Towards fully spray coated organic light emitting devices

K. Gilissen, J. Stryckers, J. Manca, W. Deferme
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引用次数: 3

Abstract

Pi-conjugated polymer light emitting devices have the potential to be the next generation of solid state lighting. In order to achieve this goal, a low cost, efficient and large area production process is essential. Polymer based light emitting devices are generally deposited using techniques based on solution processing e.g.: spin coating, ink jet printing. These techniques are not well suited for cost-effective, high throughput, large area mass production of these organic devices. Ultrasonic spray deposition however, is a deposition technique that is fast, efficient and roll to roll compatible which can be easily scaled up for the production of large area polymer light emitting devices (PLEDs). This deposition technique has already successfully been employed to produce organic photovoltaic devices (OPV)1. Recently the electron blocking layer PEDOT:PSS2 and metal top contact3 have been successfully spray coated as part of the organic photovoltaic device stack. In this study, the effects of ultrasonic spray deposition of polymer light emitting devices are investigated. For the first time – to our knowledge -, spray coating of the active layer in PLED is demonstrated. Different solvents are tested to achieve the best possible spray-able dispersion. The active layer morphology is characterized and optimized to produce uniform films with optimal thickness. Furthermore these ultrasonic spray coated films are incorporated in the polymer light emitting device stack to investigate the device characteristics and efficiency. Our results show that after careful optimization of the active layer, ultrasonic spray coating is prime candidate as deposition technique for mass production of PLEDs.
面向全喷涂有机发光器件
π共轭聚合物发光器件具有成为下一代固态照明器件的潜力。为了实现这一目标,低成本、高效率、大面积的生产工艺必不可少。聚合物基发光器件通常采用基于溶液处理的沉积技术,例如:旋转涂层,喷墨印刷。这些技术并不适合于这些有机器件的高成本效益、高通量、大面积大规模生产。然而,超声喷涂沉积是一种快速、高效和卷对卷兼容的沉积技术,可以很容易地扩大生产大面积聚合物发光器件(led)。这种沉积技术已经成功地应用于生产有机光伏器件(OPV)1。最近,电子阻挡层PEDOT:PSS2和金属顶部触点3已成功喷涂为有机光伏器件堆栈的一部分。本文研究了超声喷涂沉积对聚合物发光器件的影响。据我们所知,这是第一次在PLED中进行活性层的喷涂。测试了不同的溶剂,以达到最佳的可喷涂分散。对活性层形貌进行了表征和优化,以产生具有最佳厚度的均匀薄膜。此外,将这些超声喷涂薄膜加入到聚合物发光器件堆栈中,以研究器件的特性和效率。研究结果表明,经过对活性层的精心优化,超声喷涂是大规模生产led的首选沉积技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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