• Frontiers of Optoelectronics
  • Vol. 7, Issue 1, 20 (2014)
Furong ZHU*
Author Affiliations
  • Department of Physics and Institute of Advanced Materials, Hong Kong Baptist University, Hong Kong, China
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    DOI: 10.1007/s12200-014-0395-5 Cite this Article
    Furong ZHU. Semitransparent organic solar cells[J]. Frontiers of Optoelectronics, 2014, 7(1): 20 Copy Citation Text show less
    References

    [1] Ginley D S, Green M A, Collins R T. Solar energy conversion toward 1 terawatt. Mrs Bulletin, 2008, 33(4): 355-364

    [2] Slaoui A, Collins R T. Advanced inorganic materials for photovoltaics. Mrs Bulletin, 2007, 32(3): 211-218

    [3] Tang C W, VanSlyke S A. Organic electroluminescent diodes. Applied Physics Letters, 1987, 51(12): 913-915

    [4] Burroughs J H, Bradley D D C, Brown A R, Marks R N, MacKay K, Friend R H, Burn P L, Holmes A B. Light-emitting diodes based on conjugated polymers. Nature, 1990, 347(6293): 593-541

    [5] Li Y Q, Tan L W, Hao X T, Ong K S, Zhu F R, Hung L S. Flexible top-emitting electroluminescent devices on polyethylene terephthalate substrates. Applied Physics Letters, 2005, 86(15): 153508-1-153508-3

    [6] Bao Z A, Dodabalapur A, Lovinger A J. Soluble and processable regioregular poly(3-hexylthiophene) for thin film field-effect transistor applications with high mobility. Applied Physics Letters, 1996, 69(26): 4108-4110

    [7] Moller S, Perlov C, Jackson W, Taussig C, Forrest S R. A polymer/semiconductor write-once read-many-times memory. Nature, 2003, 426(6963): 166-169

    [8] Peumans P, Yakimov A, Forrest S R. Small molecular weight organic thin-film photodetectors and solar cells. Journal of Applied Physics, 2003, 93(7): 3693-3723

    [9] Tang C W. Two-layer organic photovoltaic cell. Applied Physics Letters, 1986, 48(2): 183-185

    [10] Shah A, Torres P, Tscharner R, Wyrsch N, Keppner H. Photovoltaic technology: the case for thin-film solar cells. Science, 1999, 285(5428): 692-698

    [11] Yu G, Gao J, Wudl F, Heeger A J. Polymer photovoltaic cells: enhanced efficiencies via a network of internal donor-acceptor heterojunctions. Science, 1995, 270(5243): 1789-1791

    [12] Halls J J M, Walsh C A, Greenham N C, Friend R H, Holmes A B. Efficient photodiodes from interpenetrating polymer networks. Nature, 1995, 376(6540): 498-500

    [13] Tsuzuki T, Shirota Y, Meissner D. The effect of fullerene doping on photoelectric conversion using titanyl phthalocyanine and a perylene pigment. Solar Energy Materials and Solar Cells, 2000, 61(1): 1-8

    [14] Zhang F, Svensson M, Inganas O. Soluble polythiophenes with pendant fullerene groups as double cable materials for photodiodes. Advanced Materials, 2001, 13(24): 1871-1874

    [15] Kietzke T, Neher D, Landfester K, Montenegro R, Güntner R, Scherf U. Novel approaches to polymer blends based on polymer nanoparticles. Nature Materials, 2003, 2(6): 408-412

    [16] Marks R N, Halls J J M, Bradley D D C, Friend R H, Holmes A B. The photovoltaic response in poly(p-phenylene vinylene) thin-film devices. Journal of Physics Condensed Matter, 1994, 6(7): 1379-1394

    [17] Barth S, Bassler H, Rost H, Horhold H H. Intrinsic photoconduction in PPV-type conjugated polymers. Physical Review Letters, 1997, 79(22): 4445-4448

    [18] Miranda P B, Moses D, Heeger A J. Ultrafast photogeneration of charged polarons in conjugated polymers. Physical Review B: Condensed Matter and Materials Physics, 2001, 64(8): 81201-1-81201-4

    [19] Brabec C J, Zerza G, Cerullo G, De Silvestri S, Luzzati S, Hummele J C, Sariciftci N S. Tracing photoinduced electron transfer process in conjugated polymer/fullerene bulk heterojunctions in real time. Chemical Physics Letters, 2001, 340(3-4): 232-236

    [20] Orenstein J. In: Skotheim T J, ed. Handbook on Conducting Polymers, Vol 2, p1297; or Kuzmany H, Mehring M, Roth S, eds. Springer Series in Solid State Sciences 76, Electronic Properties of Conjugated Polymers

    [21] Vardeny Z, Tauc J. Method for direct determination of the effective correlation energy of defects in semiconductors: optical modulation spectroscopy of dangling bonds. Physical Review Letters, 1985, 54(16): 1844-1847

    [22] Vardeny Z, Ehrenfreund E, Brafman O, Nowak M, Schaffer H, Heeger A J, Wudl F. Photogeneration of confined soliton pairs (bipolarons) in polythiophene. Physical Review Letters, 1986, 56(6): 671-674

    [23] Osterbacka R, An C P, Jiang X M, Vardeny Z V. Two-dimensional electronic excitations in self-assembled conjugated polymer nanocrystals. Science, 2000, 287(5454): 839-842

    [24] Jiang X M, Osterbacka R, Korovyanko O, An C P, Horovitz B, Janssen R A J, Vardeny Z V. Spectroscopic studies of photoexcitations in regioregular and regiorandom polythiophene films. Advanced Functional Materials, 2002, 12(9): 587-597

    [25] De S, Pascher T, Maiti M, Jespersen K G, Kesti T, Zhang F, Inganas O, Yartsev A, Sundstrom V. Geminate charge recombination in alternating polyfluorene copolymer/fullerene blends. Journal of the American Chemical Society, 2007, 129(27): 8466-8472

    [26] Brabec C J, Zerza G, Cerullo G, De Silvestri S, Luzzati S, Hummelen J C, Sariciftci S. Tracing photoinduced electron transfer process in conjugated polymer/fullerene bulk heterojunctions in real time. Chemical Physics Letters, 2001, 340(3-4): 232-236

    [27] Clarke T, Ballantyne A, Jamieson F, Brabec C, Nelson J, Durrant J. Transient absorption spectroscopy of charge photogeneration yields and lifetimes in a low bandgap polymer/fullerene film. Chemical Communications (Cambridge), 2009, 1(1): 89-91

    [28] Hwang I W, Moses D, Heeger A J. Photoinduced carrier generation in P3HT/PCBM bulk heterojunction materials. Journal of Physical Chemistry C, 2008, 112(11): 4350-4354

    [29] Hwang IW, Soci C, Moses D, Zhu Z,Waller D, Gaudiana R, Brabex C J, Heeger A J. Ultrafast electron transfer and decay dynamics in a small band gap bulk heterojunction material. Advanced Materials, 2007, 19(17): 2307-2312

    [30] Clarke T M, Ballantyne A M, Nelson J, Bradley D D C, Durrant J. Free energy control of charge photogeneration in polythiophene/fullerene solar cells: the influence of thermal annealing on P3HT/PCBM blends. Advanced Functional Materials, 2008, 18(24): 4029-4035

    [31] Saricifci N S, Smilowitz L, Heeger A J, Wudi F. Photoinduced electron transfer from a conducting polymer to buckminsterfullerene. Science, 1994, 258(5087): 1474-1476

    [32] Peet J, Kim J Y, Coates N E, Ma W L, Moses D, Heeger A J, Bazan GC. Efficiency enhancement in low-bandgap polymer solar cells by processing with alkane dithiols. Nature Materials, 2007, 6(7): 497-500

    [33] Wang X Z, Tam H L, Yong K S, Chen Z K, Zhu F R. High performance optoelectronic device based on semitransparent organic photovoltaic cell integrated with organic light-emitting diode. Organic Electronics, 2011, 12(8): 1429-1433