Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies / / Hélène Perrin, Robin Kaiser, and Michèle Leduc, editors.

Physicists know how to produce gases at a few billionths of a degree above absolute zero. The cooling methods apply not only to atoms but also to ions and molecules. This field of research has three times been awarded the Nobel Prize. The field experienced remarkable growth when experimentalists lea...

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Place / Publishing House:[Place of publication not identified] : : Science Press, EDP Sciences,, [2022]
©2022
Year of Publication:2022
Edition:First edition.
Language:English
Series:Current Natural Sciences Series
Physical Description:1 online resource (192 pages)
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(DE-B1597)9782759827466
(OCoLC)1368055282
(MiAaPQ)EBC30800070
(Au-PeEL)EBL30800070
(PPN)269852638
(FR-PaCSA)88941212
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spelling Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies / Hélène Perrin, Robin Kaiser, and Michèle Leduc, editors.
First edition.
[Place of publication not identified] : Science Press, EDP Sciences, [2022]
©2022
1 online resource (192 pages)
text txt rdacontent
computer c rdamedia
online resource cr rdacarrier
Current Natural Sciences Series
Physicists know how to produce gases at a few billionths of a degree above absolute zero. The cooling methods apply not only to atoms but also to ions and molecules. This field of research has three times been awarded the Nobel Prize. The field experienced remarkable growth when experimentalists learned how to vary at will the interactions between particles, trapping them with optical tweezers or in optical gratings with adjustable geometry. Artificial crystals made of atoms or molecules can be built to simulate the structure of matter and elucidate some of its magnetic properties, hopefully contributing to the understanding of high-temperature superconductivity. The phenomenon of quantum entanglement is the basis for new devices for the storage and transmission of quantum information. Spectacular progress is constantly being made in metrology. For example, ultra-cold atom or ion clocks measure time to better than one second over the lifetime of the Universe. New types of industrial gravimeters and gyroscopes are improving the sensitivity of seismology and navigation in space. In addition, the extreme precision of the measurements allows tests of the fundamental laws of physics, such as quantum electrodynamics, Lorentz invariance or possible variations of the fundamental constants. The field of ultra-cold particles has now reached the stage where it provides insights in the fields of condensed matter, chemistry and even cosmology.
In English.
Frontmatter -- Preamble -- Coordinators, Contributors, Sponsors and Acknowledgments -- Preface: Fifteen miraculous years: bypassing impossibility theorems -- Contents -- Chapter 1 Cooling and Trapping Atoms -- Chapter 2 Cold Atom Instruments and Metrology -- Chapter 3 Single Atoms and Single Photons: Quantum Information Exchange -- Chapter 4 Quantum Simulation with Cold Atoms -- Chapter 5 Waves and Disorder -- Chapter 6 Trapping and Cooling Ions -- Chapter 7 Cold and Ultracold Molecules -- Chapter 8 Conclusion and Everything Else This Book Could also Have Been About… -- Index
Description based on print version record.
Includes bibliographical references and index.
Quantum theory.
Perrin, H. (Hélène), editor.
Kaiser, R. (Robin), editor.
Leduc, Michèle, editor.
2-7598-2745-3
language English
format eBook
author2 Perrin, H.
Kaiser, R.
Leduc, Michèle,
author_facet Perrin, H.
Kaiser, R.
Leduc, Michèle,
author2_variant h p hp
r k rk
m l ml
author2_fuller (Hélène),
(Robin),
author2_role TeilnehmendeR
TeilnehmendeR
TeilnehmendeR
title Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies /
spellingShingle Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies /
Current Natural Sciences Series
Frontmatter --
Preamble --
Coordinators, Contributors, Sponsors and Acknowledgments --
Preface: Fifteen miraculous years: bypassing impossibility theorems --
Contents --
Chapter 1 Cooling and Trapping Atoms --
Chapter 2 Cold Atom Instruments and Metrology --
Chapter 3 Single Atoms and Single Photons: Quantum Information Exchange --
Chapter 4 Quantum Simulation with Cold Atoms --
Chapter 5 Waves and Disorder --
Chapter 6 Trapping and Cooling Ions --
Chapter 7 Cold and Ultracold Molecules --
Chapter 8 Conclusion and Everything Else This Book Could also Have Been About… --
Index
title_full Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies / Hélène Perrin, Robin Kaiser, and Michèle Leduc, editors.
title_fullStr Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies / Hélène Perrin, Robin Kaiser, and Michèle Leduc, editors.
title_full_unstemmed Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies / Hélène Perrin, Robin Kaiser, and Michèle Leduc, editors.
title_auth Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies /
title_alt Frontmatter --
Preamble --
Coordinators, Contributors, Sponsors and Acknowledgments --
Preface: Fifteen miraculous years: bypassing impossibility theorems --
Contents --
Chapter 1 Cooling and Trapping Atoms --
Chapter 2 Cold Atom Instruments and Metrology --
Chapter 3 Single Atoms and Single Photons: Quantum Information Exchange --
Chapter 4 Quantum Simulation with Cold Atoms --
Chapter 5 Waves and Disorder --
Chapter 6 Trapping and Cooling Ions --
Chapter 7 Cold and Ultracold Molecules --
Chapter 8 Conclusion and Everything Else This Book Could also Have Been About… --
Index
title_new Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies /
title_sort ultra-cold atoms, ions, molecules and quantum technologies /
series Current Natural Sciences Series
series2 Current Natural Sciences Series
publisher Science Press, EDP Sciences,
publishDate 2022
physical 1 online resource (192 pages)
edition First edition.
contents Frontmatter --
Preamble --
Coordinators, Contributors, Sponsors and Acknowledgments --
Preface: Fifteen miraculous years: bypassing impossibility theorems --
Contents --
Chapter 1 Cooling and Trapping Atoms --
Chapter 2 Cold Atom Instruments and Metrology --
Chapter 3 Single Atoms and Single Photons: Quantum Information Exchange --
Chapter 4 Quantum Simulation with Cold Atoms --
Chapter 5 Waves and Disorder --
Chapter 6 Trapping and Cooling Ions --
Chapter 7 Cold and Ultracold Molecules --
Chapter 8 Conclusion and Everything Else This Book Could also Have Been About… --
Index
isbn 2-7598-2746-1
2-7598-2745-3
callnumber-first Q - Science
callnumber-subject QC - Physics
callnumber-label QC174
callnumber-sort QC 3174.12 U487 42022
illustrated Illustrated
dewey-hundreds 500 - Science
dewey-tens 530 - Physics
dewey-ones 530 - Physics
dewey-full 530.12
dewey-sort 3530.12
dewey-raw 530.12
dewey-search 530.12
oclc_num 1368055282
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AT leducmichele ultracoldatomsionsmoleculesandquantumtechnologies
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is_hierarchy_title Ultra-Cold Atoms, Ions, Molecules and Quantum Technologies /
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