Abstract
Due to the finite size effects, the localisation of the phase transition in finite systems and the determination of its order, become an extremely difficult task, even in the simplest known cases. In order to identify and locate the finite volume transition point $T_{0}(V)$ of the QCD deconfinement phase transition to a Colorless QGP, we have developed a new approach using the finite size cumulant expansion of the order parameter and the $L_{mn}$-method. The first six cumulants $C_{1,2,3,4,5,6}$ with the corresponding under-normalized ratios(skewness $\Sigma$, kurtosis $\kappa$ ,pentosis $\Pi_{\pm}$ and hexosis $\mathcal{H}_{1,2,3}$) and three unnormalized combinations of them ($\mathcal{O}={\mathcal{\sigma }^{2} \mathcal{\kappa } }{\mathbf{\Sigma }^{-1} }$, $\mathcal{U} ={\mathcal{\sigma }^{-2} \mathbf{\Sigma }^{-1} }$, $\mathcal{N} = \mathcal{\sigma }^{2} \mathcal{\kappa }$) are calculated and studied as functions of $(T,V)$. A new approach, unifying in a clear and consistent way the definitions of cumulant ratios, is proposed. A numerical FSS analysis of the obtained results has allowed us to locate accurately the finite volume transition point. The extracted transition temperature value $T_{0}(V)$ agrees with that expected $T_{0}^{N}(V)$ from the order parameter and the thermal susceptibility $\chi _{T}\left( T,V\right)$, according to the standard procedure of localization to within about $2\%$. In addition to this, a very good correlation factor is obtained proving the validity of our cumulants method. The agreement of our results with those obtained by means of other models is remarkable.
Highlights
1.1 Phase transitions and finite size scaling (FSS)Phase transitions are abrupt changes in the global behavior and in the qualitative properties of a system when certain parameters pass through particular values
In order to identify and locate the finite-volume transition point more accurately, we have studied in detail the finitevolume cumulant expansion of the order parameter and have shown how greatly this can be used to provide a clear definition of the finite-volume transition point in the context of the thermal deconfinement phase transition to a colorless quark–gluon plasma (QGP) (CQGP)
It has been put into evidence that all cumulants and their ratios showed deviations from their asymptotic values, which increase with the cumulant order
Summary
Phase transitions are abrupt changes in the global behavior and in the qualitative properties of a system when certain parameters pass through particular values. Many works have shown the importance of studying the high-order cumulants of thermodynamic fluctuations For this reason and even in the finite-volume case higher-order cumulants and/or generalized ratios of them have been suggested as suitable quantities because they are highly related to the nature of the phase transition and serve as good indicators for a real location of the finite-volume transition point. In order to identify and locate the finite-volume transition point T0(V ) of the QCD deconfinement phase transition, we have developed a new approach using the finite-size cumulant expansion of the order parameter with the Lmn-method [2] whose definition has been slightly modified. The two main outcomes of the present work are: (1) The finite-size cumulant expansion of our hpdf gives better estimations than the Binder cumulant [19], for the transition point and even for very small systems. (2) The singularity of the phase transition in the thermodynamic limit survives in a clear way even when the volume of the system becomes finite
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