eprintid: 36639 rev_number: 18 eprint_status: archive userid: 9041 dir: disk0/00/03/66/39 datestamp: 2025-05-28 13:20:34 lastmod: 2025-06-02 08:31:09 status_changed: 2025-05-28 13:20:34 type: doctoralThesis metadata_visibility: show creators_name: Sattler, Franz Richard title: The Phase Diagram of QCD at High Densities subjects: ddc-500 subjects: ddc-530 divisions: i-130300 adv_faculty: af-13 keywords: Funktionale Renormierungsgruppe cterms_swd: Quantenchromodynamik cterms_swd: Renormierung cterms_swd: Numerik cterms_swd: Theoretische Physik abstract: In this thesis, we investigate the phase structure of Quantum Chromodynamics (QCD) at high densities, with the aim of locating the critical endpoint (CEP) of its temperature crossover transition. To this end, we utilise the functional Renormalization Group (fRG) to directly compute non-perturbative QCD from first principles. Aiming for quantitative predictions, we both develop important numerical tools and investigate the systematics of functional QCD to correctly assess the systematic error of our approach. Hydrodynamic methods are introduced as a powerful tool to resolve full field dependences in general fRG setups. We develop a local Discontinuous Galerkin (LDG) Finite Element (FE) method for unprecedented quantitative precision and reliability for this task. For the task of resolving corresponding effective potentials, we develop new classes of regulators for dynamical spontaneous symmetry breaking (dSSB) and find optimal RG-time integration algorithms for the highly stiff partial differential equations (PDEs) of such systems. The vertex expansion employed for the glue sector of functional QCD requires a careful treatment of tensor bases, and we discuss optimisation aspects thereof in detail. Furthermore, we introduce the LEGO® principle to formalise the modular structure of functional QCD, which we will use for our systematic error estimates. We show the quantitative reliability of our approach in vacuum QCD and illustrate that the finite temperature limit thereof is in great agreement with results from other first-principle approaches. For the first time in the fRG, a reliable systematic error estimate is provided for the corresponding observables, in particular for the pseudo-critical temperature Tpc = 156.7 ± 0.6 MeV. We resolve the QCD phase structure up to baryon chemical potential µB = 1000 MeV and find a sizeable regime with a potential inhomogeneous instability covering the potential critical endpoint (CEP) of QCD. date: 2025 id_scheme: DOI id_number: 10.11588/heidok.00036639 ppn_swb: 1927235162 own_urn: urn:nbn:de:bsz:16-heidok-366394 date_accepted: 2025-05-21 advisor: HASH(0x556026b30dc0) language: eng bibsort: SATTLERFRATHEPHASEDI20250521 full_text_status: public place_of_pub: Heidelberg citation: Sattler, Franz Richard (2025) The Phase Diagram of QCD at High Densities. [Dissertation] document_url: https://archiv.ub.uni-heidelberg.de/volltextserver/36639/13/PhDThesis_Sattler-4.pdf