Quantum Information Processing with Microfabricated Optical Elements
F. B. J. Buchkremer, Rainer Dumke, Michael W. R. Volk, Muether, T., G. Birkl, Wolfgang A. Ertmer
Abstract
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F. B. J. Buchkremer, Rainer Dumke, Michael W. R. Volk, Muether, T., G. Birkl, Wolfgang A. Ertmer
Abstract
Open-access reader
We discuss a new direction in the field of quantum information processing with neutral atoms. It is based on the use of microfabricated optical elements. With these elements versatile and integrated atom optical devices can be created in a compact fashion. This approach opens the possibility to scale, parallelize, and miniaturize atom optics for new investigations in fundamental research and applications towards quantum computing with neutral atoms. The exploitation of the unique features of the quantum mechanical behavior of matter waves and the capabilities of powerful state-of-the-art micro- and nanofabrication techniques lend this approach a special attraction.
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We discuss a new direction in the field of quantum information processing with neutral atoms. It is based on the use of microfabricated optical elements. With these elements versatile and integrated atom optical devices can be created in a compact fashion. This approach opens the possibility to scale, parallelize, and miniaturize atom optics for new investigations in fundamental research and applications towards quantum computing with neutral atoms. The exploitation of the unique features of the quantum mechanical behavior of matter waves and the capabilities of powerful state-of-the-art micro- and nanofabrication techniques lend this approach a special attraction.
Key concepts: Quantum information processing, Quantum imaging, Quantum, Quantum information, Quantum optics, Nanolithography, Photonics, Field (mathematics)