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- W2255131253 abstract "Nonlinear optics is a fast developing area driven by the ever increasing demands of active signal processing. Optical computing, switching or communication systems tend to operate at higher transmission rates, and solutions avoiding time consuming operations such as electron-photon or the reverse photon-electron conversions are actively sought. The concept of an “all-optical” system, making no use of purely electronic semiconductor-based signal processing is therefore very appealing [1]. Its development is highly dependent on the invention of new materials endowed with an enhanced nonlinear efficiency and adequately utilized in socalled nonlinear devices. One approach is to make use of the remarkable dielectric and optical properties of III–V compound semiconductors [2], Such structures as Multiple Quantum Wells (MQW) represent the ultimate achievement in this field: the band structure of bulk semiconductor materials can be manipulated at the microscopic level so as to enhance the nonlinearity of the resulting device by successive epitaxial deposition of ultra thin layers of adequately alloyed III–V materials. The strategy is clearly here to move from physically well understood and technologically well mastered bulk structures on to properly engineered structures at the layer level. Conversely, organic chemistry, resting on a century of scientific achievements, offers unlimited possibilities, by means of organic synthesis to adjust the properties of molecules to specific physical requirements provided that “molecular engineering” rules are well established [3]." @default.
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- W2255131253 date "1988-01-01" @default.
- W2255131253 modified "2023-10-18" @default.
- W2255131253 title "From Quantum Chemistry to Organic Optical Signal Processing: a Computer-Aided Molecular Engineering Approach" @default.
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- W2255131253 doi "https://doi.org/10.1007/978-94-009-2851-0_21" @default.
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