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通过超声喷雾涂层沉积在有机发光二极管上的精心定位的金纳米颗粒产生的表面等离子体增强荧光。

Plasmon enhanced fluorescence from meticulously positioned gold nanoparticles, deposited by ultra sonic spray coating on organic light emitting diodes.

作者信息

Nithyananda Kumar Rachith Shanivarasanthe, Eerdekens Maarten, de Coene Yovan, Nagaraja Veda Sandeep, Ahadzadeh Shabnam, Van Landeghem Melissa, Verbiest Thierry, Deferme Wim

机构信息

UHasselt - Hasselt University, Institute for Materials Research (IMO-IMOMEC) Agoralaan 1, Diepenbeek 3590 Belgium

IMOMEC Division, IMEC Wetenschapspark 1, Diepenbeek 3590 Belgium.

出版信息

Nanoscale Adv. 2023 Feb 9;5(6):1750-1759. doi: 10.1039/d2na00753c. eCollection 2023 Mar 14.

Abstract

Enhancement of the spontaneous emission of fluorophores aided by plasmonic nanoparticles (PNPs) prompts the growth of plasmonic organic light emitting diodes (OLEDs). Together with the spatial dependence of the fluorophore and PNPs on enhanced fluorescence, the surface coverage of the PNPs controls the charge transport in OLEDs. Hence, here, the spatial and surface coverage reliance of plasmonic gold nanoparticles is controlled by a roll-to-roll compatible ultrasonic spray coating technique. A 2-fold enhancement in the multi photon fluorescence is seen by two-photon fluorescence microscopy for a polystyrene sulfonate (PSS) stabilized gold nanoparticle located 10 nm away from the super yellow fluorophore. Fluorescence enhancement combined with ∼2% surface coverage of PNPs, provides a 33%, 20% and ∼40% increase in the electroluminescence, luminous efficacy and external quantum efficiency, respectively.

摘要

等离子体纳米颗粒(PNPs)辅助下荧光团自发发射的增强推动了等离子体有机发光二极管(OLEDs)的发展。除了荧光团和PNPs对增强荧光的空间依赖性外,PNPs的表面覆盖率还控制着OLEDs中的电荷传输。因此,在此,通过卷对卷兼容的超声喷雾涂层技术来控制等离子体金纳米颗粒的空间和表面覆盖率。对于距离超黄色荧光团10 nm处的聚苯乙烯磺酸盐(PSS)稳定化金纳米颗粒,通过双光子荧光显微镜观察到多光子荧光增强了2倍。荧光增强与PNPs约2%的表面覆盖率相结合,分别使电致发光、发光效率和外量子效率提高了33%、20%和约40%。

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