• Title/Summary/Keyword: ZnSe/ZnS quantum dot

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Synthesis of CdSe Multi-shell Structured Nanocrystal Quantum Dot through the Continuous Flow Reactor

  • Kim, Kyung-Nam;No, Jae-Hong;Jeong, So-Hee
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.417-417
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    • 2012
  • For desired optical properties of QDs, it is very important to reduce the presence of defects on their surfaces. Passivation of surface defects using larger band gap materials is the most effective way. Some groups successfully synthesized Cd based multi-shell structured quantum dots and improved its optical properties. However, its productivity has limit because of the amounts of glass ware and space. In this research, we try to synthesize Cd based multi-shell structured nanocrystal quantum dots to overcome demerits of conventional batch synthetic method. This reactor composed pump, SUS reaction part (3.2 mm stainless steel and furnace) and batch mixer. We successively synthesized CdSe/CdS/ZnS quantum dot at this reactor in one step.

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CdSe Quantum Dot based Transparent Light-emitting Device using Silver Nanowire/Ga-doped ZnO Composite Electrode (AgNWs/Ga-doped ZnO 복합전극 적용 CdSe양자점 기반 투명발광소자)

  • Park, Jehong;Kim, Hyojun;Kang, Hyeonwoo;Kim, Jongsu;Jeong, Yongseok
    • Journal of the Semiconductor & Display Technology
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    • v.19 no.4
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    • pp.6-10
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    • 2020
  • The silver nanowires (AgNWs) were synthesized by the conventional polyol process, which revealed 25 ㎛ and 30 nm of average length and diameter, respectively. The synthesized AgNWs were applied to the CdSe/CdZnS quantum dot (QD) based transparent light-emitting device (LED). The device using a randomly networked AgNWs electrode had some problems such as the high threshold voltage (for operating the device) due to the random pores from the networked AgNWs. As a method of improvement, a composite electrode was formed by overlaying the ZnO:Ga on the AgNWs network. The device used the composite electrode revealed a low threshold voltage (4.4 Vth) and high current density compared to the AgNWs only electrode device. The brightness and current density of the device using composite electrode were 55.57 cd/㎡ and 41.54 mA/㎠ at the operating voltage of 12.8 V, respectively, while the brightness and current density of the device using (single) AgNWs only were 1.71 cd/㎡ and 2.05 mA/㎠ at the same operating voltage. The transmittance of the device revealed 65 % in a range of visible light. Besides the reliability of the devices was confirmed that the device using the composite electrode revealed 2 times longer lifetime than that of the AgNWs only electrode device.

Optical Characteristics of CdSe/ZnS Quantum Dot with Precursor Flow Rate Synthesized by using Microreactor (마이크로리액터를 이용한 전구체 유속에 따른 CdSe/ZnS 양자점의 광학특성)

  • Park, Ji Young;Jeong, Da-Woon;Ju, Won;Seo, Han Wook;Cho, Yong-Ho;Kim, Bum Sung
    • Journal of Powder Materials
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    • v.23 no.2
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    • pp.91-94
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    • 2016
  • High-quality colloidal CdSe/ZnS (core/shell) is synthesized using a continuous microreactor. The particle size of the synthesized quantum dots (QDs) is a function of the precursor flow rate; as the precursor flow rate increases, the size of the QDs decreases and the band gap energy increases. The photoluminescence properties are found to depend strongly on the flow rate of the CdSe precursor owing to the change in the core size. In addition, a gradual shift in the maximum luminescent wave (${\lambda}_{max}$) to shorter wavelengths (blue shift) is found owing to the decrease in the QD size in accordance with the quantum confinement effect. The ZnS shell decreases the surface defect concentration of CdSe. It also lowers the thermal energy dissipation by increasing the concentration of recombination. Thus, a relatively high emission and quantum yield occur because of an increase in the optical energy emitted at equal concentration. In addition, the maximum quantum yield is derived for process conditions of 0.35 ml/min and is related to the optimum thickness of the shell material.

Dynamics and Bleaching of Ground State in CdSe/ZnS Quantum Dots

  • Kim, J.H.;Kyhm, K.
    • Journal of the Optical Society of Korea
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    • v.10 no.4
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    • pp.184-187
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    • 2006
  • For resonant excitation of the ground state $1s^e-1S^h_{3/2}$, dynamics of 'the electron-hole pair in a CdSe quantum dot was investigated by degenerate pump-probe measurement. At low e-h pair densities, the decay of $1s^e-1S^h_{3/2}$ state is dominated by radiative recombination. As the number of the electron-hole pairs increases, new decay features become significant. Theoretical comparison suggests this is attributed to the bi-molecular and Auger-type scattering.

The Effects of Oxygen Plasma and Cross-link Process on Quantum-dot Light Emitting Diodes

  • Cho, Nam-Kwang;Kang, Seong Jun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.215-215
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    • 2014
  • Red color light emitting diodes (LEDs) were fabricated using CdSe/CdZnS quantum dots (QDs). During the device fabrication process, oxygen plasma treatment on the ITO surface was performed to improve the interfacial contact between ITO anode and the hole injection layer. CdSe/CdZnS quantum dots were cross-linked to remove their surrounded organic surfactants. The device shows red emission at 622 nm, which is consistent with the dimension of the QDs (band gap=1.99 eV). The luminance shows 6026% improvement compared with that of LEDs fabricated without oxygen plasma treatment and quantum dots cross-linking process. This approach would be useful for the fabrication of high-performance QLEDs with ITO electrode and PEDOT:PSS hole injection layers.

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Luminescent Polynorbornene/Quantum Dot Composite Nanorods and Nanotubes Prepared from AAO Membrane Templates

  • Oh, Se-Won;Cho, Young-Hyun;Char, Kook-Heon
    • Macromolecular Research
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    • v.17 no.12
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    • pp.995-1002
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    • 2009
  • Luminescent polynorbornene (PNB)/quantum dot (CdSe@ZnS; QD) composite nanorods and nanotubes were successfully prepared using anodic aluminum oxide (AAO) membranes of various pore sizes as templates. To protect QDs with high quantum yield from quenching during the phosphoric acid treatment used to remove the AAO templates, chemically stable and optically clear norbornene-maleic anhydride copolymers (P(NB-r-MA)) were employed as a capping agent for QDs. The amine-terminated QDs reacted with maleic anhydride moieties in P(NB-r-MA) to form PNB-grafted QDs. The chemical- and photo-stability of QDs encapsulated with PNB copolymers were investigated by photoluminescence (PL) spectroscopy. By varying the pore size of the AAO templates from 40 to 380 urn, PNB/QD composite nanorods or nanotubes were obtained with a good dispersion of QDs in the PNB matrix.

Enzyme-Conjugated CdSe/ZnS Quantum Dot Biosensors for Glucose Detection

  • Kim, Gang-Il;Sung, Yun-Mo
    • Korean Journal of Materials Research
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    • v.19 no.1
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    • pp.44-49
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    • 2009
  • Conjugated nanocrystals using CdSe/ZnS core/shell nanocrystal quantum dots modified by organic linkers and glucose oxidase (GOx) were prepared for use as biosensors. The trioctylphophine oxide (TOPO)-capped QDs were first modified to give them water-solubility by terminal carboxyl groups that were bonded to the amino groups of GOx through an EDC/NHS coupling reaction. As the glucose concentration increased, the photoluminescence intensity was enhanced linearly due to the electron transfer during the enzymatic reaction. The UV-visible spectra of the as-prepared QDs are identical to that of QDs-MAA. This shows that these QDs do not become agglomerated during ligand exchanges. A photoluminescence (PL) spectroscopic study showed that the PL intensity of the QDs-GOx bioconjugates was increased in the presence of glucose. These glucose sensors showed linearity up to approximately 15 mM and became gradually saturated above 15 mM because the excess glucose did not affect the enzymatic oxidation reaction past that amount. These biosensors show highly sensitive variation in terms of their photoluminescence depending on the glucose concentration.

Development of the Quantum Dot/ZnO Nanowire Heterostructure and Their Photoelectrochemical Application

  • Hwang, In-Seong;Seol, Min-Su;Kim, Hui-Jin;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.378-378
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    • 2011
  • ZnO 나노선 구조는 나노선 구조를 통해 입사한 빛을 산란시켜 광흡수를 촉진시키고, 바닥 전극으로 바로 이어진 수직의 1차원 구조를 통해 전자가 빠르게 이동할 수 있으며, 넓은 표면적을 가지고 있는 등의 장점을 가지고 있어 오래전부터 광전소자에 이용되었다. 하지만 ZnO 물질 자체의 밴드갭 에너지가 3.2 eV로 비교적 큰 편이라 가시광 영역의 빛을 흡수, 이용하기 위해서는 작은 밴드갭을 가지는 광감응 물질이 필요하다. 본 연구에서는 저온의 수열합성법을 통해 합성한 ZnO 나노선 구조 상에 Cd 계열의 무기물 양자점을 증착하여 이종구조를 형성하는 방법을 개발하였다. 본 연구에서 사용한 양자점인 CdS와 CdSe는 벌크 밴드갭 에너지가 각각 2.3 eV, 1.7 eV로 가시광 영역의 빛을 흡수할 수 있으며, ZnO 나노선과 type-II 밴드구조를 가지기 때문에 전자-정공 분리 및 포집에 유리하다. 합성된 구조를 이용하여 photoelectrochemical 특성을 분석하였으며, 그 결과 양자점의 증착으로 광전류 생성이 향상됨을 확인하였다. 특히 ZnO 나노선 상에 CdS 양자점 증착 후 추가적으로 CdSe 양자점을 증착하여 다중접합 나노선 구조를 형성한 경우 광전류 생성이 가장 크게 향상된 결과를 확인하였다.

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Improvement of Short-Circuit Current of Quantum Dot Sensitive Solar Cell Through Various Size of Quantum Dots (양자점 입도제어를 통한 양자점 감응형 태양전지 단락전류 향상)

  • Ji, Seung Hwan;Yun, Hye Won;Lee, Jin Ho;Kim, Bum-Sung;Kim, Woo-Byoung
    • Korean Journal of Materials Research
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    • v.31 no.1
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    • pp.16-22
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    • 2021
  • In this study, quantum dot-sensitized solar cells (QDSSC) using CdSe/ZnS quantum dots (QD) of various sizes with green, yellow, and red colors are developed. Quantum dots, depending their different sizes, have advantages of absorbing light of various wavelengths. This absorption of light of various wavelengths increases the photocurrent production of solar cells. The absorption and emission peaks and excellent photochemical properties of the synthesized quantum dots are confirmed through UV-visible and photoluminescence (PL) analysis. In TEM analysis, the average sizes of individual green, yellow, and red quantum dots are shown to be 5 nm, 6 nm, and 8 nm. The J-V curves of QDSSC for one type of QD show a current density of 1.7 mA/㎠ and an open-circuit voltage of 0.49 V, while QDSSC using three type of QDs shows improved electrical characteristics of 5.52 mA/㎠ and 0.52 V. As a result, the photoelectric conversion efficiency of QDSSC using one type of QD is as low as 0.53 %, but QDSSC using three type of QDs has a measured efficiency of 1.4 %.

Development of the 3 Dimensional ZnO Nanostructures for the Highly Efficient Quantum Dot Sensitized Solar Cells

  • Kim, Hui-Jin;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.672-672
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    • 2013
  • 본 연구에서는 수열합성법을 기반으로 한 3차원 ZnO 나노구조의 합성을 통해 효율적인 양자점 감응형 태양전지로의 응용을 하고 그 특성을 평가하였다. 기존의 1차원 ZnO 나노구조의 경우 높은 전자이동도와 구조적으로 얻을 수 있는 방향성 있는 전자의 효율적인 전달을 통해 효과적인 광전극으로 많은 관심을 받아왔다. 하지만 나노파티클 기반의 필름에 비해 표면적이 크게 떨어지기 때문에 효과적인 흡광이 어렵다는 단점이 존재하여 높은 효율특성을 내지는 못하였다. 본 연구에서는 이러한 단점을 극복하면서 기존 ZnO 나노선의 장점을 극대화 하기 위해 성장시킨 ZnO 나노선 위에 추가적으로 가지를 형성하여 표면적 향상과 효과적인 전자전달 특성을 얻고자 하였다. 3차원 ZnO 나노구조는citrate 계열의 capping agent의 첨가를 통한 수열 합성법을 통해 1차원의 ZnO 나노선 위에 nanosheet 형식의 가지를 형성하였고 이는 빛의 효과적인 산란특성 및 표면적 향상을 통한 CdS, CdSe의 양자점 증착량을 증가시키는 효과를 얻을 수 있었다. 이러한 태양전지의 소자 특성은 SEM, TEM을 통한 구조 특성평가 및 DRS, J-V curve 및 IPCE를 통한 광학적 특성평가를 통해 확인하였다.

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