"Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates" - Information and Links:

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Book's cover
The cover of “Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates” - Open Library.
Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates - cover - The Open Library
Book's cover - The Open Library
Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates - cover - Google Books
Book's cover - Google Books

"Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates" is published by Springer in Feb 23, 2014, the book is classified in Science genre, it has 128 pages and the language of the book is English.


“Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates” Metadata:

  • Title: ➤  Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates
  • Author:
  • Language: English
  • Number of Pages: 128
  • Is Family Friendly: Yes - No Mature Content
  • Publisher: Springer
  • Publish Date:
  • Genres: Science

“Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates” Subjects and Themes:

Edition Specifications:

  • Format: paperback

Edition Identifiers:

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Snippets and Summary:

This work reports on the realization of spin-squeezed states suitable for atom interferometry.

"Spin Squeezing and Non-linear Atom Interferometry with Bose-Einstein Condensates" Description:

Google Books:

Interferometry, the most precise measurement technique known today, exploits the wave-like nature of the atoms or photons in the interferometer. As expected from the laws of quantum mechanics, the granular, particle-like features of the individually independent atoms or photons are responsible for the precision limit, the shot noise limit. However this “classical” bound is not fundamental and it is the aim of quantum metrology to overcome it by employing entanglement among the particles. This work reports on the realization of spin-squeezed states suitable for atom interferometry. Spin squeezing was generated on the basis of motional and spin degrees of freedom, whereby the latter allowed the implementation of a full interferometer with quantum-enhanced precision.

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