Summary

Изготовление Белый светоизлучающих электрохимических ячеек с устойчивое излучение от эксиплексов

Published: November 15, 2016
doi:

Summary

The authors present a method for fabricating stable white-light-emitting electrochemical cells utilizing emission from exciplexes formed between a blue-emitting fluorene polymer and aromatic amines.

Abstract

Авторы представляют подход для изготовления стабильного белого светового излучения из полимерных светоизлучающих электрохимических ячеек (PLECs), имеющий активный слой, который состоит из сине-флуоресцентный поли (9,9-ди-н-dodecylfluorenyl-2,7-диил) ( ПФО) и π-сопряженных молекул трифениламин. Этот белый свет излучение происходит из эксиплексов, образованных между ОФП и аминов в электронно-возбужденных состояний. Устройство , содержащее PFD, 4,4 ', 4' '- трис [2-нафтил (фенил) амино] трифениламин (2-TNATA), поли (этиленоксида) и K 2 CF 3 SO 3 белеют световое излучение с Commission Internationale де l'ECLAIRAGE (CIE) координаты (0,33, 0,43) и Индекс цветопередачи (CRI) Ра = 73 при напряжении измерений постоянном напряжении 3,5 В. показал, что МКО координаты (0.27, 0.37), Ra из 67, а цвет наблюдаемой эмиссии сразу после приложения напряжения 5 V были почти без изменений и стабильными после300 сек.

Introduction

Research and development of polymer light-emitting electrochemical cells (PLECs) have expanded in recent years.1-15 PLECs are similar to organic light-emitting diodes (OLEDs) in that both are surface emitting organic devices and are expected to find their way into future lighting applications. OLEDs are already on the market, but the cost is still high, one reason being that OLEDs need a complicated device structure with multiple layers. In contrast, PLECs have a very simple device structure which consists of a single active layer (emitting layer) between a pair of electrodes. This means that PLECs are suited to mass production processes such as roll-to-roll printing and coating.

A PLEC has an active layer consisting of a fluorescent π-conjugated polymer (FCP). The FCP can be electrochemically doped with a polymer electrolyte (a mixture of an ion conducting polymer and a salt). The FCP is p-doped on the anode side and n-doped on the cathode side during operation, and generates excitons which emit light between the p- and n-doped regions. Therefore, the emission color reflects the exciton emission (=fluorescence) wavelength of the FCP.

Stable white light emission is important for lighting applications, and color mixing techniques which employ two or more emitters have been widely used to achieve this.10-14 Recently, we presented a different approach for obtaining stable white light emission, using an active layer which contains blue-fluorescent poly(9,9-di-n-dodecylfluorenyl-2,7-diyl) (PFD) and π-conjugated aromatic amines15. This white light emission comes from exciplexes formed between PFD and amine molecules in excited states. Exciplex emission has a broader spectrum compared to the exciton emission from the PDF and/or amines, which gives it a color close to that of natural light. This translates to a higher color rendering index (CRI), which is preferable for lighting applications.

In this article, the authors describe the procedure used to fabricate the exciplex based LECs and show the stability of their white light emission.

Protocol

1. Получение активного слоя растворов Активный слой раствора для аминов , легированного ПФО устройств Примечание: ПФО, 4,4 ', 4' '- трис [2-нафтил (фенил) амино] трифениламин (2-TNATA), 9,9-диметил – N, N' -ди (1-нафтил) – N , N 'дифенил-9Н-флуорен-2,7-диамина (DMFL-?…

Representative Results

Электролюминесценции (EL) спектры были использованы для вычисления координат CIE и значения CRI (Рисунки 2, 4, 5). Были собраны Фотографические изображения излучающего устройства для проверки белизной излучения (рисунок 3). <p class="jove_content" fo:keep-together.within-page="1"…

Discussion

LEC имеет активный слой , содержащий гидрофобный ПФД и ароматические амины, так и гидрофильные полиэтиленоксида и KCF 3 SO 3. Поскольку эти материалы имеют очень различную растворимость, тщательное приготовление раствора нанесения покрытия имеет решающее значение, чтобы избежа…

Disclosures

The authors have nothing to disclose.

Acknowledgements

Эта работа была частично поддержана дотация для научных исследований (№ 24225003). Эта работа была выполнена при финансовой поддержке JX Nippon Oil & Energy Corporation.

Materials

Poly(9,9-di-n-dodecylfluorenyl-2,7-diyl) (PFD) Aldrich 571660
4,4’,4’’-Tris[2-naphthyl(phenyl)amino]triphenylamine (2-TNATA) Aldrich 768669
9,9-Dimethyl-N,N’-di(1-naphthyl)-N,N’-diphenyl-9H-fluorene-2,7-diamine (DMFL-NPB) Aldrich
Poly(ethylene oxide) (PEO) Aldrich 182028
Potassium tirifluoromethansulfonate (KCF3SO3) Aldrich 422843 dried under vacuum at 200 °C for 2 hr prior to use
Chloroform Kanto Chemical Co. 08097-25 dehydrated
Cyclohexanone Kanto Chemical Co. 07555-00
SCAT 20-X (detergent) Daiichi Kogyo Seiyaku diluted with water
Acetone Kanto Chemical Co. 01866-25 Electronic grage
2-propanol Kanto Chemical Co. 32439-75 Electronic grage
13mm GD/X Disposable Filter Device PVDF Filter Media, Polypropylene Housing Whatman 6872-1304
UV/O3 Treating Unit SEN Lights Co.  SSP16-110
Spectral Photo Detector Otsuka Electronics MCPD 9800
Voltage Current Source Monitor  ADCMT 6241A 
Evaporation Mask  Tokyo Process Service Co., Ltd. NA The evaporation mask was wet-etched to create openings for patterned deposition of aluminum. The size of the mask is 100 mm x 100 mm x 0.2 mm-thick.

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Cite This Article
Uchida, S., Takizawa, D., Ikeda, S., Takeuchi, H., Nishimura, S., Nishide, H., Nishikitani, Y. Fabrication of White Light-emitting Electrochemical Cells with Stable Emission from Exciplexes. J. Vis. Exp. (117), e54628, doi:10.3791/54628 (2016).

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