• 제목/요약/키워드: CdSe/ZnS nanoparticles

검색결과 9건 처리시간 0.026초

이온성 액체에 의한 CdSe/ZnS 나노입자의 상과 크기제어 합성 (Phase-and Size-Controlled Synthesis of CdSe/ZnS Nanoparticles Using Ionic Liquid)

  • 송윤미;장동명;박기영;박정희;차은희
    • 전기화학회지
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    • 제14권1호
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    • pp.1-8
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    • 2011
  • 이온성 액체는 일정한 온도 범위에서 액체로 존재하는 이온성 염으로, 유기 양이온과 유기 또는 무기 음이온의 이온결합으로 이루어져 있다. 본 연구에서는 이온성 액체를 CdSe/ZnS 반도체 나노입자 합성의 리간드 및 용매로 사용하여 이들이 나노입자의 형태와 결정 구조에 미치는 영향에 대해서 연구하였다. CdSe/ZnS 나노입자는 용매로 알킬기의 길이가 다른 imidazolium 계열; 1-R-3-methylimidazolium bis(trifluoromethylsulfonyl)imide ([RMIM][TFSI]), R = ethyl ([EMIM]), butyl ([BMIM]), hexyl ([HMIM]), octyl ([OMIM]), 을 사용하여, 평균 크기는 약 8~9 nm 이고 두 상 zinc-blende 및 wurtzite 혼합물로 합성하는 것을 성공하였다. 또한, CdSe/ZnS 나노입자는 trihexyltetradecylphosphonium bis(trifluoromethylsulfonyl)imide ([$P_{6,6,6,14}$][TFSI]) 이온성 액체와 octadecene (ODE)의 혼합 용액을 사용하여 합성하였다. [$P_{6,6,6,14}$][TFSI]의 부피비가 증가함에 따라 나노입자의 결정 구조가 zinc-blende 구조에서 wurtzite 구조로 조절되었다. 또한 나노입자의 평균 크기는 약 5.5 nm 로써 [RMIM][TFSI] 를 사용했을 때 보다 더 작게 합성되었다. 이처럼 이온성 액체에 의해서 나노입자의 크기뿐 만 아니라 결정 구조도 조절할 수 있음을 처음으로 증명하였다.

Highly Luminescent Multi-shell Structured InP Quantum Dot for White LEDs Application

  • 김경남;정소희
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.531-531
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    • 2012
  • So many groups have been researching the green quantum dots such as InP, InP/ZnS for overcoming the semiconductor nanoparticles composed with heavy metals like as Cd and Pb so on. In spite of much effort to keep up CdSe quantum dots, it does not reach the good properties compared with CdSe/ZnS quantum dots. This quantum dot has improved its properties through the generation of core/shell CdSe/ZnS structure or core/multi-shell structures like as CdSe/CdS/ZnS and CdSe/CdS/ CdZnS/ZnS. In this research, we try to synthesize the InP multi-shell structure by the successiveion layer absorption reaction (SILAR) in the one pot. The synthesized multi-shell structure has improved quantum yield and photo-stability. To generate white light, highly luminescent InP multi-shell quantum dots were mixed with yellow phosphor and integrated on the blue LED chip. This InP multi-shell improved red region of the LEDs and generated high CRI.

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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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저가의 cryogenic milling 비진공법을 이용한 나노입자 CuInSe2 광흡수층 제조 (Preparation of nanoparticles CuInSe2 absorber layer by a non-vacuum process of low cost cryogenic milling)

  • 김기현;박병옥
    • 한국결정성장학회지
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    • 제23권2호
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    • pp.108-113
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    • 2013
  • $CuInSe_2$(CIS) chalcopyrite 물질은 고효율 박막 태양전지를 위한 광흡수층의 물질로 매우 잘 알려져 있다. 최근 태양광 산업의 흐름은 안정적인 재료 개발과 가격 경쟁력 있는 태양전지를 위한 효율적인 제조 공정을 일치시키는 것이다. 저가의 CIS 광흡수층 위해 다양한 방법으로 제조를 시도하였고, 본 논문에서는 CIS 광흡수층을 저가형으로 제조를 위해 상용화되는 6 mm pieces를 사용하여 high frequency ball milling과 cryogenic milling을 이용해 CIS 나노입자를 얻었다. 그리고, CIS 광흡수층은 불활성 분위기의 glove box 안에서 milling된 나노입자를 사용하여 paste coating법으로 제조하였다. Chalcopyrite CIS 박막은 기판온도 550도에서 30분간 셀렌화 한 후 성공적으로 제조되었으며, Al/ZnO/CdS/CIS/Mo 구조의 CIS 태양전지는 evaporation, sputtering 및 chemical bath deposition(CBD) 등 다양한 증착 방법으로 각각 제조하였다. 결론적으로, 나노입자를 이용한 CIS 태양전지 전기적 변환효율은 1.74 %를 얻었으며, 개방전압(Voc)는 29 mV, 합선전류밀도(Jsc)는 35 $mA/cm^2$, 그리고 충진율(FF)은 17.2 %였다. 나노입자 CIS 광흡수층은 energy dispersive spectroscopy(EDS), x-ray diffraction(XRD) 그리고 high-resolution scanning electron microscopy(HRSEM) 등으로 특성 분석을 하였다.

다중벽 탄소나노튜브와 다양한 나노입자 복합체의 In-situ 합성법개발 및 구조제어연구 (Study about the In-situ Synthesis and Structure Control of Multi-walled Carbon Nanotubes and their Nanocomposites)

  • 박호석
    • Korean Chemical Engineering Research
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    • 제50권4호
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    • pp.729-732
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    • 2012
  • 본 논문에서 이온성액체를 이용한 초음파화학을 통해서 칼코젠 나노입자를 in-situ로 합성하여서 다중벽 탄소나노튜브(MWCNT) 위에 도포하였다. 1-Butyl-3-methylimidazolium tetrafluoroborate ($BMimBF_4$) 이온성액체를 이용해서 MWCNT의 표면을 기능화하였다. 합성된 MWCNT/$BMimBF_4$/CdTe, MWCNT/$BMimBF_4$/ZnTe, MWCNT/$BMimBF_4$/ZnSe 나노복합체를 TEM과 EDS를 이용해서 분석하였다. 특히, MWCNT/$BMimBF_4$/CdTe, MWCNT/$BMimBF_4$/ZnTe, and MWCNT/$BMimBF_4$/ZnSe 나노복합체는 각각 요철과 같거나, 거칠거나 부드러운 코어-쉘 형태와 같은 특이한 구조를 보여주었다. 본 연구는 반응속도가 다른 전구체로부터 얻어진 이성분 반도체 나노입자를 합성과 동시에 탄소나노튜브에 도포할 수 있는 새로운 합성법을 제시한다.

비진공 나노입자 코팅법을 이용한 CIGS 박막 태양전지 제조 (Fabrication of CIGS Thin Film Solar Cell by Non-Vacuum Nanoparticle Deposition Technique)

  • 안세진;김기현;윤경훈
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2006년도 춘계학술대회
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    • pp.222-224
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    • 2006
  • A non-vacuum process for $Cu(In,Ga)Se_2$ (CIGS) thin film solar cells from nanoparticle precursors was described in this work CIGS nanoparticle precursors was prepared by a low temperature colloidal route by reacting the starting materials $(CuI,\;InI_3,\;GaI_3\;and\;Na_2Se)$ in organic solvents, by which fine CIGS nanoparticles of about 20nm in diameter were obtained. The nanoparticle precursors were mixed with organic binder material for the rheology of the mixture to be adjusted for the doctor blade method. After depositing the mixture of CIGS with binder on Mo/glass substrate, the samples were preheated on the hot plate in air to evaporate remaining solvents ud to burn the organic binder material. Subsequently, the resultant (porous) CIGS/Mo/glass simple was selenized in a two-zone Rapid Thermal Process (RTP) furnace in order to get a solar ceil applicable dense CIGS absorber layer. Complete solar cell structure was obtained by depositing. The other layers including CdS buffer layer, ZnO window layer and Al electrodes by conventional methods. The resultant solar cell showed a conversion efficiency of 0.5%.

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Highly Stable Photoluminescent Qunatum Dot Multilayers by Layer-by-Layer Assembly via Nucleophilic Substitution Reaction in Organic Media

  • 윤미선;김영훈;정상혁;백현희;조진한
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2011년도 춘계학술발표대회
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    • pp.244.2-244.2
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    • 2011
  • We introduce a novel and robust method for the preparation of nanocomposite multilayers, which allows the excellent photoluminescent (PL) properties as well as the accurate control over the composition and dimensions of multilayers. By exchanging the oleic acid stabilizers of CdSe@ZnS quantum dots (QDs) synthesized in organic solvent with 2-bromo-2-methylpropionic acid (BMPA) in the same solvent, these nanoparticles were be alternately deposited by nucleophilic substitution reaction with highly branched poly(amidoamine) dendrimer (PAMA) through layer-by-layer (LbL) assembly process. Our approach does not need to be transformed into the water-dispersible nanoparticles with electrostatic or hydrogen-bonding groups, which can deteriorate their inherent properties, for the built-up of multilayers. The nanocomposite multilayers including QDs exhibited the strong PL properties achieving densely packed surface coverage as well as long-term PL stability under atmospheric conditions in comparison with those of conventional LbL multilayers based on electrostatic interaction. Furthermore, we demonstrate that the flexible multilayer films with optical properties can be easily prepared using nucleophilic substitution reaction between bromo and amino groups in organic media. This robust and tailored method opens a new route for the design of functional film devices based on nanocomposite multilayers.

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Plasmonic Nanosheet towards Biosensing Applications

  • Tamada, Kaoru
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제44회 동계 정기학술대회 초록집
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    • pp.105-106
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    • 2013
  • Surface plasmon resonance (SPR) is classified into the propagating surface plasmon (PSP) excited on flat metal surfaces and the local surface plasmon (LSP) excited by metalnanoparticles. It is known that fluorescence signals are enhanced by these two SPR-fields.On the other hand, fluorescence is quenched by the energy transfer to metal (FRET). Bothphenomena are controlled by the distance between dyes and metals, and the degree offluorescence enhancement is determined by the correlation. In this study, we determined thecondition to achieve the maximum fluorescence enhancement by adjusting the distance of ametal nanoparticle 2D sheet and a quantum dots 2D sheet by the use of $SiO_2$ spacer layers. The 2D sheets consisting of myristate-capped Ag nanoparticles (AgMy nanosheets) wereprepared at the air-water interface and transferred onto hydrophobized gold thin films basedon the Langmuir-Schaefer (LS) method [1]. The $SiO_2$ sputtered films with different thickness (0~100 nm) were deposited on the AgMy nanosheet as an insulator. TOPO-cappedCdSe/CdZnS/ZnS quantum dots (QDs, ${\lambda}Ex=638nm$) [2] were also transferred onto the $SiO_2$ films by the LS method. The layered structure is schematically shown in Fig. 1. The result of fluorescence measurement is shown in Fig. 2. Without the $SiO_2$ layer, the fluorescence intensity of the layered QD film was lower than that of the original QDs layer, i.e., the quenching by FRET was predominant. When the $SiO_2$ thickness was increased, the fluorescence intensity of the layered QD film was higher than that of the original QDs layer, i.e., the SPR enhancement was predominant. The fluorescence intensity was maximal at the $SiO_2$ thickness of 20 nm, particularly when the LSPR absorption wavelength (${\lambda}=480nm$) was utilized for the excitation. This plasmonic nanosheet can be integrated intogreen or bio-devices as the creation point ofenhanced LSPR field.

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