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  4. Two-flavor color superconductivity in magnetic field
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Two-flavor color superconductivity in magnetic field

Full metadata

Description

Quark matter at sufficiently high density and low temperature is expected to be a color superconductor, and may exist in the interior of neutron stars. The properties of two simplest possible color-superconducting phases, i.e., the color-flavor-locked (CFL) and two-flavor superconducting (2SC) phases, are reviewed. The effect of a magnetic field on the pairing dynamics in two-flavor color-superconducting dense quark matter is investigated. A universal form of the gap equation for an arbitrary magnetic field is derived in the weakly coupled regime of QCD at asymptotically high density, using the framework of Schwinger-Dyson equation in the improved rainbow approximation. The results for the gap in two limiting cases, weak and strong magnetic fields, are obtained and discussed. It is shown that the superconducting gap function in the weak magnetic field limit develops a directional dependence in momentum space. This property of the gap parameter is argued to be a consequence of a long-range interaction in QCD.

Date Created
2012
Contributors
  • Yu, Lang (Author)
  • Shovkovy, Igor A. (Thesis advisor)
  • Lunardini, Cecilia (Committee member)
  • Schmidt, Kevin (Committee member)
  • Alarcon, Ricardo (Committee member)
  • Lebed, Richard (Committee member)
  • Arizona State University (Publisher)
Topical Subject
  • Physics
  • Color Superconductivity
  • Magnetic Fields
  • Schwinger-Dyson equation
  • Quantum Chromodynamics
  • Superconductivity
  • Schwinger action principle
  • Magnetic Fields
Resource Type
Text
Genre
Doctoral Dissertation
Academic theses
Extent
vi, 81 p. : col. ill
Language
eng
Copyright Statement
In Copyright
Reuse Permissions
All Rights Reserved
Primary Member of
ASU Electronic Theses and Dissertations
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.14593
Statement of Responsibility
by Lang Yu
Description Source
Retrieved on Dec. 5, 2012
Level of coding
full
Note
Partial requirement for: Ph.D., Arizona State University, 2012
Note type
thesis
Includes bibliographical references (p. 47-56)
Note type
bibliography
Field of study: Physics
System Created
  • 2012-08-24 06:16:43
System Modified
  • 2021-08-30 01:48:26
  •     
  • 1 year 9 months ago
Additional Formats
  • OAI Dublin Core
  • MODS XML

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