을 이용한 ZnO/Al/ZnO 구조의 유연투명전극 연구 (Aluminum based ZnO/Al/ZnO flexible Transparent Electrodes Fabricated by Magnetron sputtering)

  • 방금혁;최두호
    • 마이크로전자및패키징학회지
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    • 제25권2호
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    • pp.31-34
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    • 2018
  • 차세대 유연 광전소자 적용을 위한 금속-산화물 샌드위치 구조인 ZnO/Al/ZnO 박막의 유연투명전극 기초연구를 수행하였다. 모든 증착은 유연성을 가지는 PET 기판 상에서 이루어졌으며, 상 하부 ZnO층의 두께가 광 투과도에 미치는 영향을 확인하기 위하여 Al 층의 두께는 모두 8 nm로 고정시킨 채 상부 ZnO 층의 두께는 5-70 nm, 하부 ZnO 층의 두께는 2.5-20 nm까지 변화를 주었다. 가시광선영역(380 nm-770 nm) 파장대를 가지는 광원의 투과도에 대하여 측정한 결과, 상부 ZnO 층의 두께가 30 nm이며 하부 ZnO 층의 경우 2.5 nm 일 때 가장 높은 투과도를 보였다. 400 nm 파장기준 투과도 62%, 면저항 $19{\Omega}/{\Box}$, 그리고 곡률반경 5 mm 조건에서의 휨 테스트 후 면저항과 투과도의 변화가 발생하지 않는 ZnO/Al/ZnO 유연투명전극 결과를 보고한다.

Inverted CdSe@ZnS Quantum Dots Light-Emitting Diode using Low-Work Function Polyethylenimine Ethoxylated (PEIE) modified ZnO

  • Kim, Choong Hyo;Kim, Hong Hee;Hwang, Do Kyung;Suh, Kwang S;Park, Cheol Min;Choi, Won Kook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2015년도 제49회 하계 정기학술대회 초록집
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    • pp.148-148
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    • 2015
  • Over the past several years, Colloidal core/shell type quantum dots lighting-emitting diodes (QDLEDs) have been developed for the future of optoelectronic applications. An inverted-type quantum-dot light-emitting-diode (QDLED), employing low work function organic material polyethylenimine ethoxylated(PEIE) (<10 nm)[1] modified ZnO nanoparticles (NPs) as electron injection and transport layer, was fabricated by all solution processing method, instead of electrode in the device. The PEIE surface modifier incorporated on the top of the ZnO NPs film, facilitates the enhancement of both electorn injection into the CdSe-ZnS QD emissive layer by lowering the workfunction of ZnO from 3.58eV to 2.87eV and charge balance on the QD emitter. In this inverted QDLEDs, blend of poly (9,9-di-n-octyl-fluorene-alt-benzothiadiazolo) and poly(N,N'-bis(4-butylphenyl)-N,N'-bis(phenyl)benzidine] are used as hole transporting layer (HTL) to improve hole transporting property. At the operating voltage of 7.5 V, the QDLED device emitted spectrally orange color lights with high luminance up to 11110 cd/m2, and showed current efficiency of 2.27 cd/A.[2]

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