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D. B. Mitzi, K. Chondroudis, and C. R. Kagan |
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References
-
D. C. Edelstein, Copper Chip Technology, Proc. SPIEInt. Soc. Opt. Eng. (USA) 3506, 8 (1998).
-
G. P. Crawford, Liquid Crystal Displays, IEEE Potentials 17, 38 (1998).
-
J. Dresner, Double Injection Electroluminescence in Anthracene, RCA Rev. 30, 322 (1969).
-
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).
-
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).
-
(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).
-
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).
-
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).
-
(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).
-
(a) J. Takada, H. Awaji, M. Koshioka, A. Nakajima, and W. A. Nevin, OrganicInorganic Multilayers: A New Concept of Optoelectronic Material, Appl. Phys. Lett. 61, 2184 (1992); (b) J. Takada, OrganicInorganic Hetero Nanosystems as an Approach to Molecular Optoelectronics, Jpn. J. Appl. Phys. 34, 3864 (1995).
-
A. B. Seddon, SolGel Derived OrganicInorganic Hybrid Materials for Photonic Applications, IEEE Proc. Circuits Devices Syst. 145, 369 (1998).
-
M. P. Andrews, An Overview of Sol Gel GuestHost Materials Chemistry for Optical Devices, Proc. SPIEInt. Soc. Opt. Eng. (USA) 2997, 48 (1997).
-
S. Motakef, J. M. Boulton, and D. R. Uhlmann, OrganicInorganic Optical Materials, Opt. Lett. 19, 1125 (1994).
-
C. Roscher, R. Buestrich, P. Dannberg, O. Rösch, and M. Popall, New InorganicOrganic Hybrid Polymers for Integrated Optics, Mater. Res. Soc. Symp. Proc. 519, 239 (1998).
-
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 SolGel Materials: From Solid State Dye Laser to Nonlinear Applications and Organic Photorefractivity, Proc. SPIEInt. Soc. Opt. Eng. (USA) 3469, 164 (1998).
-
C. Sanchez and B. Lebeau, Hybrid OrganicInorganic Materials with Second-Order Optical Nonlinearities Synthesized via SolGel Chemistry, Pure Appl. Opt. 5, 689 (1996).
-
S. Brasselet and J. Zyss, New Routes in Molecular Nonlinear Optics: SolGel Based Hybrid Structures and All Optical Orientation, Proc. SPIEInt. Soc. Opt. Eng. (USA) 3469, 154 (1998).
-
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 SolGel Process: Synthesis, Optical Properties and Photobleaching for Channel Waveguides, Chem. Mater. 11, 779 (1999).
-
T. Dantas de Morais, F. Chaput, K. Lahlil, and J.-P. Boilot, Hybrid OrganicInorganic Light-Emitting Diodes, Adv. Mater. 11, 107 (1999).
-
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).
-
M. Brust, M. Walker, D. Bethell, D. J. Schiffrin, and R. Whyman, Synthesis of Thiol-Derivatised Gold Nanoparticles in a Two-Phase LiquidLiquid System, J. Chem. Soc., Chem. Commun., p. 801 (1994).
-
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).
-
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).
-
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 MetalInsulator Transition, Science 277, 1978 (1997).
-
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).
-
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).
-
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).
-
D. B. Mitzi, Synthesis, Structure, and Properties of OrganicInorganic Perovskites and Related Materials, in Progress in Inorganic Chemistry, Vol. 48, John Wiley & Sons, Inc., New York, 1999, p. 1.
-
D. B. Mitzi, OrganicInorganic Perovskites Containing Trivalent Metal Halide Layers: The Templating Influence of the Organic Cation Layer, Inorg. Chem. 39, 6107 (2000).
-
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).
-
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).
-
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).
-
D. B. Mitzi, S. Wang, C. A. Feild, C. A. Chess, and A. M. Guloy, Conducting Layered OrganicInorganic Halides Containing <110>-Oriented Perovskite Sheets, Science 267, 1473 (1995).
-
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).
-
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).
-
D. B. Mitzi, Synthesis, Crystal Structure, and Optical and Thermal Properties of (C4H9NH3)2MI4 (M = Ge, Sn, Pb), Chem. Mater. 8, 791 (1996).
-
X. Hong, T. Ishihara, and A. V. Nurmikko, Dielectric Confinement Effect on Excitons in PbI4-Based Layered Semiconductors, Phys. Rev. B 45, 6961 (1992).
-
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).
-
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).
-
D. B. Mitzi, K. Chondroudis, and C. R. Kagan, Design, Structure, and Optical Properties of OrganicInorganic Perovskites Containing an Oligothiophene Chromophore, Inorg. Chem. 38, 6246 (1999).
-
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).
-
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).
-
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).
-
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).
-
B. Tieke and G. Chapuis, Solid State Polymerization of Butadienes in Layer Structures, Mol. Cryst. Liq. Cryst. 137, 101 (1986).
-
P. Day and R. D. Ledsham, OrganicInorganic Molecular Composites as Possible Low-Dimensional Conductors: Photo-Polymerization of Organic Moieties Intercalated in Inorganic Layer Compounds, Mol. Cryst. Liq. Cryst. 86, 163 (1982).
-
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).
-
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).
-
D. B. Mitzi, M. T. Prikas, and K. Chondroudis, Thin Film Deposition of OrganicInorganic Hybrid Materials Using a Single Source Thermal Ablation Technique, Chem. Mater. 11, 542 (1999).
-
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).
-
K. Liang, D. B. Mitzi, and M. T. Prikas, Synthesis and Characterization of OrganicInorganic Perovskite Thin Films Prepared Using a Versatile Two-Step Dipping Technique, Chem. Mater. 10, 403 (1998).
-
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).
-
M. Era, S. Morimoto, T. Tsutsui, and S. Saito, OrganicInorganic Heterostructure Electroluminescent Device Using a Layered Perovskite Semiconductor (C6H5C2H4NH3)2PbI4, Appl. Phys. Lett. 65, 676 (1994).
-
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).
-
K. Chondroudis and D. B. Mitzi, Electroluminescence from an OrganicInorganic Perovskite Incorporating a Quaterthiophene Dye Within Lead Halide Perovskite Layers, Chem. Mater. 11, 3028 (1999).
-
W. Rie, H. Riel, P. F. Seidler, and H. Vestweber, OrganicInorganic Multilayer Structures: A Novel Route to Highly Efficient Organic Light-Emitting Diodes, Synth. Met. 99, 213 (1999).
-
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).
-
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).
-
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).
-
S. Rentsch, J. P. Yang, W. Paa, E. Birckner, J. Schiedt, and R. Weinkauf, Size Dependence of Triplet and Singlet States of
-Oligothiophenes, Phys. Chem. Chem. Phys. 1, 1707 (1999).
-
D. Grebner, M. Helbig, and S. Rentsch, Size-Dependent Properties of Oligothiophenes by Picosecond Time-Resolved Spectroscopy, J. Phys. Chem. 99, 16991 (1995).
-
T. Gebauer and G. Schmid, InorganicOrganic Hybrid Structured LED's, Z. Anorg. Allg. Chem. 625, 1124 (1999).
-
C. R. Kagan, D. B. Mitzi, and C. Dimitrakopoulos, OrganicInorganic Hybrid Materials as Semiconducting Channels in Thin-Film Field-Effect Transistors, Science 286, 945 (1999).
-
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).
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