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首页> 外文期刊>Nanotechnology >Highly luminescent silica-coated CdS/CdSe/CdS nanoparticles with strong chemical robustness and excellent thermal stability
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Highly luminescent silica-coated CdS/CdSe/CdS nanoparticles with strong chemical robustness and excellent thermal stability

机译:高发光二氧化硅涂层Cds / Cdse / Cds纳米颗粒,具有强化学鲁棒性和优异的热稳定性

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摘要

We present facile synthesis of bright CdS/CdSe/CdS@SiO2 nanoparticles with 72% of quantum yields (QYs) retaining ca 80% of the original QYs. The main innovative point is the utilization of the highly luminescent CdS/CdSe/CdS seed/spherical quantum well/shell (SQW) as silica coating seeds. The significance of inorganic semiconductor shell passivation and structure design of quantum dots (QDs) for obtaining bright QD@SiO2 is demonstrated by applying silica encapsulation via reverse microemulsion method to three kinds of QDs with different structure: CdSe core and 2 nm CdS shell (CdSe/CdS-thin); CdSe core and 6 nm CdS shell (CdSe/CdS-thick); and CdS core, CdSe intermediate shell and 5 nm CdS outer shell (CdS/CdSe/CdS-SQW). Silica encapsulation inevitably results in lower photoluminescence quantum yield (PL QY) than pristine QDs due to formation of surface defects. However, the retaining ratio of pristine QY is different in the three silica coated samples; for example, CdSe/CdS-thin/SiO2 shows the lowest retaining ratio (36%) while the retaining ratio of pristine PL QY in CdSe/CdS-thick/ SiO2 and SQW/SiO2 is over 80% and SQW/SiO2 shows the highest resulting PL QY. Thick outermost CdS shell isolates the excitons from the defects at surface, making PL QY relatively insensitive to silica encapsulation. The bright SiO2-coated SQW sample shows robustness against harsh conditions, such as acid etching and thermal annealing. The high luminescence and long-term stability highlights the potential of using the SQW/SiO2 nanoparticles in bio-labeling or display applications.
机译:我们呈现强亮Cds / Cdse / Cds / Cds / Cds / Cds / Cds / Cds / Cds / Cds / Cds / Cds / Cds,具有72%的量子产率(qys)保留了原始qys的80%。主要的创新点是利用高发光CDS / CDSE / CDS种子/球形量子孔/壳(SQW)作为二氧化硅涂层种子。通过将二氧化硅封装通过反向微乳液法应用于具有不同结构的三种QDS的三种QDS来证明无机半导体壳(QDS)的无机半导体壳(QDS)的意义和量子点(QDS)的显着性。Cdse核心和2nm CDS壳(CDSE / CDS-薄); CDSE核心和6个NM CDS壳(CDSE / CDS厚);和CDS核心,CDSE中间壳和5nm CDS外壳(CDS / CDSE / CDS-SQW)。由于形成表面缺陷,二氧化硅封装不可避免地导致比原始QD更低的光致发光量子产率(PLQy)。然而,三氧化硅涂覆样品中原始QY的保持比率不同;例如,CDSE / CDS-薄/ SiO 2显示最低保持比(36%),而CDSE / CDS-厚/ SiO2和SQW / SiO2中原始PLQy的保持比率超过80%,SQW / SiO2显示最高结果pl qy。厚的最外层CDS壳将激子与表面的缺陷分离,使PL Qy对二氧化硅封装相对不敏感。明亮的SiO2涂层的SQW样品显示出防止恶劣条件的鲁棒性,例如酸蚀刻和热退火。高发光和长期稳定性突出了在生物标记或显示应用中使用SQW / SiO2纳米颗粒的电位。

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  • 来源
    《Nanotechnology》 |2017年第18期|共8页
  • 作者单位

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Samsung Display Co Ltd LCD R&

    D Ctr Gyeonggi Do South Korea;

    Samsung Display Co Ltd LCD R&

    D Ctr Gyeonggi Do South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

    Samsung Display Co Ltd LCD R&

    D Ctr Gyeonggi Do South Korea;

    Yonsei Univ Dept Chem &

    Biomol Engn Seoul South Korea;

    KIST Photoelect Hybrids Res Ctr Seoul South Korea;

    Korea Adv Inst Sci &

    Technol KAIST Inst Nanocentury Program BK21 Dept Chem &

    Bimol Engn Daejeon South Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    quantum dots; silica coating; reverse microemulsion; stability; core/shell;

    机译:量子点;二氧化硅涂层;反向微乳液;稳定性;核心/壳;

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