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通过 FABr 修饰的多阳离子热注入法将铷阳离子掺入蓝色钙钛矿量子点发光二极管中。

Incorporation of rubidium cations into blue perovskite quantum dot light-emitting diodes via FABr-modified multi-cation hot-injection method.

机构信息

State Key Laboratory of Luminescent Materials and Devices and Institute of Polymer Optoelectronic Materials and Devices, South China University of Technology, Guangzhou 510640, China.

出版信息

Nanoscale. 2019 Jan 17;11(3):1295-1303. doi: 10.1039/c8nr07907b.

Abstract

Solution-processed lead halide perovskite quantum dots (QDs) are emerging as one of the most promising candidates for emissive display application. Although perovskite QDs with a full spectrum of visible light emissions have been realized for years, realizing the efficient electroluminescence of blue perovskites at room temperature still faces severe challenges. Herein, we demonstrate both the efficient photoluminescence and electroluminescence of the blue perovskite QDs via a simple FABr-modified multi-cation hot-injection (FMMHI) method. The FMMHI method is unique in both the addition of FABr into the PbBr2 precursor solution and the incorporation of small rubidium (Rb+) into the blue perovskite QDs light-emitting diodes (QLEDs). The addition of FABr into the precursor solution can realize strong quantum confinement effect, large exciton binding energy and high-quality perovskite QD films. Besides, the bandgap can be enlarged by the Rb+-induced perovskite octahedral distortion and strong quantum confinement effect. Excellent PLQYs of 64.5% and 49.8% were achieved for the developed greenish-blue QDs (Rb0.33Cs0.67)0.42FA0.58PbBr3 and deep-blue QDs (Rb0.33Cs0.67)0.42FA0.58PbCl1.25Br1.75 in solid film state. Moreover, maximum external quantum efficiencies (EQEs) of 3.6% and 0.61% were also achieved with an electroluminescence peak wavelength at 502 and 466 nm, respectively, indicating that the perovskite QDs incorporated with Rb+ possess great potential for the development of high-performance blue perovskite electroluminescence diodes.

摘要

溶液处理的卤化铅钙钛矿量子点(QDs)作为发射显示应用中最有前途的候选者之一而出现。尽管多年来已经实现了具有全可见光谱发射的钙钛矿 QD,但在室温下实现高效的蓝色钙钛矿电致发光仍然面临严峻挑战。在此,我们通过简单的 FABr 修饰的多阳离子热注入(FMMHI)方法证明了蓝色钙钛矿 QD 的高效光致发光和电致发光。FMMHI 方法在 PbBr2 前体溶液中添加 FABr 和在蓝色钙钛矿 QD 发光二极管(QLED)中掺入小铷(Rb+)方面是独特的。前体溶液中添加 FABr 可以实现强量子限制效应、大激子结合能和高质量钙钛矿 QD 薄膜。此外,通过 Rb+-诱导的钙钛矿八面体变形和强量子限制效应可以扩大能带隙。对于开发的绿蓝色 QD(Rb0.33Cs0.67)0.42FA0.58PbBr3 和深蓝色 QD(Rb0.33Cs0.67)0.42FA0.58PbCl1.25Br1.75,在固态薄膜状态下分别实现了 64.5%和 49.8%的优异 PLQY。此外,在电致发光峰值波长分别为 502nm 和 466nm 时,还分别实现了最大外量子效率(EQE)为 3.6%和 0.61%,这表明掺入 Rb+的钙钛矿 QD 在开发高性能蓝色钙钛矿电致发光二极管方面具有巨大潜力。

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