• 제목/요약/키워드: Workfunction

검색결과 41건 처리시간 0.026초

Stability Assessment of Lead Sulfide Colloidal Quantum Dot Based Schottky Solar Cell

  • Song, Jung-Hoon;Kim, Jun-Kwan;An, Hye-Jin;Choi, Hye-Kyoung;Jeong, So-Hee
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.413-413
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    • 2012
  • Lead sulfide (PbS) Colloidal quantum dots (CQDs) are promising material for the photovoltaic device due to its various outstanding properties such as tunable band-gap, solution processability, and infrared absorption. More importantly, PbS CQDs have large exciton Bohr radius of 20 nm due to the uniquely large dielectric constants that result in the strong quantum confinement. To exploit desirable properties in photovoltaic device, it is essential to fabricate a device exhibiting stable performance. Unfortunately, the performance of PbS NQDs based Schottky solar cell is considerably degraded according to the exposure in the air. The air-exposed degradation originates on the oxidation of interface between PbS NQDS layer and metal electrode. Therefore, it is necessary to enhance the stability of Schottky junction device by inserting a passivation layer. We investigate the effect of insertion of passivation layer on the performance of Schottky junction solar cells using PbS NQDs with band-gap of 1.3 eV. Schottky solar cell is the simple photovoltaic device with junction between semiconducting layer and metal electrode which a significant built-in-potential is established due to the workfunction difference between two materials. Although the device without passivation layer significantly degraded in several hours, considerable enhancement of stability can be obtained by inserting the very thin LiF layer (<1 nm) as a passivation layer. In this study, LiF layer is inserted between PbS NQDs layer and metal as an interface passivation layer. From the results, we can conclude that employment of very thin LiF layer is effective to enhance the stability of Schottky junction solar cells. We believe that this passivation layer is applicable not only to the PbS NQDs based solar cell, but also the various NQDs materials in order to enhance the stability of the device.

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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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NMOS 소자의 Ta-Ti 게이트 전극 특성 (Characteristics of Ta-Ti Gate Electrode for NMOS Device)

  • 강영섭;서현상;노영진;이충근;홍신남
    • 한국항행학회논문지
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    • 제7권2호
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    • pp.211-216
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    • 2003
  • 본 논문에서는 오래 전부터 NMOS의 게이트 전극으로 사용된 폴리실리콘을 대체할 수 있는 Ta-Ti 합금의 특성에 대해 연구하였다. 실리콘 기판 위에 열적으로 성장된 $SiO_2$ 위에 Ta과 Ti의 두 타깃을 사용하여 co-sputterring 방법으로 Ta-Ti 합금을 증착하였다. 각각의 타깃은 100W의 sputtering power로 증착하여 시편을 제작하였다. 또한 비교 분석을 위하여 Ta을 100W의 sputtering power로 증착한 시편도 제작하였다. 제작된 Ta-Ti 합금 게이트의 열적/화학적 안정성을 검토하기 위하여 $600^{\circ}C$에서 급속열처리를 수행한 결과 소자의 성능 저하는 나타나지 않았다. 또한 전기적 특성 분석 결과 Ta-Ti 합금은 NMOS에 적합한 일함수인 4.13eV를 산출해 낼 수 있었고, 면저항 역시 폴리실리콘에 비해 낮은 값을 얻을 수 있었다.

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Formation of Nickel Silicide from Atomic Layer Deposited Ni film with Ti Capping layer

  • 윤상원;이우영;양충모;나경일;조현익;하종봉;서화일;이정희
    • 한국반도체및디스플레이장비학회:학술대회논문집
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    • 한국반도체및디스플레이장비학회 2007년도 춘계학술대회
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    • pp.193-198
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    • 2007
  • The NiSi is very promising candidate for the metallization in 60nm CMOS process such as FUSI(fully silicided) gate and source/drain contact because it exhibits non-size dependent resistance, low silicon consumption and mid-gap workfunction. Ni film was first deposited by using ALD (atomic layer deposition) technique with Bis-Ni precursor and $H_2$ reactant gas at $220^{\circ}C$ with deposition rate of $1.25{\AA}/cycle$. The as-deposited Ni film exhibited a sheet resistance of $5{\Omega}/{\square}$. RTP (repaid thermal process) was then performed by varying temperature from $400^{\circ}C$ to $900^{\circ}C$ in $N_2$ ambient for the formation of NiSi. The process window temperature for the formation of low-resistance NiSi was estimated from $600^{\circ}C$ to $800^{\circ}C$ and from $700^{\circ}C$ to $800^{\circ}C$ with and without Ti capping layer. The respective sheet resistance of the films was changed to $2.5{\Omega}/{\square}$ and $3{\Omega}/{\square}$ after silicidation. This is because Ti capping layer increases reaction between Ni and Si and suppresses the oxidation and impurity incorporation into Ni film during silicidation process. The NiSi films were treated by additional thermal stress in a resistively heated furnace for test of thermal stability, showing that the film heat-treated at $800^{\circ}C$ was more stable than that at $700^{\circ}C$ due to better crystallinity.

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동작속도가 빠른 Mo2N/Mo 게이트 MOS 집적회로 (High Speed Mo2N/Mogate MOS Integrated Circuit)

  • 김진섭;이우일
    • 대한전자공학회논문지
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    • 제22권4호
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    • pp.76-83
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    • 1985
  • RMOS(refractory metal oxide semiconductor)의 게이트와 집적회로의 각 소자나 회로를 연결하는 연결선으로 사용되는 Mo2N/Mo 이중층을 Ar과 N2의 혼합가스 분위기에서 저온의 고주파 반응성스펏터링으로 형성하였다. 1000Å-Mo2N/4000Å-Mo이중층의 면저항은 약 1.20∼1.28Ω/구로서 다결정실리콘의 약 1/10정도가 되었다. C-V측정으로부터 Mo2N/Mo이중층과 비저항이 6∼9Ω·㎝이고 결정면이 (100)인 P형 Si과의 일함수차 f%5는 약 -0.30ev 및 산화층에 존재하는 고정전하밀도 Qss/q는 약 2.1x1011/cm를 얻었다. 인버터 한개당의 신호전달 지연시간을 측정하기 위해 다결정실리콘게이트 NMOS 제조공정을 웅용하여 45개의 인버터로 구성된 ring oscillator를 제작하였다. 본 실험에서 얻을 수 있었던 인버터 한개에 대한 신호전달지연시간은 약 0.8nsec였다.

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Highly Manufacturable 65nm McFET (Multi-channel Field Effect Transistor) SRAM Cell with Extremely High Performance

  • Kim, Sung-Min;Yoon, Eun-Jung;Kim, Min-Sang;Li, Ming;Oh, Chang-Woo;Lee, Sung-Young;Yeo, Kyoung-Hwan;Kim, Sung-Hwan;Choe, Dong-Uk;Suk, Sung-Dae;Kim, Dong-Won;Park, Dong-Gun
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제6권1호
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    • pp.22-29
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    • 2006
  • We demonstrate highly manufacturable Multi-channel Field Effect Transistor (McFET) on bulk Si wafer. McFET shows excellent transistor characteristics, such as $5{\sim}6 times higher drive current than planar MOSFET, ideal subthreshold swing, low drain induced barrier lowering (DIBL) without pocket implantation and negligible body bias dependency, maintaining the same source/drain resistance as that of a planar transistor due to the unique feature of McFET. And suitable threshold voltage ($V_T$) for SRAM operation and high static noise margin (SNM) are achieved by using TiN metal gate electrode.

UV Photo Response Driven by Pd Nano Particles on LaAlO3/SrTiO3 Using Ambient Control Kelvin Probe Force Microscopy

  • Kim, Haeri;Chan, Ngai Yui;Dai, Jiyan;Kim, Dong-Wook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2014년도 제46회 동계 정기학술대회 초록집
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    • pp.207.1-207.1
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    • 2014
  • High-mobility and two dimensional conduction at the interface between two band insulators, LaAlO3 (LAO) and SrTiO3 (STO), have attracted considerable research interest for both applications and fundamental understanding. Several groups have reported the photoconductivity of LAO/STO, which give us lots of potential development of optoelectronic applications using the oxide interface. Recently, a giant photo response of Pd nano particles/LAO/STO is observed in UV illumination compared with LAO/STO sample. These phenomena have been suggested that the correlation between the interface and the surface states significantly affect local charge modification and resulting electrical transport. Water and gas adsorption/desorption can alter the band alignment and surface workfunction. Therefore, characterizing and manipulating the electric charges in these materials (electrons and ions) are crucial for investigating the physics of metal oxide. Proposed mechanism do not well explain the experimental data in various ambient and there has been no quantitative work to confirm these mechanism. Here, we have investigated UV photo response in various ambient by performing transport and Kelvin probe force microscopy measurements simultaneously. We found that Pd nano particles on LAO can form Schottky contact, it cause interface carrier density and characteristics of persistence photo conductance depending on gas environment. Our studies will help to improve our understanding on the intriguing physical properties providing an important role in many enhanced light sensing and gas sensing applications as a catalytic material in different kinds of metal oxide systems.

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저일함수 금속 아세트산 화합물 층을 사용한 유기발광다이오드의 전기발광 특성 향상 (Effects of Low Workfunction Metal Acetate Layers on the Electroluminescent Characteristics of Organic Light-Emitting Diodes)

  • 김만수;류근채;김영철
    • Korean Chemical Engineering Research
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    • 제51권5호
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    • pp.634-639
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    • 2013
  • 유기발광다이오드(Organic Light-Emitting Diodes, OLEDs)의 효율을 향상시키기 위하여 다양한 아세트산금속(Macetate, M: Li, Na, K, Cs)을 cathode underlayer 소재로 사용하고 이들이 소자의 전자주입 및 발광 특성에 미치는 영향에 대하여 연구하였다. 1 nm 두께의 M-acetate 층을 cathode underlayer로 사용한 경우 Cs-acetate를 사용한 소자를 제외한 모든 소자에서 기존의 LiF 전자주입층을 사용한 소자보다 효율적인 전자주입 및 향상된 발광특성을 보였으며, M-acetate에 포함된 금속의 일함수가 작을수록 높은 전류밀도와 우수한 발광특성을 보였다. 또한, cathode underlayer의 두께가 소자의 특성에 미치는 영향을 분석한 결과, 사용된 M-acetate의 분자크기에 따라 각기 다른 두께(Li-acetate 0.7 nm, Cs-acetate 2.0 nm)에서 최적의 발광특성을 보였으며 기존의 LiF 층을 사용한 소자에 비하여 동일 인가전압에서 전류효율이 약 60% 향상된 결과를 얻을 수 있었다.

Fabrication of Schottky Device Using Lead Sulfide Colloidal Quantum Dot

  • Kim, Jun-Kwan;Song, Jung-Hoon;An, Hye-Jin;Choi, Hye-Kyoung;Jeong, So-Hee
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.189-189
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    • 2012
  • Lead sulfide (PbS) nanocrystal quantum dots (NQDs) are promising materials for various optoelectronic devices, especially solar cells, because of their tunability of the optical band-gap controlled by adjusting the diameter of NQDs. PbS is a IV-VI semiconductor enabling infrared-absorption and it can be synthesized using solution process methods. A wide choice of the diameter of PbS NQDs is also a benefit to achieve the quantum confinement regime due to its large Bohr exciton radius (20 nm). To exploit these desirable properties, many research groups have intensively studied to apply for the photovoltaic devices. There are several essential requirements to fabricate the efficient NQDs-based solar cell. First of all, highly confined PbS QDs should be synthesized resulting in a narrow peak with a small full width-half maximum value at the first exciton transition observed in UV-Vis absorbance and photoluminescence spectra. In other words, the size-uniformity of NQDs ought to secure under 5%. Second, PbS NQDs should be assembled carefully in order to enhance the electronic coupling between adjacent NQDs by controlling the inter-QDs distance. Finally, appropriate structure for the photovoltaic device is the key issue to extract the photo-generated carriers from light-absorbing layer in solar cell. In this step, workfunction and Fermi energy difference could be precisely considered for Schottky and hetero junction device, respectively. In this presentation, we introduce the strategy to obtain high performance solar cell fabricated using PbS NQDs below the size of the Bohr radius. The PbS NQDs with various diameters were synthesized using methods established by Hines with a few modifications. PbS NQDs solids were assembled using layer-by-layer spin-coating method. Subsequent ligand-exchange was carried out using 1,2-ethanedithiol (EDT) to reduce inter-NQDs distance. Finally, Schottky junction solar cells were fabricated on ITO-coated glass and 150 nm-thick Al was deposited on the top of PbS NQDs solids as a top electrode using thermal evaporation technique. To evaluate the solar cell performance, current-voltage (I-V) measurement were performed under AM 1.5G solar spectrum at 1 sun intensity. As a result, we could achieve the power conversion efficiency of 3.33% at Schottky junction solar cell. This result indicates that high performance solar cell is successfully fabricated by optimizing the all steps as mentioned above in this work.

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어븀-실리사이드/p-형 실리콘 접합에서 쇼트키 장벽 높이 변화 (Change of Schottky barrier height in Er-silicide/p-silicon junction)

  • 이솔;전승호;고창훈;한문섭;장문규;이성재;박경완
    • 한국진공학회지
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    • 제16권3호
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    • pp.197-204
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    • 2007
  • p-형 실리콘 기판 위에 수 ${\AA}$ 두께의 어븀 금속을 증착하고, 후열처리 과정을 통하여 어븀-실리사이드/p-형 실리콘 접합을 형성하였다. 초고진공 자외선 광전자 분광 실험을 통하여 증착한 어븀의 두께에 따라 어븀-실리사이드의 일함수가 4.1 eV까지 급하게 감소하는 것을 관찰하였으며, X-ray 회절 실험에 의하여 형성된 어븀 실리사이드가 주로 $Er_5Si_3$상으로 구성되어 있음을 밝혔다. 또한, 어븀-실리사이드/p-형 실리콘 접합에 알루미늄 전극을 부착하여 쇼트키 다이오드를 제작하고, 전류전압 곡선을 측정하여 쇼트키 장벽의 높이를 산출하였다. 산출된 쇼트키 장벽의 높이는 $0.44{\sim}0.78eV$이었으며 어븀 두께 변화에 따른 상관 관계를 찾기 어려웠다. 그리고 이상적인 쇼트키 접합을 가정하고 이미 측정한 일함수로부터 산출한 쇼트키 장벽의 높이는 전류-전압 곡선으로부터 산출한 값에 크게 벗어났으며, 이는 어븀-실리사이드가 주로 $Er_5Si_3$ 상으로 구성되어 있고, $Er_5Si_3/p-$형 실리콘 계면에 존재하는 고밀도의 계면 상태에 기인한 것으로 사료된다.