首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Synthesis and Evaluation of Ideal Core/Shell Quantum Dots with Precisely Controlled Shell Growth: Nonblinking, Single Photoluminescence Decay Channel, and Suppressed FRET
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Synthesis and Evaluation of Ideal Core/Shell Quantum Dots with Precisely Controlled Shell Growth: Nonblinking, Single Photoluminescence Decay Channel, and Suppressed FRET

机译:具有精确控制的壳生长的理想芯/壳量子点的合成与评价:非掩蔽,单光致发光衰减通道和抑制褶皱

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摘要

Due to the unique optical properties, colloidal quantum dots (QDs) are excellent candidates for developing next-generation display and solid-state lighting technologies. However, some factors including photoluminescence blinking and Forster resonance energy transfer (FRET) still affect their practical applications. Herein, a series of ZnCdSe-based core/shell QDs with low optical polydispersity have been successfully synthesized by a "low-temperature injection and high-temperature growth" precisely controlled method. The alloyed ZnCdSe core with a certain ratio of Cd and Zn was presynthesized first. Followed by accurate ZnS shell growth, the as-synthesized core/shell QDs are nonblinking with the nonblinking threshold volume of similar to 137 nm(3). The PL decay dynamics are all single-exponential for both QDs in solutions and close-packed solid films when ZnS shell thickness varying from 2 to 20 monolayers. FRET can be effectively suppressed after growing 10 monolayers of ZnS shell. All of these superb characteristics including nonblinking, single-exponential PL decay dynamics and suppressed FRET can be beneficial to high-quality QD-based light-emitting devices (QLEDs). By applying the ZnCdSe-based core/shell QDs with 10 monolayers ZnS shell, the highest external quantum efficiency of similar to 17% was reached, which could compare favorably with the highest efficiency of green QLEDs with traditional multilayered structures.
机译:由于光学性质独特,胶体量子点(QDS)是用于开发下一代显示器和固态照明技术的优异候选者。然而,一些因素包括光致发光闪烁和福特谐振能量转移(FRET)仍然影响其实际应用。这里,通过“低温注入和高温生长”精确控制的方法成功地合成了一系列具有低光学多分散性的ZnCdse的核/壳QD。首先将具有一定比例与Cd和Zn的合金ZnCdse核心。其次是精确的ZnS壳生长,使用与137nm(3)类似的非掩蔽阈值体积是非掩蔽的非掩蔽核心/壳QD。当ZnS壳厚度从2到20单层变化时,PL衰减动态都是QDS和闭合固体膜中的QDS的单指数。在生长10个ZnS壳体后,可以有效地抑制褶皱。所有这些极好的特性包括非掩蔽,单指数PL衰减动态和抑制的褶皱可以有利于高质量的基于QD的发光装置(QLED)。通过用10个单层ZnS外壳应用ZnCDSE的核心/壳QDS,达到了类似于17%的最高外部量子效率,这可以与传统的多层结构的绿色Q型最高效率相比。

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    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Sch Phys &

    Elect Inst Photobiophys Kaifeng 475004 Peoples R China;

    Henan Univ Sch Phys &

    Elect Inst Photobiophys Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

    Henan Univ Key Lab Special Funct Mat Minist Educ Kaifeng 475004 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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