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Organic Electronics
Details
Dear Readers, Since the ground-breaking, Nobel-prize crowned work of Heeger, MacDiarmid, and Shirakawa on molecularly doped polymers and polymers with an alternating bonding structure at the end of the 1970s, the academic and industrial research on hydrocarbon-based semiconducting materials and devices has made encouraging progress. The strengths of semiconducting polymers are currently mainly unfolding in cheap and easily assembled thin ?lm transistors, light emitting diodes, and organic solar cells. The use of so-called plastic chips ranges from lightweight, portable devices over large-area applications to gadgets demanding a degree of mechanical ?exibility, which would overstress conventionaldevices based on inorganic,perfect crystals. The ?eld of organic electronics has evolved quite dynamically during the last few years; thus consumer electronics based on molecular semiconductors has gained suf?cient market attractiveness to be launched by the major manufacturers in the recent past. Nonetheless, the numerous challenges related to organic device physics and the physics of ordered and disordered molecular solids are still the subjects of a cont- uing lively debate. The future of organic microelectronics will unavoidably lead to new devi- physical insights and hence to novel compounds and device architectures of - hanced complexity. Thus, the early evolution of predictive models and precise, computationally effective simulation tools for computer-aided analysis and design of promising device prototypes will be of crucial importance.
Highest Impact Factor of all publications ranked by ISI within Polymer Science Short and concise reports on physics and chemistry of polymers, each written by the world renowned experts Still valid and useful after 5 or 10 years The electronic version is available free of charge for standing order customers at: springer.com/series/12/ Includes supplementary material: sn.pub/extras
Inhalt
Description of Charge Transport in Disordered Organic Materials.- Drift Velocity and Drift Mobility Measurement in Organic Semiconductors Using Pulse Voltage.- Effective Temperature Models for the Electric Field Dependence of Charge Carrier Mobility in Tris(8-hydroxyquinoline) Aluminum.- Bio-Organic Optoelectronic Devices Using DNA.- Comparison of Simulations of Lipid Membranes with Membranes of Block Copolymers.- Low-Cost Submicrometer Organic Field-Effect Transistors.- Organic Field-Effect Transistors for CMOS Devices.- Biomimetic Block Copolymer Membranes.- Steady-State Photoconduction in Amorphous Organic Solids.- Charge Transport in Organic Semiconductor Devices.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783642261428
- Auflage 2010
- Editor Tibor Grasser, Gregor Meller
- Sprache Englisch
- Genre Maschinenbau
- Lesemotiv Verstehen
- Anzahl Seiten 344
- Größe H235mm x B155mm x T19mm
- Jahr 2012
- EAN 9783642261428
- Format Kartonierter Einband
- ISBN 3642261426
- Veröffentlichung 14.03.2012
- Titel Organic Electronics
- Untertitel Advances in Polymer Science 223
- Gewicht 522g
- Herausgeber Springer Berlin Heidelberg