Quantum Entanglement in Electron Optics

Generation, Characterization, and Applications

Nonfiction, Science & Nature, Science, Biological Sciences, Molecular Physics, Physics, Mathematical Physics
Cover of the book Quantum Entanglement in Electron Optics by Naresh Chandra, Rama Ghosh, Springer Berlin Heidelberg
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Author: Naresh Chandra, Rama Ghosh ISBN: 9783642240706
Publisher: Springer Berlin Heidelberg Publication: May 30, 2013
Imprint: Springer Language: English
Author: Naresh Chandra, Rama Ghosh
ISBN: 9783642240706
Publisher: Springer Berlin Heidelberg
Publication: May 30, 2013
Imprint: Springer
Language: English

This monograph forms an interdisciplinary study in atomic, molecular, and quantum information (QI) science. Here a reader will find that applications of the tools developed in QI provide new physical insights into electron optics as well as properties of atoms & molecules which, in turn, are useful in studying QI both at fundamental and applied levels. In particular, this book investigates entanglement properties of flying electronic qubits generated in some of the well known processes capable of taking place in an atom or a molecule following the absorption of a photon. Here, one can generate Coulombic or fine-structure entanglement of electronic qubits. The properties of these entanglements differ not only from each other, but also from those when spin of an inner-shell photoelectron is entangled with the polarization of the subsequent fluorescence. Spins of an outer-shell electron and of a residual photoion can have free or bound entanglement in a laboratory.

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This monograph forms an interdisciplinary study in atomic, molecular, and quantum information (QI) science. Here a reader will find that applications of the tools developed in QI provide new physical insights into electron optics as well as properties of atoms & molecules which, in turn, are useful in studying QI both at fundamental and applied levels. In particular, this book investigates entanglement properties of flying electronic qubits generated in some of the well known processes capable of taking place in an atom or a molecule following the absorption of a photon. Here, one can generate Coulombic or fine-structure entanglement of electronic qubits. The properties of these entanglements differ not only from each other, but also from those when spin of an inner-shell photoelectron is entangled with the polarization of the subsequent fluorescence. Spins of an outer-shell electron and of a residual photoion can have free or bound entanglement in a laboratory.

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