Three-loop Debye mass and effective coupling in thermal QCD
Ghisoiu I (2013)
Bielefeld: Universität Bielefeld.
Bielefelder E-Dissertation | Englisch
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Gutachter*in / Betreuer*in
Schröder, York
Einrichtung
Abstract / Bemerkung
We determine the three-loop effective parameters of the dimensionally reduced theory of EQCD as matching coefficients to full QCD. The mass parameter $\mE$ is interpreted as the high temperature, perturbative contribution to the Debye screening mass of chromo-electric fields and enters the pressure of QCD at the order of $g^7$. The effective coupling $\gE$ can be used to compute the spatial string tension of QCD. However, we suspect that the effective coupling $\gE$ obtains through renormalization contributions from higher order operators that have not yet been taken into account. Therefore our result reflects the (still divergent) contribution from the super-renormalizable EQCD Lagrangian. In addition, we present a new method for computing tensor sum-integrals and provide a generalization to the known computation techniques of spectacles-type sum-integrals.
Jahr
2013
Seite(n)
124
Page URI
https://pub.uni-bielefeld.de/record/2632705
Zitieren
Ghisoiu I. Three-loop Debye mass and effective coupling in thermal QCD. Bielefeld: Universität Bielefeld; 2013.
Ghisoiu, I. (2013). Three-loop Debye mass and effective coupling in thermal QCD. Bielefeld: Universität Bielefeld.
Ghisoiu, Ioan. 2013. Three-loop Debye mass and effective coupling in thermal QCD. Bielefeld: Universität Bielefeld.
Ghisoiu, I. (2013). Three-loop Debye mass and effective coupling in thermal QCD. Bielefeld: Universität Bielefeld.
Ghisoiu, I., 2013. Three-loop Debye mass and effective coupling in thermal QCD, Bielefeld: Universität Bielefeld.
I. Ghisoiu, Three-loop Debye mass and effective coupling in thermal QCD, Bielefeld: Universität Bielefeld, 2013.
Ghisoiu, I.: Three-loop Debye mass and effective coupling in thermal QCD. Universität Bielefeld, Bielefeld (2013).
Ghisoiu, Ioan. Three-loop Debye mass and effective coupling in thermal QCD. Bielefeld: Universität Bielefeld, 2013.
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