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Polymer Light‐emitting Diodes Based on End‐capped Poly[9,9‐di‐(2′‐ethylhexyl)fluorenyl‐2,7‐diyl]
Author(s) -
Zhang Qiushu
Publication year - 2010
Publication title -
chinese journal of chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.28
H-Index - 41
eISSN - 1614-7065
pISSN - 1001-604X
DOI - 10.1002/cjoc.201090253
Subject(s) - polyfluorene , electroluminescence , chemistry , light emitting diode , quantum efficiency , diode , luminous efficacy , polymer , luminance , photochemistry , optoelectronics , materials science , optics , organic chemistry , layer (electronics) , physics
We demonstrate polymer light‐emitting diodes (LEDs) based on poly[9,9‐di‐(2′‐ethylhexyl)fluorenyl‐2,7‐diyl] with end capper dimethylphenyl or N , N ‐bis(4‐methylphenyl)‐ N ‐phenylamine. The introduction of end‐capper groups increased the device luminance and efficiency, while greatly depressing the green emission. For the devices constructed of poly[9,9‐di‐(2′‐ethylhexyl)fluorenyl‐2,7‐diyl] end capped with dimethylphenyl, the maximum luminance reached 381 cd/m 2 at 122 mA/cm 2 . The maximum external quantum efficiency was 0.16% at 117 mA/cm 2 , which is more than five times higher than that of the non‐end‐capped polymer LEDs. The electroluminescence (EL) maximum was at 485 nm, blue shifted by 52 nm with respect to that of the non‐end‐capped polyfluorene devices. It is proposed that efficient hole trapping at end capper and increased resistance of polyfluorene to oxidation are responsible for the improved device performance and color stability.

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