单分散量子点的低阈值各向异性多色发射

IF 16.3 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Yangzhi Tan, Wai Yuen Fu, Hemin Lin, Dan Wu, Xiao Wei Sun, Hoi Wai Choi, Kai Wang
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引用次数: 0

摘要

胶体量子点(QDs)是一种可溶液加工的半导体纳米晶体,具有良好的光电特性。其中之一是它们的多激子行为,可通过单分散量子点产生和放大宽带多色光。然而,由于难以实现不同颜色的空间分离和图案化,以及激发多共振态所需的高泵浦强度,其实用性受到了限制。为了解决这些问题,我们将多激子态的单分散 QDs 集成到一个特殊设计的腔体中,在该腔体中,QDs 表现出各向异性的多色发射(APE)特性,通过将观察方向从垂直方向转向横向方向,可以将发射从绿色调到红色。随后,通过优化腔体结构,300ps 脉冲激发下的 APE 阈值从 32 μJ cm-2 降至 21 μJ cm-2。基于对所开发腔体的多激子发射和随角度变化的波长选择性的操纵,我们结合腔体集成的单分散 QD 和蓝色背光,制作出了像素尺寸小至 23 μm 的全彩色微像素阵列。此外,在准连续波泵浦条件下,APE 的阈值低至 5 W cm-2,这表明它与商用 LED 和/或激光二极管兼容。由于 APE 源自支持光增益的 QD 的多激子行为,其前所未有的低阈值意味着二极管泵浦胶体 QD 激光的可行性。这项工作展示了一种超越控制 QDs 尺寸、组成或结构的操纵 QDs 光学特性的新方法,并揭示了利用单分散 QDs 实现全彩发射的巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-threshold anisotropic polychromatic emission from monodisperse quantum-dots
Colloidal quantum-dots (QDs) are solution-processable semiconductor nanocrystals with favorable optoelectronic characteristics. One of which is their multi-excitonic behavior that enables broadband polychromatic light generation and amplification from monodisperse QDs. However, its practicality has been limited by the difficulty to achieve spatial separation and patterning of different colors as well as the high pumping intensity required to excite the multi-excitonic states. Here, we have addressed these issues by integrating monodisperse QDs in multi-excitonic states into a specially designed cavity, in which the QDs exhibit anisotropic polychromatic emission (APE) characteristic that allows for tuning the emission from green to red by shifting the observation direction from perpendicular to lateral. Subsequently, the APE threshold under 300-ps pulsed excitation has been reduced from 32 to 21 μJ cm−2 by optimizing the cavity structure. Based on the manipulation of multi-excitonic emission and angle-dependent wavelength selectivity of the developed cavity, we have fabricated a full-color micro-pixel array with a pixel size as small as 23 μm by combining cavity-integrated monodisperse QDs and blue backlight. Furthermore, the threshold of APE under quasi-continuous-wave pumping was as low as 5 W cm−2, indicating its compatibility with commercial LEDs and/or laser diodes. Since APE arises from the multi-excitonic behavior of QDs that supports optical gain, its unprecedentedly low threshold implies the feasibility of diode-pumped colloidal QD laser. This work demonstrates a novel method of manipulating the QDs’ optical properties beyond controlling their size, composition or structure, and reveals great potential for achieving full-color emission using monodisperse QDs.
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来源期刊
National Science Review
National Science Review MULTIDISCIPLINARY SCIENCES-
CiteScore
24.10
自引率
1.90%
发文量
249
审稿时长
13 weeks
期刊介绍: National Science Review (NSR; ISSN abbreviation: Natl. Sci. Rev.) is an English-language peer-reviewed multidisciplinary open-access scientific journal published by Oxford University Press under the auspices of the Chinese Academy of Sciences.According to Journal Citation Reports, its 2021 impact factor was 23.178. National Science Review publishes both review articles and perspectives as well as original research in the form of brief communications and research articles.
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