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配体与带隙工程:定制用于制备高质量CsPbI量子点的合成方案

Ligand & band gap engineering: tailoring the protocol synthesis for achieving high-quality CsPbI quantum dots.

作者信息

Hassanabadi Ehsan, Latifi Masoud, Gualdrón-Reyes Andrés F, Masi Sofia, Yoon Seog Joon, Poyatos Macarena, Julián-López Beatriz, Mora-Seró Iván

机构信息

Institute of Advanced Materials (INAM), University Jaume I, Avenida de Vicent Sos Baynat, s/n, 12071 Castellón de la Plana, Castellón, Spain.

出版信息

Nanoscale. 2020 Jul 14;12(26):14194-14203. doi: 10.1039/d0nr03180a. Epub 2020 Jun 30.

DOI:10.1039/d0nr03180a
PMID:32602873
Abstract

Hot-injection has become the most widespread method used for the synthesis of perovskite quantum dots (QDs) with enormous interest for application in optoelectronic devices. However, there are some aspects of the chemistry involved in this synthesis that have not been completely investigated. In this work, we synthesized ultra-high stable CsPbI QDs for more than 15 months by controlling two main parameters: synthesis temperature and the concentration of capping ligands. By increasing the capping ligand concentration during the QD synthesis, we were able to grow CsPbI in a broad range of temperatures, improving the photophysical properties of QDs by increasing the synthesis temperature. We achieved the maximum photoluminescence quantum yield (PLQY) of 93% for a synthesis conducted at 185 °C, establishing an efficient surface passivation to decrease the density of non-radiative recombination sites. Under these optimized synthesis conditions, deep red LEDs with an External Quantum Efficiency (EQE) higher than 6% were achieved. The performance of these LEDs is higher than that of the reported CsPbI QD-LEDs containing standard capping agents, without additional elements or further element exchange. We show that it is possible to produce stable CsPbI QDs with high PLQY and red emission beyond the requirement of the Rec. 2020 standards for red color.

摘要

热注入法已成为合成钙钛矿量子点(QDs)最广泛使用的方法,该方法在光电器件应用方面备受关注。然而,这种合成过程中涉及的化学的某些方面尚未得到充分研究。在这项工作中,我们通过控制两个主要参数:合成温度和封端配体浓度,合成了超稳定的CsPbI量子点,其稳定性超过15个月。在量子点合成过程中增加封端配体浓度,我们能够在很宽的温度范围内生长CsPbI,通过提高合成温度改善了量子点的光物理性质。对于在185°C下进行的合成,我们实现了93%的最大光致发光量子产率(PLQY),建立了有效的表面钝化以降低非辐射复合位点的密度。在这些优化的合成条件下,实现了外量子效率(EQE)高于6%的深红色发光二极管。这些发光二极管的性能高于报道的含有标准封端剂的CsPbI量子点发光二极管,无需额外元素或进一步的元素交换。我们表明,有可能生产出具有高PLQY和红色发射的稳定CsPbI量子点,其性能超出了Rec. 2020红色标准的要求。

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