Download Electrical Characterization of Organic Electronic Mtls and by P. Stallinga PDF

By P. Stallinga

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By P. Stallinga

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Extra resources for Electrical Characterization of Organic Electronic Mtls and Devices

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S. (1955). Electronic population analysis on LCAO-MO molecular wave functions. I, J. Chem. , 23, 10, 1833–1840. , and Lennartz, C. (2008). Atomistic simulation on charge mobility of amorphous tris(8-hydroxyquinoline) aluminum (Alq3): origin of Poole-Frenkel-type behavior, J. Chem. , 129, 3, 034709–9. , and Zhao, Y. (2009). Nuclear tunneling effects of charge transport in rubrene, tetracene, and pentacene, Phys. Rev. B, 79, 11, 115203–9. , Kwiatkowski, J. , and Frost, J. M. (2009). Modeling charge transport in organic photovoltaic materials, Acc.

Calculation of the vibrationally non-relaxed photo-induced electron transfer rate constant in dye-sensitized solar cells, Phys. Chem. Chem. , 9, 7, 853–861. , Chow, T. -I. (2008). Hydroxynaphthyridine­-derived group III metal chelates: Wide band gap and deep blue analogues of green Alq3 (tris(8hydroxyquinolate)aluminum) and their versatile applications for organic light-emitting diodes, J. Am. Chem. , 131, 2, 763–777. Lin, B. , Cheng, C. , and Lao, Z. P. M. (2003). Reorganization energies in the transports of holes and electrons in organic amines in organic electroluminescence studied by density functional theory, J.

Current rectification was also observed for the p–n junction nanoribbons under simulated solar light. 5 Solution Process The fabrication of organic micro/nanomaterials in solution through the spontaneous self-assembly of molecules is called solution process. Considering that physical vapor transport requires high temperature, complex facilities and only workable for molecules with low molecular weight, solution-process is a low-cost, more convenient method and can be used for large-area fabrication.

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