• 제목/요약/키워드: Luminous Efficiency

검색결과 386건 처리시간 0.029초

The influence of Ne-Xe gas mixture ratio on vacuum Ultraviolet and infrared line in AC-PDP

  • Oh, Phil-Y.;Cho, I.R.;Jung, Y.;Park, K.D.;Ahn, J.C.;Choi, E.H.
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2003년도 International Meeting on Information Display
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    • pp.743-747
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    • 2003
  • The improvement of luminance and luminous efficiency is the one of the most important part in AC-PDPs. To achieve high luminance and luminous efficiency, high VUV emission efficiency is needed. We measured the emission spectra of vacuum ultraviolet(VUV) and infrared(IR) rays in surface discharge AC-PDP with Ne-Xe mixture gas. The influence of Ne-Xe gas-mixture ratio on resonance state $Xe^{\ast}(3P_{1})$ and exited state $Xe^{\ast}(3P_{2})$ has been investigated. It is found that the intensity of VUV 147nm emission is proportional to that of the IR 828 nm emission, and the VUV 173nm emission is roughly proportional to that of the IR 823nm emission. The electron temperature and plasma density have been experimentally measured from the center of sustaining electrode gap by a micro Langmuir probe in AC-PDPs. The plasma density from the center of sustaining electrode gap are shown to be maximum value of $9{\times}10^{11}cm^{-3}$, where the electron temperature is about 1.6 eV in this experiment

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AC plasma display panel의 페닝 방전가스 혼합비 변화에 따른 방전특성 연구 (A Study on the Discharge Characteristics with New Penning Gas Mixture for AC plasma display panel)

  • 박문필;이승준;이재경;황호정
    • 한국진공학회지
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    • 제11권2호
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    • pp.127-134
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    • 2002
  • 본 논문은 AC PDP에서 사용하는 가스의 혼합비, 압력, 페닝 효과를 고려한 가스 조합의 최적화를 통해 낮은 방전전압으로 휘도의 증가를 얻을 수 있는 고휘도, 고효율 PDP 페닝 기체 혼합비를 찾고자 하였다. He(70%)-Ne(27%)-Xe(3%)의 3원 혼합기체와 Ne(96%)Xe(4%)의 2원 혼합기체에 페닝 효과를 극대화하기 위한 소량의 Ar, Kr을 첨가하여 각각의 첨가비에 따른 방전 개시전압, 방전 유지전압, 휘도, 발광효율 등을 측정하였다. 또한 페닝효과에 의한 방전 공간상의 전자수 증가를 확인하기 위해 셀 내의 전극 위에 쌓이는 벽전하 양을 측정하였다. 소량의 Ar(0.01%-0.03%) 또는 Kr(0.01%-0.03%)을 HE-Ne-Xe과 Ne-Xe 혼합가스에 첨가했을 때 페닝효과에 기인하여 휘도 및 발광효율이 각각 최고 10%-20% 증가하였다. 또한 페닝효과를 확인하기 위한 벽전하의 양은 10%-25% 증가를 보였다. 방전개시전압 및 최소방전유지전압은 대략 2V-3V정도 감소하였다.

Efficient White Organic Light-emitting Device by utilizing a Blue-emitter Doped with a Red Fluorescent Dopant

  • Lim, Jong-Tae;Ahn, Young-Joo;Kang, Gi-Wook;Lee, Nam-Heon;Lee, Mun-Jae;Kang, Hee-Young;Lee, Chang-Hee;Ko, Young-Wook;Lee, Jin-Ho
    • Journal of Information Display
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    • 제4권2호
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    • pp.13-18
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    • 2003
  • We synthesized bis (2-methyl-8-quinolinolato)(triphenylsiloxy) aluminum (III) (SAlq), a blue-emitting material having a high luminous efficiency, through a homogeneous-phase reaction. The photoluminescence (PL) and electroluminescence (EL) spectra of SAlq show two peaks at 454 nm and 477 nm. Efficient white light-emitting devices are fabricated by doping SAlq with a red fluorescent dye of 4-dicyanomethylene-2-methyl-6-{2-(2,3,6,7-tetrahydro-1H,5H-benzo[i,j]quinolizin-8yl) vinyl}-4H-pyran (DCM2). The incomplete energy transfer from blue-emitting SAlq to red-emitting DCM2 results in light-emission of both blue and orange colors. Devices with the structure of ITO/TPD (50 nm)/SAlq:DCM2 (30 nm, 0.5 %)/$Alq_3$ (20 nm)/LiF (0.5 nmj/Al show EL peaks at 456 nm and 482 nm originating from SAlq and at 570 nm from DCM2, resulting in the Commission Internationale d'Eclairage (CIE) chromaticity coordinates of (0.32, 0.37). The device exhibits an external quantum efficiency of about 2.3 % and a luminous efficiency of about 2.41m/W at 100 $cd/m^2$. A maximum luminance of about 23,800 $cd/m^2$ is obtained at the bias voltage of 15 V.

LED 광원에 따른 표고 톱밥배지 갈변효율 및 자실체 특성 (Browning efficiency and fruiting body characteristics of Lentinula edodes according to LED light source with sawdust substrate)

  • 박혜성;이은지;이찬중;공원식;장명준;이관우
    • 한국버섯학회지
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    • 제15권4호
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    • pp.195-201
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    • 2017
  • LED 광원 종류별로 갈변시킨 톱밥배지에서 발생된 표고버섯의 항산화 활성을 측정하였다. 광원 종류 및 광량 선발에서는 청색LED 200lx에서 갈변 효율이 가장 좋았고, 광원 종류에 상관없이 200lx에서 높은 갈변효율을 보였다. 수량에서도 청색광원이 다른 처리에 비해 우수하였다. 항산화 활성을 확인하기 위한 DPPH radical 소거능 실험에서는 갈변효율과는 달리 적색광원에서 평균적으로 높은 라디칼 소거능을 보였고, 가장 높은 소거능을 보인 처리구로 '농진고'는 적색광원 400lx에서 발생된 자실체가 $34.3{\pm}1.80%$, '산조701호'는 적색광원 300lx에서 $32.99{\pm}1.58%$로 나타났다. DPPH 라디칼 소거능과 상관관계가 있다고 알려진 폴리페놀 함량은 '농진고'에서는 유사한 상관관계를 보이지 않았지만 '산조701호'에서는 유사한 상관관계를 보였다.

Highly Efficient Blue Organic Light-emitting Devices Based on Copper Phthalocyanine/Aromatic Diamine Composite Hole Transport Layer

  • Liao, Chi Hung;Tsai, Chih Hung;Chen, Chin H.
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2004년도 Asia Display / IMID 04
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    • pp.724-726
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    • 2004
  • Highly efficient blue organic light-emitting devices (OLEDs) utilizing the idea of copper phthalocyanine (CuPc)/N,N'-bis-(1-naphthyl)-N,N'-diphenyl,1,1'-biphenyl- 4,4'-diamine (NPB) composite hole transport layer (CPHTL) have been fabricated. The effect of inserting CPHTL upon the performance of blue OLEDs with 2-methyl-9,10-di(2-naphthyl)anthracene (MADN) as the blue emitter has been investigated. Compared with the luminous efficiency of the standard blue device without CPHTL (1.33 cd/A), that of the device with 40:60 CuPc/NPB CPHTL has been increased by more than twice up to 2.96 cd/A with a Commission Internationale d'Eclairage (CIE) coordinates of(x = 0.15, y = 0.10) and a power efficiency of 1.46 lm/W (20 mA/$cm^2$) at 6.39 V. The increased device efficiency is attributed to an improved balance between hole and electron currents arriving at the recombination zone.

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High efficiency and long lifetime green OLED with a new electron transport material and a three-component RGB white OLED for full-color display applications.

  • Tokairin, Hiroshi;Kuma, Hitoshi;Yamamoto, Hiroshi;Funahashi, Masakazu;Fukuoka, Kenichi;Hosokawa, Chishio
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2005년도 International Meeting on Information Displayvol.II
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    • pp.1138-1142
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    • 2005
  • We achieved a highly efficient green OLED with an efficiency of 30cd/A by using a new electron transport material and optimizing the device structure. The luminous efficiency was 16.8lm/W at $3000cd/m^2$ and the lifetime was over 60,000hr at an initial luminance of $1000cd/m^2$. Furthermore, we obtained a threecomponent RGB white OLED by using the highly efficient green material. This RGB white OLED shows more excellent color reproducibility for full color displays with color filters, compared to a twocomponent white OLED.

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The effect of sustain discharge gap variation in AC PDP with high Xe content

  • Bae, Hyun-Sook;Whang, Ki-Woong
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2006년도 6th International Meeting on Information Display
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    • pp.13-17
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    • 2006
  • We investigated the effect of sustain electrode gap variation with high Xe content in an ac Plasma Display Panel through two-dimensional numerical simulation to understand the inherent high luminous efficiency mechanism. For the low Xe content, the optimal sustain electrode gap turned out to be about 200 ${\mu}m$, but with higher Xe content, the VUV generation efficiency increased as the electrode gap increases beyond 200 ${\mu}m$. We found that it is due to higher electron heating efficiency in the cathode sheath under the condition of long electrode gap and high Xe content.

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A New Sustain Driving Method for AC PDP : Charge-Controlled Driving Method

  • Kim, Joon-Yub
    • KIEE International Transactions on Electrophysics and Applications
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    • 제2C권6호
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    • pp.292-296
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    • 2002
  • A new sustain driving method for the AC PDP is presented. In this driving method, the voltage source is connected to a storage capacitor, this storage capacitor charges an intermediate capacitor through LC resonance, and the panel is charged from the intermediate capacitor indirectly. In this way, the current flowing into the AC PDP when the sustain discharge occurs is reduced because the current is indirectly supplied from a capacitor, a limited source of charge. Thus, the input power to the output luminance efficiency is improved. Since the voltage supplied to the storage capacitor is doubled through LC resonance, this method call drive an AC PDP with a voltage source of about half of the voltage necessary in the conventional driving methods. The experiments showed that this charge-controlled driving method could drive ail AC PDP with a voltage source of as low as 107V. Using a panel of the conventional structure, luminous efficiency of 1.28 lm/W was achieved.

Full-Color Display를 위한 LED Module의 Design (The Design of LED Module for Full-Color Display)

  • 송유리;원창섭;최연석;임석준;안형근;한득영
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 1996년도 추계학술대회 논문집
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    • pp.274-277
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    • 1996
  • This paper describes the realization of the full-color to the degree of nearest white light by compounding high brightness Red, Green and Blue LEDs with appropriate proportional index. Once these three colors; red, green and blue are mixed, they are genearlly additive mixing and produce white light color contrasted to negative mixing. The luminous efficiency is defined as the product of the efficiency(lm/w), which indicates the degree of perceptual response by the human eye to unit energy(W) of light emitted by an active display devises and as the conversion efficiency of the device from electric power consumed to optical energy produced. We will deduce the each number of LEDs theoretically and design several shapes of LED displays for the full-color. Finally theoretical predictions will be compared with the measured data with different type of display designs.

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Highly efficient deep-blue electroluminescence using doped PCVtPh with a new host material

  • Park, Jeong-Keun;Lee, Kum-Hee;Kim, Seul-Ong;Park, Jung-Sun;Seo, Ji-Hoon;Kim, Young-Kwan;Yoon, Seung-Soo
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2009년도 9th International Meeting on Information Display
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    • pp.775-778
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    • 2009
  • Novel blue host material, 4,4'-(dinaphthalen-2-yl)-1,1'-binaphthyl (DNBN), was designed and synthesized for OLEDs. In order to test the electroluminescent properties of DNBN, DNBN was used as the host materials for a blue emitter, PCVtPh. The device exhibited deep-blue emission with the CIEx,y coordinates (x=0.15, y=0.08) at 8.0 V, a luminous efficiency of 1.66 cd/A, a power efficiency of 0.77 lm/W and an external quantum efficiency of 2.30 % at 20 mA/$cm^2$, respectively.

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