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Improved performance of quantum dot light emitting diode by modulating electron injection with yttrium-doped ZnO nanoparticles

机译:通过调制掺钇的ZnO纳米粒子的电子注入来改善量子点发光二极管的性能

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摘要

In a typical light emitting diode (QD-LED), with ZnO nanoparticles (NPs) serving as the electron transport layer (ETL) material, excessive electron injection driven by the matching conduction band maximum (CBM) between the QD and this oxide layer usually causes charge imbalance and degrades the device performance. To address this issue, the electronic structure of ZnO NPs is modified by the yttrium (Y) doping method. We demonstrate that the CBM of ZnO NPs has a strong dependence on the Y-doping concentration, which can be tuned from 3.55 to 2.77 eV as the Y doping content increases from 0% to 9.6%. This CBM variation generates an enlarged barrier between the cathode and this ZnO ETL benefits from the modulation of electron injection. By optimizing electron injection with the use of a low Y-doped (2%) ZnO to achieve charge balance in the QD-LED, device performance is significantly improved with maximum luminance, peak current efficiency, and maximal external quantum efficiency increase from 4918 cd/m~2, 11.3 cd/A, and 4.5% to 11,171 cd/m~2, 18.3 cd/A, and 7.3%, respectively. This facile strategy based on the ETL modification enriches the methodology of promoting QD-LED performance.
机译:在典型的发光二极管(QD-LED)中,以ZnO纳米颗粒(NPs)作为电子传输层(ETL)材料,通常由QD和该氧化物层之间的匹配导带最大值(CBM)驱动过多的电子注入。导致电荷不平衡并降低设备性能。为了解决这个问题,ZnO NPs的电子结构通过钇(Y)掺杂方法进行了修改。我们证明,ZnO NPs的CBM对Y掺杂浓度有很强的依赖性,随着Y掺杂含量从0%增加到9.6%,其浓度可以从3.55调整到2.77 eV。这种CBM变化会在阴极之间产生更大的势垒,而ZnO ETL则受益于电子注入的调制。通过使用低Y掺杂(2%)ZnO来优化电子注入以实现QD-LED中的电荷平衡,器件性能得到了显着改善,最大亮度,峰值电流效率和最大外部量子效率从4918 cd增大/m~2、11.3 cd / A和4.5%,分别为11,171 cd / m〜2、18.3 cd / A和7.3%。这种基于ETL修改的简便策略丰富了提高QD-LED性能的方法。

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  • 来源
    《Journal of Applied Physics 》 |2017年第13期| 135501.1-135501.9| 共9页
  • 作者单位

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China,University of Chinese Academy of Sciences, Beijing, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China,University of Chinese Academy of Sciences, Beijing, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China,School of Chemical Engineering and Light Industry, Guangdong University of Technology, Guangzhou, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China;

    Dongguan University of Technology, Dongguan, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China,University of Chinese Academy of Sciences, Beijing, China;

    CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou, China,Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou, China,University of Chinese Academy of Sciences, Beijing, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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