Terahertz spectroscopy and technology
http://dbpedia.org/resource/Terahertz_spectroscopy_and_technology
Die Terahertz-Spektroskopie, auch Submillimeterwellen-, Ferninfrarot- oder far-IR-Spektroskopie genannt, untersucht die Wechselwirkung von Materie mit elektromagnetischen Wellen im Terahertzbereich (Terahertzstrahlung).
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Terahertz spectroscopy detects and controls properties of matter with electromagnetic fields that are in the frequency range between a few hundred gigahertz and several terahertz (abbreviated as THz). In many-body systems, several of the relevant states have an energy difference that matches with the energy of a THz photon. Therefore, THz spectroscopy provides a particularly powerful method in resolving and controlling individual transitions between different many-body states. By doing this, one gains new insights about many-body and how that can be utilized in developing new technologies that are optimized up to the elementary quantum level.
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Terahertz-Spektroskopie
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Terahertz spectroscopy and technology
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39456566
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1096775966
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Die Terahertz-Spektroskopie, auch Submillimeterwellen-, Ferninfrarot- oder far-IR-Spektroskopie genannt, untersucht die Wechselwirkung von Materie mit elektromagnetischen Wellen im Terahertzbereich (Terahertzstrahlung).
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Terahertz spectroscopy detects and controls properties of matter with electromagnetic fields that are in the frequency range between a few hundred gigahertz and several terahertz (abbreviated as THz). In many-body systems, several of the relevant states have an energy difference that matches with the energy of a THz photon. Therefore, THz spectroscopy provides a particularly powerful method in resolving and controlling individual transitions between different many-body states. By doing this, one gains new insights about many-body and how that can be utilized in developing new technologies that are optimized up to the elementary quantum level. Different electronic excitations within semiconductors are already widely used in lasers, electronic components and computers. At the same time, they constitute an interesting many-body system whose quantum properties can be modified, e.g., via a nanostructure design. Consequently, THz spectroscopy on semiconductors is relevant in revealing both new technological potentials of nanostructures as well as in exploring the fundamental properties of many-body systems in a controlled fashion.
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