| Literature DB >> 21673938 |
Mohamad Saleh Alsalhi1, Javed Alam, Lawrence Arockiasamy Dass, Mohan Raja.
Abstract
A recent advance in the field of light emitting polymers has been the discovery of electroluminescent conjugated polymers, that is, kind of fluorescent polymers that emit light when excited by the flow of an electric current. These new generation fluorescent materials may now challenge the domination by inorganic semiconductor materials of the commercial market in light-emitting devices such as light-emitting diodes (LED) and polymer laser devices. This review provides information on unique properties of conjugated polymers and how they have been optimized to generate these properties. The review is organized in three sections focusing on the major advances in light emitting materials, recent literature survey and understanding the desirable properties as well as modern solid state lighting and displays. Recently, developed conjugated polymers are also functioning as roll-up displays for computers and mobile phones, flexible solar panels for power portable equipment as well as organic light emitting diodes in displays, in which television screens, luminous traffic, information signs, and light-emitting wallpaper in homes are also expected to broaden the use of conjugated polymers as light emitting polymers. The purpose of this review paper is to examine conjugated polymers in light emitting diodes (LEDs) in addition to organic solid state laser. Furthermore, since conjugated polymers have been approved as light-emitting organic materials similar to inorganic semiconductors, it is clear to motivate these organic light-emitting devices (OLEDs) and organic lasers for modern lighting in terms of energy saving ability. In addition, future aspects of conjugated polymers in LEDs were also highlighted in this review.Entities:
Keywords: conjugated polymers; fluorescent polymers; organic light emitting diodes; polymer laser devices; semiconductor
Mesh:
Substances:
Year: 2011 PMID: 21673938 PMCID: PMC3111649 DOI: 10.3390/ijms12032036
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1.Conjugated polymer applications.
Figure 2.Conjugated polymeric light emitting materials.
Recent literature on light emitting conjugated polymers based devices.
| 2011 | Tarver, J. | Organic electronic devices with water-dispersible conducting polymers | Comprehensive Nanoscience and Technology, Chapter 4.14, 413–446. [ |
| 2011 | Antonio, F. | π-Conjugated polymers for organic electronics and photovoltaic cell applications | Chem. Mater. 23, 733–758. [ |
| 2010 | Schumacher, S. | Dynamics of photo excitation and stimulated optical emission in conjugated polymers: A multi scale quantum-chemistry and Maxwell-Bloch-equations approach | Phys. Rev. B 81, 245407–11. [ |
| 2010 | Ebinazar, B.N. | Organic light emitting complementary inverters | Appl. Phys. Lett. 96, 043304–3. [ |
| 2010 | Carlos, S. | Organic semiconductors: A little energy goes a long way | Nature Mater. 9, 884–885. [ |
| 2010 | Cuihong, L. | Three-dimensional conjugated macromolecules as light-emitting materials | Polymer 51, 4273–4294. [ |
| 2010 | Adam, J.M. | Power from plastic | Curr. Opin. Solid State Mater. Sci. 14, 123–130. [ |
| 2010 | Shufen, C. | Recent developments in top-emitting organic light-emitting diodes | Adv. Mater. 22, 5227–5239. [ |
| 2010 | Taeshik, E. | Solution-processed highly efficient blue phosphorescent polymer light-emitting diodes enabled by a new electron transport material | Adv. Mater. 22, 4744–4748. [ |
| 2010 | Tao, R. | Blue phosphorescence materials for organic light-emitting diodes | Prog. Chem. 22, 2215–2227. [ |
| 2010 | Jenny, C. | Organic photonics for communications | Nature. Photon. 4, 438–446. [ |
| 2010 | Neil, W. | Conjugated polymers: Phases go their separate ways | Nature. Chem. June, 748–748. [ |
| 2010 | Shahul, H. | Polymer light emitting diodes —A review on Materials and techniques | Rev. Adv. Mater. Sci. 26, 30–42. [ |
| 2009 | Stefano, T. | Lighting technology: Time to change the bulb | Nature 459, 312–314. [ |
| 2009 | Namdas, E.B. | Low threshold in polymer lasers on conductive substrates by distributed feedback nanoimprinting: Progress toward electrically pumped plastic lasers | Adv. Mater. 21, 799–802. [ |
| 2009 | Hui, J. | Conjugated polyelectrolytes: Synthesis, photophysics, and applications | Angew. Chem. Int. Ed. 48, 4300–4316. [ |
| 2009 | Rachel, A.S. | Block copolymers for organic optoelectronics | Macromolecules 42, 9205–9216. [ |
| 2008 | Daniele, B. | High-performance organic field-effect transistors | Adv. Mater. 21, 1473–1486. [ |
| 2008 | Qi, D.L. | Polymer electronic memories: Materials, devices and mechanisms | Prog. Polym. Sci. 33, 917–978. [ |
| 2008 | Kalinowski, J. | Optical materials for organic light-emitting devices | Opt. Mater. 30, 792–799. [ |
| 2008 | Johannes, K.F. | Poly(arylene vinylene)s | High Perform. Polym. 1, 89–137. [ |
| 2008 | Inamul, H.R. | Recent progress in the development of polymers for white light-emitting polymer devices | Monatsh. Chem. 139, 725–737. [ |
| 2008 | Abouelaoualim, D. | Numerical study of electrical characteristics of conjugated polymer light-emitting diodes | Semiconduct. Phys. Quantum Electron. Optoelectr. 11, 151–153. [ |
| 2008 | Yang, X. | Saturation, relaxation, and dissociation of excited triplet excitons in conjugated polymers | Adv. Mater. 20, 1–4. [ |
| 2008 | Murano, S. | Highly Efficient White PIN OLEDs for Lighting Applications | LED J. 40–41. [ |
| 2008 | Sony, a.b. | a. b. Sony XEL-1:The world’s first OLED TV | |
| 2007 | Samuel, I.D.W. | Organic semiconductor lasers | Chem. Rev. 107, 1272–1295. [ |
| 2006 | Friend, R. | Polymers show they’re metal | Nature 441, 37, 1–1. [ |
| 2006 | Amarasingh, D. | Broadband solid state optical amplifier based on a semiconducting polymer | Appl. Phys. Lett. 89, 2011–2019. [ |
| 2006 | Roger, J.M. | Electrochromic organic and polymeric materials for display applications | Displays 27, 2–18. [ |
| 2005 | Danilo, D. | Electrochemiluminescence from organic emitters | Chem. Mater. 17, 1933–1945. [ |
| 2005 | Service, R.F. | Organic LEDs look forward to a bright, white future | Science 310, 1762–1763. [ |
| 2005 | David, G.L. | Laser-assisted patterning of conjugated polymer light emitting diodes | Org. Electr. 6, 221–228. [ |
| 2005 | Stuart, S. | Case study: Cambridge Display Technology Ltd. | University of Cambridge Centre for Technology Management, pp. 1–19. [ |
| 2004 | Andrade, B.W.D. | White organic light emitting devices for solid state lighting | Adv. Mater. 16, l585–l595. [ |
| 2004 | Kulkarni, A.P. | Electron transport materials for organic light-emitting diodes | Chem. Mater. 16, 4556–4573. [ |
| 2004 | Forrest, S.R. | The path to ubiquitous and low-cost organic electronic appliances on plastic | Nature 428, 911–918. [ |
| 2004 | Josemon, J. | Progress towards stable blue light-emitting polymer | Curr. Appl. Phys. 4, 339–342. [ |
| 2004 | Ifor, D.W.S. | Laser physics: Fantastic plastic | Nature 429, 709–711. [ |
| 2004 | Ifor, D.W.S. | Towards polymer lasers and amplifiers ultrafast photonics | Ultrafast Phot. Taylor & Francis, 291–304. [ |
| 2004 | Hiroyuki, S. | Organic light-emitting materials and devices for optical communication technology | J. Photochem. Photobiol. 166, 155–161. [ |
| 2004 | John, K.B. | Developments in organic displays | Mater. Today 7, 42–46. [ |
| 2004 | Asawapirom, U. | Materials for polymer electronics applications—Semiconducting polymer thin films and nanoparticles | Macromol. Symp. 212, 83–91. [ |
| 2002 | Hong, K.S. | Light-emitting characteristics of conjugated polymers | Adv. Polym. Sci. 158, 193–243. [ |
| 2002 | David, B. | Semiconducting polymer LEDs | Mater. Today 5, 3032–3039. [ |
| 2002 | Hung, L.S. | Recent progress of molecular organic electroluminescent materials and devices | Mater. Sci. Eng. R 39, 143–222. [ |
| 2002 | Köhler, A. | Fluorescence and phosphorescence in organic materials | Adv. Eng. Mater. 4, 453–459. [ |
| 2002 | Brabec, C.J. | A low-bandgap semiconducting polymer for photovoltaic devices and infrared emitting devices | Adv. Funct. Mater. 12, 709–712. [ |
| 2002 | Vander, H.J.W. | Electronic and optical excitations in crystalline conjugated polymers | Phys. Rev. B 66, 035206:1–035206:7. [ |
| 2001 | Heeger, A.J. | Nobel Lecture—Semiconducting and metallic polymers—The fourth generation of polymeric materials | Rev. Modern Phys. 73, 681–700. [ |
| 2001 | McDiarmid, A.G. | Nobel lecture—“Synthetic metals”—a novel role for organic polymers | Rev. Modern Phys. 73, 701–712. [ |
| 2001 | Shirakawa, H. | Nobel lecture: The discovery of polyacetylene film—The dawning of an era of conducting polymers | Rev. Modern Phys. 73, 713–718. [ |
| 2001 | Philip, B. | A happier marriage | Nature, Nature News, 010201–3. [ |
| 2001 | Scherf, U. | Conjugated polymers: Lasing and stimulated emission | Curr. Opin. Solid State Mater. Sci. 5, 143–154. [ |
| 2001 | Friend, R.H. | Conjugated polymers. New materials for optoelectronic devices | Pure Appl. Chem. 73, 425–430. [ |
| 2001 | Lee, C.H. | Photoluminescence and electroluminescence of vacuum-deposited poly(p-phenylene) thin film | Synth. Met. 117, 75–79. [ |
| 2001 | Liming, D. | Effect of forster energy transfer and hole transport layer on performance of polymer light-emitting diodes | Macromolecules 34, 9183–9188. [ |
| 2000 | Philip, B. | Let there be more light | Nature, Nature News, 000217–11. [ |
| 2000 | Kranzelbinder, G. | Organic solid-state lasers | Rep. Prog. Phys. 63, 729–762. [ |
| 2000 | Ullrich, M. | The electroluminescence of organic materials | J. Mater. Chem. 10, 1471–1507. [ |
| 2000 | Tien, Y.L. | Electroluminescent polymeric materials | Curr. Sci. 78, 1352–1357. [ |
| 2000 | Marai, F. | Photoluminescence and electroluminescence investigations in PEPPV and its derivatives | Synth. Met. 114, 255–259. [ |
| 2000 | Markus, G. | Improving the performance of doped π-conjugated polymers for use in organic light-emitting diodes | Nature 405, 661–665. [ |
| 2000 | Sun, R. | High PL quantum efficiency of poly(phenylene vinylene) systems through exciton confinement | Synth. Met. 111–112, 595–602. [ |
| 2000 | Bernius, M.T. | Progress with light-emitting polymers | Adv. Mater. 12, 1737–1750. [ |