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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >White Polymer Light-Emitting Electrochemical Cells Fabricated Using Energy Donor and Acceptor Fluorescent pi-Conjugated Polymers Based on Concepts of Band-Structure Engineering
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White Polymer Light-Emitting Electrochemical Cells Fabricated Using Energy Donor and Acceptor Fluorescent pi-Conjugated Polymers Based on Concepts of Band-Structure Engineering

机译:基于能带结构工程概念的能量供体和受体荧光π共轭聚合物制备的白色聚合物发光电化学电池

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The authors report on white polymer light-emitting electrochemical cells (PLECs) fabricated with a polymer blend film composed of a blue fluorescent pi-conjugated polymer (blue FCP), poly(9,9-di-n-dodecylfluoreny1-2,7-diyl) (PFD), and a red-orange FCP, poly[2-methoxy-5-(2'-ethylhexyloxy)-1,4-phenylenevinylene] (MEH-PPV), based on concepts of band-structure engineering. Polymer blending is one of the simplest and most promising methods for fabrication of van der Waals interfaces, which convert electricity to light in PLECs. By optimizing the composition of PFD, MEH-PPV, poly(ethylene oxide) (PEO), and salt (KCF3SO3) in the active layer, white-light emission with Commission Internationale de l'Edairage (CIE) coordinates of (x = 0.33, y = 0.31) can be achieved through light mixing of blue exciton emission from PFD and red-orange exciton emission from MEH-PPV at an applied voltage higher than the threshold voltage,141,"-FcP, which corresponds to E-g(blue)-(FCP)/e, where E-g(blue-FCP) is the band gap of PFD and e is the elemental charge. The white light produced by light mixing of PFD and MEH-PPV emissions can be obtained at a low MEH-PPV concentration, while only red-orange emissions from MEH-PPV are obtained at high MEH-PPV concentrations. The emission color of FCP-blend PLECs can be explained by Forster resonance energy transfer (FRET) from the excited PFD to the MEH-PPV because the photoluminescence (PL) spectrum of PFD overlaps with the UV vis absorption spectrum of MEH-PPV. However, FRET was limited by the presence of PEO in the active layers of the FCP-blend PLECs. This meant it was much easier to tune the emission colors compared to FCP-blend polymer light-emitting diodes (PLEDs), in which FRET occurs predominantly. Utilization of a polymer blend film of blue and red-orange FCPs in PLECs is a very effective and promising method for fabrication of white light-emitting devices.
机译:作者报告了用由蓝色荧光pi共轭聚合物(蓝色FCP),聚(9,9-二-正十二烷基芴基1-2,7-基于带结构工程学的概念,还包括橙红色的FCP,聚[2-甲氧基-5-(2'-乙基己氧基)-1,4-亚苯基亚乙烯基](MEH-PPV)。聚合物共混是制造范德华界面的最简单,最有前途的方法之一,该界面可在PLEC中将电转换为光。通过优化有源层中PFD,MEH-PPV,聚环氧乙烷(PEO)和盐(KCF3SO3)的成分,白光发射的国际照明委员会(CIE)坐标为(x = 0.33) ,y = 0.31)可以通过在高于阈值电压141,“-FcP的施加电压下将PFD的蓝色激子发射和MEH-PPV的红橙色激子发射进行光混合来实现,这相当于Eg(blue) -(FCP)/ e,其中Eg(blue-FCP)是PFD的带隙,e是元素电荷,PFD和MEH-PPV发射光混合产生的白光可以在低MEH-PPV下获得在高浓度的MEH-PPV中仅能从MEH-PPV中获得橘红色的发射光,FCP混合PLEC的发射颜色可以用从激发的PFD到MEH-PPV的福斯特共振能量转移(FRET)来解释。 PFD的光致发光(PL)光谱与MEH-PPV的紫外可见吸收光谱重叠,但是FRET受以下因素限制FCP混合PLEC的有源层中存在PEO。这意味着,与主要发生FRET的FCP混合聚合物发光二极管(PLED)相比,调整发射颜色要容易得多。在PLEC中使用蓝色和红色橙色FCP的聚合物共混膜是制造白色发光器件的一种非常有效且有希望的方法。

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