首页> 外文期刊>Macromolecules >Electroluminescence of multicomponent conjugated polymers. 1. Roles of polymer/polymer interfaces in emission enhancement and voltage-tunable multicolor emission in semiconducting polymer/polymer heterojunctions [Review]
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Electroluminescence of multicomponent conjugated polymers. 1. Roles of polymer/polymer interfaces in emission enhancement and voltage-tunable multicolor emission in semiconducting polymer/polymer heterojunctions [Review]

机译:多组分共轭聚合物的电致发光。 1.聚合物/聚合物界面在半导体聚合物/聚合物异质结中的发射增强和电压可调多色发射中的作用[综述]

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Effects of the electronic structure of polymer/polymer interfaces on the electroluminescence efficiency and tunable multicolor emission of polymer heterojunction light-emitting diodes were explored by a series of 16 n-type conjugated polymers with varying electron affinities and ionization potentials in conjunction with poly(p-phenylenevinylene). Efficiency and luminance of diodes of the type indium-tin oxide/poly(p-phenylenevinylene)-type polymer/aluminum were maximized and were as high as 3% photons/electron and 820 cd/m(2), respectively, when the energetics at the polymer/polymer interface favored electron transfer while disfavoring hole transfer. Energetic barrier to electron transfer at the polymer/polymer interface was more important to electroluminescence efficiency and diode luminance than injection barrier at the cathode/polymer interface. By a judicious choice of the relative layer thicknesses and the components of the bilayer heterojunctions, the rate of both electron and hole transfer across the polymer/ polymer interface can be regulated by the applied voltage, resulting in continuous voltage tunability of emission colors. The voltage tunable multicolor emission is exemplified by red (5 V) <----> yellow (9 V) <----> green (12 V) and other intermediate color switching in poly(p-phenylenevinylene)/poly(2,6-(4-phenyl)-quinoline) (PPQ) diodes. The multicolors obtained from a single heterojunction diode by varying the applied voltage originated from the mixing of the component emission spectra in varying proportions facilitated by interfacial charge transfer and finite size effects. Electroluminescence microscopy was used to directly image the multicolor diodes. These results suggest that the electronic structure of polymer/polymer interfaces and finite size effects dominate the emission features and performance of light-emitting devices based on multicomponent polymers such as multilayered thin films, phase-separated blends, and block copolymers. The results also have implications for photovoltaic cells and other optoelectronic devices using conjugated polymers. [References: 101]
机译:聚合物/聚合物界面的电子结构对聚合物异质结发光二极管电致发光效率和可调多色发射的影响是通过一系列16种n型共轭聚合物(具有不同的电子亲和力和电离电势)与poly(p -亚苯基亚乙烯基)。铟锡氧化物/聚(对苯撑乙烯撑)/ n型聚合物/铝类型的二极管的效率和亮度最大,分别高达3%光子/电子和820 cd / m(2)。聚合物/聚合物界面处的能量学有利于电子转移,而不利于空穴转移。聚合物/聚合物界面上电子转移的高能垒对电致发光效率和二极管亮度的影响比阴极/聚合物界面上的注入势垒更重要。通过明智地选择相对层厚度和双层异质结的组成,可以通过施加的电压来调节电子和空穴在聚合物/聚合物界面上的转移速率,从而使发射色具有连续的电压可调性。电压可调多色发射的示例是红色(5 V)<---->黄色(9 V)<---->绿色(12 V)和其他在聚(对亚苯基亚乙烯基)/ poly( 2,6-(4-苯基)-喹啉)(PPQ)二极管。通过改变施加的电压从单个异质结二极管获得的多色来自于组分发射光谱以不同比例的混合,这有利于界面电荷转移和有限尺寸效应。使用电致发光显微镜直接对多色二极管成像。这些结果表明,聚合物/聚合物界面的电子结构和有限尺寸效应主导了基于多组分聚合物(例如多层薄膜,相分离的共混物和嵌段共聚物)的发光器件的发射特征和性能。该结果对使用共轭聚合物的光伏电池和其他光电器件也具有影响。 [参考:101]

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