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Published in: Journal of Materials Science 15/2016

03-05-2016 | Original Paper

Fabrication of efficient polymer light-emitting diodes using water/alcohol soluble poly(vinyl alcohol) doped with alkali metal salts as electron-injection layer

Authors: Cheng-Liang Wu, Cheng-Yi Lin, Yun Chen

Published in: Journal of Materials Science | Issue 15/2016

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Abstract

An effective electron-injection layer (EIL) is crucial to efficient polymer light-emitting diodes (PLEDs) with high work-function metal as cathode. This work presents the use of water/alcohol soluble poly(vinyl alcohol) (PVA), especially doped with alkali metal salts, as a highly effective EIL to fabricate efficient multilayer PLEDs, allowing the use of stable aluminum as the cathode. Using neat PVA as EIL, the maximum brightness and maximum current efficiency of the device [ITO/PEDOT:PSS/SY/PVA/Al(90 nm)] were significantly enhanced to 5518 cd/m2 and 2.64 cd/A (from 395 cd/m2 and 0.06 cd/A without the EIL) due to promoted electron-injection and hole-blocking. The device performance is further enhanced by doping the PVA with alkali metal salts (M2CO3 or CH3COOM; M: Na, K, Cs), and the enhancement is increased with increasing dopant concentration. Particularly, the PVA doped with 30 wt% alkali metal carbonates revealed the best performance (20214–25163 cd/m2, 5.83–6.83 cd/A). This has been attributed to improved electron-injection from aluminum cathode, which has been confirmed by the corresponding increase in the open-circuit voltages (V oc) obtained from photovoltaic measurements. Current results indicate that commercially available PVA are promising electron-injection layer for PLEDs when doped with appropriate alkali metal salts.

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Appendix
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Literature
1.
go back to reference Burroughes JH, Bradley DDC, Brown AR, Marks RN, Mackay K, Friend RH, Burn PL, Holmes AB (1990) Light-emitting diodes based on conjugated polymers. Nature 347:539–541CrossRef Burroughes JH, Bradley DDC, Brown AR, Marks RN, Mackay K, Friend RH, Burn PL, Holmes AB (1990) Light-emitting diodes based on conjugated polymers. Nature 347:539–541CrossRef
2.
go back to reference Wu HB, Ying L, Yang W, Cao Y (2009) Progress and perspective of polymer white light-emitting devices and materials. Chem Soc Rev 38:3391–3400CrossRef Wu HB, Ying L, Yang W, Cao Y (2009) Progress and perspective of polymer white light-emitting devices and materials. Chem Soc Rev 38:3391–3400CrossRef
3.
go back to reference D’Andrade BW, Forrest SR (2004) White organic light-emitting devices for solid-state lighting. Adv Mater 16:1585–1595CrossRef D’Andrade BW, Forrest SR (2004) White organic light-emitting devices for solid-state lighting. Adv Mater 16:1585–1595CrossRef
4.
go back to reference Yamamoto T, Kajii H, Ohmori Y (2014) Improved electron-injection from silver electrode for all solution-processed polymer light-emitting diodes with Cs2CO3: conjugated polyelectrolyte blended interfacial layer. Org Electron 15:1077–1082CrossRef Yamamoto T, Kajii H, Ohmori Y (2014) Improved electron-injection from silver electrode for all solution-processed polymer light-emitting diodes with Cs2CO3: conjugated polyelectrolyte blended interfacial layer. Org Electron 15:1077–1082CrossRef
5.
go back to reference Malliaras GG, Scott JC (1998) The roles of injection and mobility in organic light emitting diodes. J Appl Phys 83:5399–5403CrossRef Malliaras GG, Scott JC (1998) The roles of injection and mobility in organic light emitting diodes. J Appl Phys 83:5399–5403CrossRef
6.
go back to reference Guo TF, Yang FS, Tsai ZJ, Wen TC, Hsieh SN, Fu YS, Chung CT (2006) Organic oxide/Al composite cathode in efficient polymer light-emitting diodes. Appl Phys Lett 88:113501CrossRef Guo TF, Yang FS, Tsai ZJ, Wen TC, Hsieh SN, Fu YS, Chung CT (2006) Organic oxide/Al composite cathode in efficient polymer light-emitting diodes. Appl Phys Lett 88:113501CrossRef
7.
go back to reference Lu JH, Ma ZH, Meng B, Sui D, Zhang BH, Xie ZY, Jing XB, Wang FS, Ding JQ, Wang LX (2011) Phosphonate functionalized oxadiazole derivative as an efficient electron transporting material for solution-processed blue electrophosphorescent devices. Opt Express 19:A1241–A1249CrossRef Lu JH, Ma ZH, Meng B, Sui D, Zhang BH, Xie ZY, Jing XB, Wang FS, Ding JQ, Wang LX (2011) Phosphonate functionalized oxadiazole derivative as an efficient electron transporting material for solution-processed blue electrophosphorescent devices. Opt Express 19:A1241–A1249CrossRef
8.
go back to reference Parker ID, Cao Y, Yang CY (1999) Lifetime and degradation effects in polymer light-emitting diodes. J Appl Phys 85:2441–2447CrossRef Parker ID, Cao Y, Yang CY (1999) Lifetime and degradation effects in polymer light-emitting diodes. J Appl Phys 85:2441–2447CrossRef
9.
go back to reference Lee TW, Kim MG, Park SH, Kim SY, Kwon O, Noh T, Park JJ, Choi TL, Park JH, Chin BD (2009) Designing a stable cathode with multiple layers to improve the operational lifetime of polymer light-emitting diodes. Adv Funct Mater 19:1863–1868CrossRef Lee TW, Kim MG, Park SH, Kim SY, Kwon O, Noh T, Park JJ, Choi TL, Park JH, Chin BD (2009) Designing a stable cathode with multiple layers to improve the operational lifetime of polymer light-emitting diodes. Adv Funct Mater 19:1863–1868CrossRef
10.
go back to reference So F, Kondakov D (2010) Degradation mechanisms in small-molecule and polymer organic light-emitting diodes. Adv Mater 22:3762–3777CrossRef So F, Kondakov D (2010) Degradation mechanisms in small-molecule and polymer organic light-emitting diodes. Adv Mater 22:3762–3777CrossRef
11.
go back to reference Zou JY, Yip HL, Zhang Y, Gao Y, Chien SC, O’Malley K, Chueh CC, Chen HZ, Jen AKY (2012) High-performance inverted polymer solar cells: device characterization, optical modeling, and hole-transporting modifications. Adv Funct Mater 22:2804–2811CrossRef Zou JY, Yip HL, Zhang Y, Gao Y, Chien SC, O’Malley K, Chueh CC, Chen HZ, Jen AKY (2012) High-performance inverted polymer solar cells: device characterization, optical modeling, and hole-transporting modifications. Adv Funct Mater 22:2804–2811CrossRef
12.
go back to reference Zhou YH, Fuentes-Hernandez C, Shim J, Meyer J, Giordano AJ, Li H, Winget P, Papadopoulos T, Cheun H, Kim J, Fenoll M, Dindar A, Haske W, Najafabadi E, Khan TM, Sojoudi H, Barlow S, Graham S, Bredas JL, Marder SR, Kahn A, Kippelen B (2012) A universal method to produce low-work function electrodes for organic electronics. Science 336:327–332CrossRef Zhou YH, Fuentes-Hernandez C, Shim J, Meyer J, Giordano AJ, Li H, Winget P, Papadopoulos T, Cheun H, Kim J, Fenoll M, Dindar A, Haske W, Najafabadi E, Khan TM, Sojoudi H, Barlow S, Graham S, Bredas JL, Marder SR, Kahn A, Kippelen B (2012) A universal method to produce low-work function electrodes for organic electronics. Science 336:327–332CrossRef
13.
go back to reference Huang F, Wu HB, Cao Y (2010) Water/alcohol soluble conjugated polymers as highly efficient electron transporting/injection layer in optoelectronic devices. Chem Soc Rev 39:2500–2521CrossRef Huang F, Wu HB, Cao Y (2010) Water/alcohol soluble conjugated polymers as highly efficient electron transporting/injection layer in optoelectronic devices. Chem Soc Rev 39:2500–2521CrossRef
14.
go back to reference Zhong CM, Duan CH, Huang F, Wu HB, Cao Y (2011) Materials and devices toward fully solution processable organic light-emitting diodes. Chem Mater 23:326–340CrossRef Zhong CM, Duan CH, Huang F, Wu HB, Cao Y (2011) Materials and devices toward fully solution processable organic light-emitting diodes. Chem Mater 23:326–340CrossRef
15.
go back to reference Min C, Shi CS, Zhang WJ, Jiu TG, Chen JS, Ma DG, Fang JF (2013) A small-molecule zwitterionic electrolyte without a pi-delocalized unit as a charge-Injection layer for high-performance PLEDs. Angew Chem Int Ed 52:3417–3420CrossRef Min C, Shi CS, Zhang WJ, Jiu TG, Chen JS, Ma DG, Fang JF (2013) A small-molecule zwitterionic electrolyte without a pi-delocalized unit as a charge-Injection layer for high-performance PLEDs. Angew Chem Int Ed 52:3417–3420CrossRef
16.
go back to reference Ouyang XH, Peng RX, Ai L, Zhang XY, Ge ZY (2015) Efficient polymer solar cells employing a non-conjugated small-molecule electrolyte. Nat Photonics 9:520–524CrossRef Ouyang XH, Peng RX, Ai L, Zhang XY, Ge ZY (2015) Efficient polymer solar cells employing a non-conjugated small-molecule electrolyte. Nat Photonics 9:520–524CrossRef
17.
go back to reference Rao MVM, Huang TS, Su YK, Tu ML, Huang CY, Wu SS (2010) Polymer light-emitting devices using poly(ethylene oxide) as an electron injecting layer. Nano-Micro Lett 2:49–52CrossRef Rao MVM, Huang TS, Su YK, Tu ML, Huang CY, Wu SS (2010) Polymer light-emitting devices using poly(ethylene oxide) as an electron injecting layer. Nano-Micro Lett 2:49–52CrossRef
18.
go back to reference Tu ML, Su YK, Wu SS, Guo TF, Wen TC, Huang CY (2011) Violet electroluminescence from poly(N-vinylcarbazole)/ZnO-nanrod composite polymer light-emitting devices. Synth Met 161:450–454CrossRef Tu ML, Su YK, Wu SS, Guo TF, Wen TC, Huang CY (2011) Violet electroluminescence from poly(N-vinylcarbazole)/ZnO-nanrod composite polymer light-emitting devices. Synth Met 161:450–454CrossRef
19.
go back to reference Lee TH, Huang JCA, Pakhomov GL, Guo TF, Wen TC, Huang YS, Tsou CC, Chung CT, Lin YC, Hsu YJ (2008) Organic-oxide cathode buffer layer in fabricating high-performance polymer light-emitting diodes. Adv Funct Mater 18:3036–3042CrossRef Lee TH, Huang JCA, Pakhomov GL, Guo TF, Wen TC, Huang YS, Tsou CC, Chung CT, Lin YC, Hsu YJ (2008) Organic-oxide cathode buffer layer in fabricating high-performance polymer light-emitting diodes. Adv Funct Mater 18:3036–3042CrossRef
20.
go back to reference Chen CW, Lu YJ, Wu CC, Wu EHE, Chu CW, Yang Y (2005) Effective connecting architecture for tandem organic light-emitting devices. Appl Phys Lett 87:241121CrossRef Chen CW, Lu YJ, Wu CC, Wu EHE, Chu CW, Yang Y (2005) Effective connecting architecture for tandem organic light-emitting devices. Appl Phys Lett 87:241121CrossRef
21.
go back to reference Wu C-I, Lin C-T, Chen Y-H, Chen M-H, Lu Y-J, Wu C-C (2006) Electronic structures and electron-injection mechanisms of cesium-carbonate-incorporated cathode structures for organic light-emitting devices. Appl Phys Lett 88:152104CrossRef Wu C-I, Lin C-T, Chen Y-H, Chen M-H, Lu Y-J, Wu C-C (2006) Electronic structures and electron-injection mechanisms of cesium-carbonate-incorporated cathode structures for organic light-emitting devices. Appl Phys Lett 88:152104CrossRef
22.
go back to reference Hung LS, Tang CW, Mason MG (1997) Enhanced electron-injection in organic electroluminescence devices using an Al/LiF electrode. Appl Phys Lett 70:152–154CrossRef Hung LS, Tang CW, Mason MG (1997) Enhanced electron-injection in organic electroluminescence devices using an Al/LiF electrode. Appl Phys Lett 70:152–154CrossRef
23.
go back to reference Jabbour GE, Kawabe Y, Shaheen SE, Wang JF, Morrell MM, Kippelen B, Peyghambarian N (1997) Highly efficient and bright organic electroluminescent devices with an aluminum cathode. Appl Phys Lett 71:1762–1764CrossRef Jabbour GE, Kawabe Y, Shaheen SE, Wang JF, Morrell MM, Kippelen B, Peyghambarian N (1997) Highly efficient and bright organic electroluminescent devices with an aluminum cathode. Appl Phys Lett 71:1762–1764CrossRef
24.
go back to reference Yoon J, Kim JJ, Lee TW, Park OO (2000) Evidence of band bending observed by electroabsorption studies in polymer light emitting device with ionomer/Al or LiF/Al cathode. Appl Phys Lett 76:2152–2154CrossRef Yoon J, Kim JJ, Lee TW, Park OO (2000) Evidence of band bending observed by electroabsorption studies in polymer light emitting device with ionomer/Al or LiF/Al cathode. Appl Phys Lett 76:2152–2154CrossRef
25.
go back to reference Sax S, Rugen-Penkalla N, Neuhold A, Schuh S, Zojer E, List EJW, Mullen K (2010) Efficient blue-light-emitting polymer heterostructure devices: the fabrication of multilayer structures from orthogonal solvents. Adv Mater 22:2087–2091CrossRef Sax S, Rugen-Penkalla N, Neuhold A, Schuh S, Zojer E, List EJW, Mullen K (2010) Efficient blue-light-emitting polymer heterostructure devices: the fabrication of multilayer structures from orthogonal solvents. Adv Mater 22:2087–2091CrossRef
26.
go back to reference Xu WD, Lai WY, Hu Q, Teng XY, Zhang XW, Huang W (2014) A hydrophilic monodisperse conjugated starburst macromolecule with multidimensional topology as electron transport/injection layer for organic electronics. Polym Chem 5:2942–2950CrossRef Xu WD, Lai WY, Hu Q, Teng XY, Zhang XW, Huang W (2014) A hydrophilic monodisperse conjugated starburst macromolecule with multidimensional topology as electron transport/injection layer for organic electronics. Polym Chem 5:2942–2950CrossRef
27.
go back to reference Ma W, Iyer PK, Gong X, Liu B, Moses D, Bazan GC, Heeger AJ (2005) Water/methanol-soluble conjugated copolymer as an electron-transport layer in polymer light-emitting diodes. Adv Mater 17:274–277CrossRef Ma W, Iyer PK, Gong X, Liu B, Moses D, Bazan GC, Heeger AJ (2005) Water/methanol-soluble conjugated copolymer as an electron-transport layer in polymer light-emitting diodes. Adv Mater 17:274–277CrossRef
28.
go back to reference Niu Y-H, Ma H, Xu Q, Jen AKY (2005) High-efficiency light-emitting diodes using neutral surfactants and aluminum cathode. Appl Phys Lett 86:083504CrossRef Niu Y-H, Ma H, Xu Q, Jen AKY (2005) High-efficiency light-emitting diodes using neutral surfactants and aluminum cathode. Appl Phys Lett 86:083504CrossRef
29.
go back to reference Chen YH, Lei ZF, Zhang XW, Chu SQ, Xu WD, Liu B, Oua CJ, Xiea LH, Fana QL, Lai WY (2016) Efficient blue organic light-emitting devices based on solution-processed starburst macromolecular electron injection layer. J Lumines 170:50–55CrossRef Chen YH, Lei ZF, Zhang XW, Chu SQ, Xu WD, Liu B, Oua CJ, Xiea LH, Fana QL, Lai WY (2016) Efficient blue organic light-emitting devices based on solution-processed starburst macromolecular electron injection layer. J Lumines 170:50–55CrossRef
30.
go back to reference Earmme T, Jenekhe SA (2012) High-performance multilayered phosphorescent OLEDs by solution-processed commercial electron-transport materials. J Mater Chem 20:4660–4668CrossRef Earmme T, Jenekhe SA (2012) High-performance multilayered phosphorescent OLEDs by solution-processed commercial electron-transport materials. J Mater Chem 20:4660–4668CrossRef
31.
go back to reference Wakimoto T, Fukuda Y, Nagayama K, Yokoi A, Nakada H, Tshuchida M (1997) Organic EL cells using alkaline metal compounds as electron injection materials. IEEEE Trans Electron Devices 44:1245–1248CrossRef Wakimoto T, Fukuda Y, Nagayama K, Yokoi A, Nakada H, Tshuchida M (1997) Organic EL cells using alkaline metal compounds as electron injection materials. IEEEE Trans Electron Devices 44:1245–1248CrossRef
32.
go back to reference Ganzorig C, Suga K, Fujihara M (2001) Alkali metal acetates as effective electron injection layers for organic electroluminescent devices. Mater Sci Eng B 85:140–143CrossRef Ganzorig C, Suga K, Fujihara M (2001) Alkali metal acetates as effective electron injection layers for organic electroluminescent devices. Mater Sci Eng B 85:140–143CrossRef
33.
go back to reference Wang D, Wu Y, Bi R, Zhang H, Zhao D (2015) Solution-processed sodium hydroxide as the electron-injection layer in inverted bottom-emission organic light-emitting diodes. J Mater Chem C 3:3922–3927CrossRef Wang D, Wu Y, Bi R, Zhang H, Zhao D (2015) Solution-processed sodium hydroxide as the electron-injection layer in inverted bottom-emission organic light-emitting diodes. J Mater Chem C 3:3922–3927CrossRef
34.
go back to reference Corcoran N, Arias AC, Kim JS, MacKenzie JD, Friend RH (2003) Increased efficiency in vertically segregated thin-film conjugated polymer blends for light-emitting diodes. Appl Phys Lett 82:299–301CrossRef Corcoran N, Arias AC, Kim JS, MacKenzie JD, Friend RH (2003) Increased efficiency in vertically segregated thin-film conjugated polymer blends for light-emitting diodes. Appl Phys Lett 82:299–301CrossRef
35.
go back to reference Nguyen T-Q, Schwartz BJ (2002) Ionomeric control of interchain interactions, morphology, and the electronic properties of conjugated polymer solutions and films. J Chem Phys 116:8198–8208CrossRef Nguyen T-Q, Schwartz BJ (2002) Ionomeric control of interchain interactions, morphology, and the electronic properties of conjugated polymer solutions and films. J Chem Phys 116:8198–8208CrossRef
36.
go back to reference Ha YE, Jo MY, Park J, Kang Y-C, Moon S-J, Kim JH (2014) Effect of self-assembled monolayer treated ZnO as an electron transporting layer on the photovoltaic properties of inverted type polymer solar cells. Synth Met 187:113–117CrossRef Ha YE, Jo MY, Park J, Kang Y-C, Moon S-J, Kim JH (2014) Effect of self-assembled monolayer treated ZnO as an electron transporting layer on the photovoltaic properties of inverted type polymer solar cells. Synth Met 187:113–117CrossRef
37.
go back to reference Huang F, Shih P-I, Shu C-F, Chi Y, Jen AK-Y (2009) Highly efficient polymer white-light-emitting diodes based on lithium salts doped electron transporting layer. Adv Mater 21:361–365CrossRef Huang F, Shih P-I, Shu C-F, Chi Y, Jen AK-Y (2009) Highly efficient polymer white-light-emitting diodes based on lithium salts doped electron transporting layer. Adv Mater 21:361–365CrossRef
Metadata
Title
Fabrication of efficient polymer light-emitting diodes using water/alcohol soluble poly(vinyl alcohol) doped with alkali metal salts as electron-injection layer
Authors
Cheng-Liang Wu
Cheng-Yi Lin
Yun Chen
Publication date
03-05-2016
Publisher
Springer US
Published in
Journal of Materials Science / Issue 15/2016
Print ISSN: 0022-2461
Electronic ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-016-0011-8

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