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用于有机电子学的过渡金属氧化物:能量学、器件物理学和应用。

Transition metal oxides for organic electronics: energetics, device physics and applications.

机构信息

Department of Electrical Engineering, Princeton University, Princeton, NJ 08544, USA.

出版信息

Adv Mater. 2012 Oct 23;24(40):5408-27. doi: 10.1002/adma.201201630. Epub 2012 Aug 1.

Abstract

During the last few years, transition metal oxides (TMO) such as molybdenum tri-oxide (MoO(3) ), vanadium pent-oxide (V(2) O(5) ) or tungsten tri-oxide (WO(3) ) have been extensively studied because of their exceptional electronic properties for charge injection and extraction in organic electronic devices. These unique properties have led to the performance enhancement of several types of devices and to a variety of novel applications. TMOs have been used to realize efficient and long-term stable p-type doping of wide band gap organic materials, charge-generation junctions for stacked organic light emitting diodes (OLED), sputtering buffer layers for semi-transparent devices, and organic photovoltaic (OPV) cells with improved charge extraction, enhanced power conversion efficiency and substantially improved long term stability. Energetics in general play a key role in advancing device structure and performance in organic electronics; however, the literature provides a very inconsistent picture of the electronic structure of TMOs and the resulting interpretation of their role as functional constituents in organic electronics. With this review we intend to clarify some of the existing misconceptions. An overview of TMO-based device architectures ranging from transparent OLEDs to tandem OPV cells is also given. Various TMO film deposition methods are reviewed, addressing vacuum evaporation and recent approaches for solution-based processing. The specific properties of the resulting materials and their role as functional layers in organic devices are discussed.

摘要

在过去的几年中,过渡金属氧化物(TMO),如三氧化钼(MoO(3))、五氧化二钒(V(2)O(5))或三氧化钨(WO(3)),由于其在有机电子器件中电荷注入和提取的特殊电子性能而得到了广泛的研究。这些独特的性质导致了几种类型的器件性能的提高,并产生了各种新的应用。TMO 已被用于实现高效和长期稳定的宽能带隙有机材料的 p 型掺杂、堆叠有机发光二极管(OLED)的电荷产生结、半透明器件的溅射缓冲层以及具有改进的电荷提取、增强的功率转换效率和显著提高的长期稳定性的有机光伏(OPV)电池。在有机电子学中,能量学通常在推进器件结构和性能方面起着关键作用;然而,文献对 TMO 的电子结构及其在有机电子学中作为功能成分的作用的解释提供了非常不一致的图景。我们希望通过这篇综述澄清一些现有的误解。还概述了基于 TMO 的器件结构,从透明 OLED 到串联 OPV 电池。综述了各种 TMO 薄膜沉积方法,涉及真空蒸发和最近的基于溶液的处理方法。讨论了所得材料的特定性质及其在有机器件中作为功能层的作用。

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