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BEGIN:VEVENT
SUMMARY:Unified equation of state probing compact stars
DTSTART:20250312T170000Z
DTEND:20250312T190000Z
DTSTAMP:20261005T141116Z
UID:5d323077-edf5-4e8b-bf12-43c692dcf136
SEQUENCE:2
CREATED:20250310T120149Z
DESCRIPTION:Meeting ID: 971 1964 8836Passcode Zoom (se necessária): 13463
 1The equation of state (EoS) of neutron stars plays a crucial role in dete
 rmining their internal composition and observable properties. In this stud
 y\, we construct an EoS\, incorporating a 1st order phase transition from 
 hadronic to quark matter using a Maxwell construction\, and apply it for m
 odelling both static and rotating neutron stars. In the quark matter phase
 \, we consider the effects of vector repulsion and color superconductivity
 \, which significantly alter the stiffness of the EoS and the onset of the
  deconfinement phase transition\, respectively.Our results in the static c
 ase provide very good agreement with the astrophysical constraints extract
 ed from the gravitational wave (GW) signal GW170817 and even the subsolar-
 mass compact object HESS J1731-347. For non-vanishing rotational velocitie
 s\, we compare our outcomes with a collection of measurements of the most 
 recent millisecond pulsar (MSP) measurements and again find consistency wi
 th the observational data. Additionally\, we developed a model of accretio
 n matter onto rotating hybrid stars with finite magnetic. The model predic
 ts a set of measurable parameters that can be verified by future data.Furt
 hermore\, we apply an alternative approach for unified treatment of quark-
 hadron matter\, i.e. the framework of quarkyonic matter. We for the first 
 time introduce the effects of color superconductivity in the quark gluon p
 lasma to the framework of quarkyonic matter. In upcoming publications\, we
  will examine the impact of colour superconductivity in quarkyonic matter 
 and compare it to the Maxwell construction of the 1st order phase transiti
 on.
LAST-MODIFIED:20250310T120811Z
LOCATION:Sala de Formação Avançada do DF (2-8.11) + Zoom (Formato Híbr
 ido)
URL:http://df.vps.tecnico.ulisboa.pt/en/events/unified-equation-of-state-p
 robing-compact-stars/
X-ALT-DESC;FMTTYPE=text/html:<p data-block-key="6ax9g">Meeting ID: 971 196
 4 8836<br/>Passcode Zoom (se necessária): 134631<br/><br/></p><p data-blo
 ck-key="rn7">The equation of state (EoS) of neutron stars plays a crucial 
 role in determining their internal composition and observable properties. 
 In this study\, we construct an EoS\, incorporating a 1st order phase tran
 sition from hadronic to quark matter using a Maxwell construction\, and ap
 ply it for modelling both static and rotating neutron stars. In the quark 
 matter phase\, we consider the effects of vector repulsion and color super
 conductivity\, which significantly alter the stiffness of the EoS and the 
 onset of the deconfinement phase transition\, respectively.<br/><br/></p><
 p data-block-key="em4uh">Our results in the static case provide very good 
 agreement with the astrophysical constraints extracted from the gravitatio
 nal wave (GW) signal GW170817 and even the subsolar-mass compact object HE
 SS J1731-347. For non-vanishing rotational velocities\, we compare our out
 comes with a collection of measurements of the most recent millisecond pul
 sar (MSP) measurements and again find consistency with the observational d
 ata. Additionally\, we developed a model of accretion matter onto rotating
  hybrid stars with finite magnetic. The model predicts a set of measurable
  parameters that can be verified by future data.<br/><br/></p><p data-bloc
 k-key="cto6f">Furthermore\, we apply an alternative approach for unified t
 reatment of quark-hadron matter\, i.e. the framework of quarkyonic matter.
  We for the first time introduce the effects of color superconductivity in
  the quark gluon plasma to the framework of quarkyonic matter. In upcoming
  publications\, we will examine the impact of colour superconductivity in 
 quarkyonic matter and compare it to the Maxwell construction of the 1st or
 der phase transition.</p><p data-block-key="69t7o"></p>
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