无羟基氧化锌纳米颗粒稳定光电器件表面钝化工程。

IF 13.4 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Seongkeun Oh, Jaehwi Choi, Junhyeok Park, Young Kyun Choi, Taesung Park, Awais Ali, Junhyuk Ahn, Jiwan Kim, Soong Ju Oh
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引用次数: 0

摘要

ZnMgO纳米粒子(ZMO NPs)由于其易于合成和优异的电子传输性能而被广泛用于发光二极管(led)和光电二极管(pd)等光电器件的电子传输层。然而,ZMO NPs表面的羟基(-OH)会引入电荷陷阱,抑制电子传递,降低器件的稳定性,特别是在环境湿度和氧气条件下。因此,本研究开发了一种醇处理(AT)方法,通过质子转移去除表面-OH,有效地降低了陷阱态和偶极矩,增强了表面钝化。与未经处理的器件相比,使用基于at的ZMO NPs制造的基于量子点的led和pd具有更高的电流密度,亮度和外部量子效率。值得注意的是,甲醇处理的设备在环境条件下的使用寿命约为28小时,这代表了设备稳定性和性能的实质性进步。AT方法是优化下一代光电子应用的ZMO NPs的一种简单有效的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface passivation engineering for stable optoelectronic devices via hydroxyl-free ZnMgO nanoparticles.

ZnMgO nanoparticles (ZMO NPs) are widely used as electron transport layers in optoelectronic devices such as light-emitting diodes (LEDs) and photodiodes (PDs) primarily because of their facile synthesis and excellent electron transport properties. However, the surface hydroxyl groups (‒OH) on the ZMO NPs introduce charge traps, inhibit electron transport, and reduce device stability, particularly under ambient humidity and oxygen. Therefore, in this study, an alcohol treatment (AT) method was developed to remove surface ‒OH via proton transfer to effectively reduce trap states and dipole moments and enhance surface passivation. Quantum-dot-based LEDs and PDs fabricated using the AT-based ZMO NPs exhibited improved current density, luminance, and external quantum efficiency compared to the untreated devices. Notably, the methanol-treated devices achieved an operational lifetime of approximately 28 h under ambient conditions, representing a substantial advancement in device stability and performance. The AT approach is a simple and effective strategy for optimizing the ZMO NPs for next-generation optoelectronic applications.

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来源期刊
Nano Convergence
Nano Convergence Engineering-General Engineering
CiteScore
15.90
自引率
2.60%
发文量
50
审稿时长
13 weeks
期刊介绍: Nano Convergence is an internationally recognized, peer-reviewed, and interdisciplinary journal designed to foster effective communication among scientists spanning diverse research areas closely aligned with nanoscience and nanotechnology. Dedicated to encouraging the convergence of technologies across the nano- to microscopic scale, the journal aims to unveil novel scientific domains and cultivate fresh research prospects. Operating on a single-blind peer-review system, Nano Convergence ensures transparency in the review process, with reviewers cognizant of authors' names and affiliations while maintaining anonymity in the feedback provided to authors.
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