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Volume 45, Number 1, 2001
Organic electronics
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Organic-inorganic electronics - References

by D. B. Mitzi, K. Chondroudis, and C. R. Kagan

References

  1. D. C. Edelstein, “Copper Chip Technology,” Proc. SPIE—Int. Soc. Opt. Eng. (USA) 3506, 8 (1998).
  2. G. P. Crawford, “Liquid Crystal Displays,” IEEE Potentials 17, 38 (1998).
  3. J. Dresner, “Double Injection Electroluminescence in Anthracene,” RCA Rev. 30, 322 (1969).
  4. T. Wakimoto, H. Ochi, S. Kawami, H. Ohata, K. Nagayama, R. Murayama, Y. Okuda, H. Nakada, T. Tohma, T. Naito, and H. Abiko, “Dot-Matrix Display Using Organic Light-Emitting Diodes,” J. Soc. Info. Display 5, 235 (1997).
  5. S. E. Shaheen, G. E. Jabbour, B. Kippelen, N. Peyghambarian, J. D. Anderson, S. R. Marder, N. R. Armstrong, E. Bellmann, and R. H. Grubbs, “Organic Light-Emitting Diode with 20 lm/W Efficiency Using a Triphenyldiamine Side-Group Polymer as the Hole Transport Layer,” Appl. Phys. Lett. 74, 3212 (1999).
  6. (a) M. A. Baldo, S. Lamansky, P. E. Burrows, M. E. Thompson, and S. R. Forrest, “Very High-Efficiency Green Organic Light-Emitting Devices Based on Electrophosphorescence,” Appl. Phys. Lett. 75, 4 (1999); (b) T. Tsutsui, M.-J. Yang, M. Yahiro, K. Nakamura, T. Watanabe, T. Tsuji, Y. Fukuda, T. Wakimoto, and S. Miyaguchi, “High Quantum Efficiency in Organic Light-Emitting Devices with Iridium-Complex as a Triplet Emissive Center,” Jpn. J. Appl. Phys. 38, L1502 (1999).
  7. S. F. Nelson, Y. Y. Lin, D. J. Gundlach, and T. N. Jackson, “Temperature-Independent Transport in High-Mobility Pentacene Transistors,” Appl. Phys. Lett. 72, 1854 (1998).
  8. C. D. Dimitrakopoulos, S. Purushothaman, J. Kymissis, A. Callegari, and J. M. Shaw, “Low-Voltage Organic Transistors on Plastic Comprising High-Dielectric Constant Gate Insulators,” Science 283, 822 (1999).
  9. (a) G. Gustafsson, Y. Cao, G. M. Treacy, F. Klavetter, N. Colaneri, and A. J. Heeger, “Flexible Light-Emitting Diodes Made from Soluble Conducting Polymers,” Nature 357, 477 (1992); (b) F. Garnier, R. Hajlaoui, A. Yassar, and P. Srivastava, “All-Polymer Field-Effect Transistor Realized by Printing Techniques,” Science 265, 1684 (1994).
  10. (a) J. Takada, H. Awaji, M. Koshioka, A. Nakajima, and W. A. Nevin, “Organic–Inorganic Multilayers: A New Concept of Optoelectronic Material,” Appl. Phys. Lett. 61, 2184 (1992); (b) J. Takada, “Organic–Inorganic Hetero Nanosystems as an Approach to Molecular Optoelectronics,” Jpn. J. Appl. Phys. 34, 3864 (1995).
  11. A. B. Seddon, “Sol–Gel Derived Organic–Inorganic Hybrid Materials for Photonic Applications,” IEEE Proc. Circuits Devices Syst. 145, 369 (1998).
  12. M. P. Andrews, “An Overview of Sol Gel Guest–Host Materials Chemistry for Optical Devices,” Proc. SPIE—Int. Soc. Opt. Eng. (USA) 2997, 48 (1997).
  13. S. Motakef, J. M. Boulton, and D. R. Uhlmann, “Organic–Inorganic Optical Materials,” Opt. Lett. 19, 1125 (1994).
  14. C. Roscher, R. Buestrich, P. Dannberg, O. Rösch, and M. Popall, “New Inorganic–Organic Hybrid Polymers for Integrated Optics,” Mater. Res. Soc. Symp. Proc. 519, 239 (1998).
  15. M. Canva, B. Darracq, F. Chaput, K. Lahlil, F. Bentivegna, M. Brunel, M. Falloss, P. Georges, A. Brun, J.-P. Boilot, and Y. Lévy, “Functionalized Dye-Doped Hybrid Sol–Gel Materials: From Solid State Dye Laser to Nonlinear Applications and Organic Photorefractivity,” Proc. SPIE—Int. Soc. Opt. Eng. (USA) 3469, 164 (1998).
  16. C. Sanchez and B. Lebeau, “Hybrid Organic–Inorganic Materials with Second-Order Optical Nonlinearities Synthesized via Sol–Gel Chemistry,” Pure Appl. Opt. 5, 689 (1996).
  17. S. Brasselet and J. Zyss, “New Routes in Molecular Nonlinear Optics: Sol–Gel Based Hybrid Structures and All Optical Orientation,” Proc. SPIE—Int. Soc. Opt. Eng. (USA) 3469, 154 (1998).
  18. H. K. Kim, S.-J. Kang, S.-K. Choi, Y.-H. Min, and C.-S. Yoon, “Highly Efficient Organic/Inorganic Hybrid Nonlinear Optic Materials via Sol–Gel Process: Synthesis, Optical Properties and Photobleaching for Channel Waveguides,” Chem. Mater. 11, 779 (1999).
  19. T. Dantas de Morais, F. Chaput, K. Lahlil, and J.-P. Boilot, “Hybrid Organic–Inorganic Light-Emitting Diodes,” Adv. Mater. 11, 107 (1999).
  20. For an example, see C. B. Murray, D. J. Norris, and M. G. Bawendi, “Synthesis and Characterization of Nearly Monodisperse CdE (E = S, Se, Te) Semiconductor Nanocrystallites,” J. Amer. Chem. Soc. 115, 8706 (1993).
  21. M. Brust, M. Walker, D. Bethell, D. J. Schiffrin, and R. Whyman, “Synthesis of Thiol-Derivatised Gold Nanoparticles in a Two-Phase Liquid–Liquid System,” J. Chem. Soc., Chem. Commun., p. 801 (1994).
  22. C. B. Murray, C. R. Kagan, and M. G. Bawendi, “Self-Organization of CdSe Nanocrystallites into Three-Dimensional Quantum Dot Superlattices,” Science 270, 1335 (1995).
  23. C. R. Kagan, C. B. Murray, and M. G. Bawendi, “Long-Range Resonance Transfer of Electronic Excitations in Close Packed CdSe Quantum-Dot Solids,” Phys. Rev. B 54, 8633 (1996).
  24. C. P. Collier, R. J. Saykally, J. J. Shiang, S. E. Henrichs, and J. R. Heath, “Reversible Tuning of Silver Quantum Dot Monolayers Through the Metal–Insulator Transition,” Science 277, 1978 (1997).
  25. V. Colvin, M. C. Schlamp, and A. P. Alivisatos, “Light-Emitting Diodes Made from Cadmium Selenide Nanocrystals and a Semiconducting Polymer,” Nature 370, 354 (1994).
  26. B. O. Dabbousi, M. G. Bawendi, O. Onitsuka, and M. F. Rubner, “Electroluminescence from CdSe Quantum-Dot/Polymer Composites,” Appl. Phys. Lett. 66, 1316 (1995).
  27. M. C. Schlamp, X. Peng, and A. P. Alivisatos, “Improved Efficiencies in Light Emitting Diodes Made with CdSe(CdS) Core/Shell Type Nanocrystals and a Semiconducting Polymer,” J. Appl. Phys. 82, 5837 (1997).
  28. D. B. Mitzi, “Synthesis, Structure, and Properties of Organic–Inorganic Perovskites and Related Materials,” in Progress in Inorganic Chemistry, Vol. 48, John Wiley & Sons, Inc., New York, 1999, p. 1.
  29. D. B. Mitzi, “Organic–Inorganic Perovskites Containing Trivalent Metal Halide Layers: The Templating Influence of the Organic Cation Layer,” Inorg. Chem. 39, 6107 (2000).
  30. D. B. Mitzi, “(Phenethylammonium)2Csn-1SnnI3n+1 (n = 1 to 3): A New Class of Conducting Layered Organic/Inorganic Perovskites,” Bull. Amer. Phys. Soc. 38, 116 (1993).
  31. D. B. Mitzi, C. A. Feild, W. T. A. Harrison, and A. M. Guloy, “Conducting Tin Halides with a Layered Organic-Based Perovskite Structure,” Nature 369, 467 (1994).
  32. J. Calabrese, N. L. Jones, R. L. Harlow, N. Herron, D. L. Thorn, and Y. Wang, “Preparation and Characterization of Layered Lead Halide Compounds,” J. Amer. Chem. Soc. 113, 2328 (1991).
  33. D. B. Mitzi, S. Wang, C. A. Feild, C. A. Chess, and A. M. Guloy, “Conducting Layered Organic–Inorganic Halides Containing <110>-Oriented Perovskite Sheets,” Science 267, 1473 (1995).
  34. S. Wang, D. B. Mitzi, C. A. Feild, and A. Guloy, “Synthesis and Characterization of [NH2C(I)=NH2]3MI5 (M = Sn, Pb): Stereochemical Activity in Divalent Tin and Lead Halides Containing Single <110> Perovskite Sheets,” J. Amer. Chem. Soc. 117, 5297 (1995).
  35. G. C. Papavassiliou and I. B. Koutselas, “Structural, Optical and Related Properties of Some Natural Three- and Lower-Dimensional Semiconductor Systems,” Synth. Met. 71, 1713 (1995).
  36. D. B. Mitzi, “Synthesis, Crystal Structure, and Optical and Thermal Properties of (C4H9NH3)2MI4 (M = Ge, Sn, Pb),” Chem. Mater. 8, 791 (1996).
  37. X. Hong, T. Ishihara, and A. V. Nurmikko, “Dielectric Confinement Effect on Excitons in PbI4-Based Layered Semiconductors,” Phys. Rev. B 45, 6961 (1992).
  38. T. Fujita, Y. Sato, T. Kuitani, and T. Ishihara, “Tunable Polariton Absorption of Distributed Feedback Microcavities at Room Temperature,” Phys. Rev. B 57, 12428 (1998).
  39. D. B. Mitzi, C. A. Feild, Z. Schlesinger, and R. B. Laibowitz, “Transport, Optical, and Magnetic Properties of the Conducting Halide Perovskite CH3NH3SnI3,” J. Solid State Chem. 114, 159 (1995).
  40. D. B. Mitzi, K. Chondroudis, and C. R. Kagan, “Design, Structure, and Optical Properties of Organic–Inorganic Perovskites Containing an Oligothiophene Chromophore,” Inorg. Chem. 38, 6246 (1999).
  41. M. Era, K. Maeda, and T. Tsutsui, “PbBr-Based Layered Perovskite Containing Chromophore-Linked Ammonium Molecule as an Organic Layer,” Chem. Lett., p. 1235 (1997).
  42. M. Braun, W. Tuffentsammer, H. Wachtel, and H. C. Wolf, “Tailoring of Energy Levels in Lead Chloride Based Layered Perovskites and Energy Transfer Between the Organic and Inorganic Planes,” Chem. Phys. Lett. 303, 157 (1999).
  43. B. Servet, G. Horowitz, S. Ries, O. Lagorsse, P. Alnot, A. Yassar, F. Deloffre, P. Srivastava, R. Hajlaoui, P. Lang, and F. Garnier, “Polymorphism and Charge Transport in Vacuum-Evaporated Sexithiophene Films,” Chem. Mater. 6, 1809 (1994).
  44. F. Garnier, A. Yassar, R. Hajlaoui, G. Horowitz, F. Deloffre, B. Servet, S. Ries, and P. Alnot, “Molecular Engineering of Organic Semiconductors: Design of Self-Assembly Properties in Conjugated Thiophene Oligomers,” J. Amer. Chem. Soc. 115, 8716 (1993).
  45. B. Tieke and G. Chapuis, “Solid State Polymerization of Butadienes in Layer Structures,” Mol. Cryst. Liq. Cryst. 137, 101 (1986).
  46. P. Day and R. D. Ledsham, “Organic–Inorganic Molecular Composites as Possible Low-Dimensional Conductors: Photo-Polymerization of Organic Moieties Intercalated in Inorganic Layer Compounds,” Mol. Cryst. Liq. Cryst. 86, 163 (1982).
  47. H. Arend, W. Huber, F. H. Mischgofsky, and G. K. Richter-van Leeuwen, “Layered Perovskites of the (CnH2n+1NH3)2MX4 and NH3(CH2)mNH3MX4 Families with M = Cd, Cu, Fe, Mn, or Pd and X = Cl or Br: Importance, Solubilities and Simple Growth Techniques,” J. Cryst. Growth 43, 213 (1978).
  48. M. Era, T. Hattori, T. Taira, and T. Tsutsui, “Self-Organized Growth of PbI-Based Layered Perovskite Quantum Well by Dual-Source Vapor Deposition” Chem. Mater. 9, 8 (1997).
  49. D. B. Mitzi, M. T. Prikas, and K. Chondroudis, “Thin Film Deposition of Organic–Inorganic Hybrid Materials Using a Single Source Thermal Ablation Technique,” Chem. Mater. 11, 542 (1999).
  50. K. Chondroudis and D. B. Mitzi, “Effect of Thermal Annealing on the Optical and Morphological Properties of (AETH)PbX4 (X = Br, I) Perovskite Films Prepared Using Single Source Thermal Ablation,” Chem. Mater. 12, 169 (2000).
  51. K. Liang, D. B. Mitzi, and M. T. Prikas, “Synthesis and Characterization of Organic–Inorganic Perovskite Thin Films Prepared Using a Versatile Two-Step Dipping Technique,” Chem. Mater. 10, 403 (1998).
  52. X. Hong, T. Ishihara, and A. V. Nurmikko, “Photoconductivity and Electroluminescence in Lead Iodide Based Natural Quantum Well Structures,” Solid State Commun. 84, 657 (1992).
  53. M. Era, S. Morimoto, T. Tsutsui, and S. Saito, “Organic–Inorganic Heterostructure Electroluminescent Device Using a Layered Perovskite Semiconductor (C6H5C2H4NH3)2PbI4,” Appl. Phys. Lett. 65, 676 (1994).
  54. T. Hattori, T. Taira, M. Era, T. Tsutsui, and S. Saito, “Highly Efficient Electroluminescence from a Heterostructure Device Combined with Emissive Layered-Perovskite and an Electron-Transporting Organic Compound,” Chem. Phys. Lett. 254, 103 (1996).
  55. K. Chondroudis and D. B. Mitzi, “Electroluminescence from an Organic–Inorganic Perovskite Incorporating a Quaterthiophene Dye Within Lead Halide Perovskite Layers,” Chem. Mater. 11, 3028 (1999).
  56. W. Rie, H. Riel, P. F. Seidler, and H. Vestweber, “Organic–Inorganic Multilayer Structures: A Novel Route to Highly Efficient Organic Light-Emitting Diodes,” Synth. Met. 99, 213 (1999).
  57. Y. Kuwabara, H. Ogawa, H. Inada, N. Noma, and Y. Shirota, “Thermally Stable Multilayered Organic Electroluminescence Devices Using Novel Starburst Molecules, 4,4',4"-Tri(N-carbazolyl)triphenylamine (TCTA) and 4,4',4"-Tris(3-methylphenyl-phenylamino)triphenylamine (m-MTDATA), as Hole-Transport Materials,” Adv. Mater. 6, 677 (1994).
  58. K. Uchiyama, H. Akimichi, S. Hotta, H. Noge, and H. Sakaki, “Electroluminescence from Thin Film of a Semiconducting Oligothiophene Deposited in Ultrahigh Vacuum,” Synth. Met. 63, 57 (1994).
  59. G. Horowitz, P. Delannoy, H. Bouchriha, F. Deloffre, J.-L. Fave, F. Garnier, R. Hajlaoui, M. Heyman, F. Kouki, P. Valat, V. Wintgens, and A. Yassar, “Two-Layer Light-Emitting Diodes Based on Sexithiophene and Derivatives,” Adv. Mater. 6, 752 (1994).
  60. S. Rentsch, J. P. Yang, W. Paa, E. Birckner, J. Schiedt, and R. Weinkauf, “Size Dependence of Triplet and Singlet States of alpha-Oligothiophenes,” Phys. Chem. Chem. Phys. 1, 1707 (1999).
  61. D. Grebner, M. Helbig, and S. Rentsch, “Size-Dependent Properties of Oligothiophenes by Picosecond Time-Resolved Spectroscopy,” J. Phys. Chem. 99, 16991 (1995).
  62. T. Gebauer and G. Schmid, “Inorganic–Organic Hybrid Structured LED's,” Z. Anorg. Allg. Chem. 625, 1124 (1999).
  63. C. R. Kagan, D. B. Mitzi, and C. Dimitrakopoulos, “Organic–Inorganic Hybrid Materials as Semiconducting Channels in Thin-Film Field-Effect Transistors,” Science 286, 945 (1999).
  64. J. Pecaut, Y. Le Fur, and R. Masse, “Crystal Engineering and Structural Investigations of the 2-Amino-5-Nitropyridinium Salts C5H6N3O2+ • HSO4- and C5H6N3O2+ • H2AsO4,” Acta Crystallogr. B 49, 535 (1993).