Minimally deformed anisotropic dark stars in the framework of gravitational decoupling
暂无分享,去创建一个
[1] Roldao da Rocha,et al. MGD Dirac Stars , 2020, Symmetry.
[2] E. Contreras,et al. Regularity condition on the anisotropy induced by gravitational decoupling in the framework of MGD , 2020, The European Physical Journal C.
[3] R. Casadio,et al. Beyond Einstein Gravity: The Minimal Geometric Deformation Approach in the Brane-World , 2020 .
[4] F. X. L. Cedeño,et al. Gravitational decoupling in cosmology , 2019, Physics of the Dark Universe.
[5] M. Estrada. Erratum to: A way of decoupling gravitational sources in pure Lovelock gravity , 2019, The European Physical Journal C.
[6] R. Casadio,et al. Beyond Einstein Gravity , 2020, SpringerBriefs in Physics.
[7] S. K. Maurya,et al. Charged anisotropic compact star in f(R,T) gravity: A minimal geometric deformation gravitational decoupling approach , 2020 .
[8] A. Sotomayor,et al. Isotropization and change of complexity by gravitational decoupling , 2019, The European Physical Journal C.
[9] Á. Rincón,et al. Minimal geometric deformation in a Reissner–Nordström background , 2019, The European Physical Journal C.
[10] E. Contreras,et al. Anisotropic neutron stars by gravitational decoupling , 2019, The European Physical Journal C.
[11] Z. Stuchlík,et al. Anisotropic Tolman VII solution by gravitational decoupling , 2019, The European Physical Journal C.
[12] F. Rahaman,et al. Compact star models in class I spacetime , 2019, The European Physical Journal C.
[13] Z. Stuchl'ik,et al. Anisotropic ultracompact Schwarzschild star by gravitational decoupling , 2019, Classical and Quantum Gravity.
[14] A. Sotomayor,et al. A causal Schwarzschild-de Sitter interior solution by gravitational decoupling , 2019, The European Physical Journal C.
[15] P. Bargueño,et al. Extended gravitational decoupling in 2 + 1 dimensional space-times , 2019, Classical and Quantum Gravity.
[16] P. Bargueño,et al. A general interior anisotropic solution for a BTZ vacuum in the context of the minimal geometric deformation decoupling approach , 2019, The European Physical Journal C.
[17] R. da Rocha,et al. Extended quantum portrait of MGD black holes and information entropy , 2019, Physics Letters B.
[18] E. Contreras. Gravitational decoupling in 2 + 1 dimensional space-times with cosmological term , 2019, Classical and Quantum Gravity.
[19] S. K. Maurya,et al. Generalized relativistic anisotropic compact star models by gravitational decoupling , 2019, The European Physical Journal C.
[20] J. Ovalle. Decoupling gravitational sources in general relativity: The extended case , 2018, Physics Letters B.
[21] R. Prado,et al. The gravitational decoupling method: the higher-dimensional case to find new analytic solutions , 2018, The European Physical Journal Plus.
[22] A. Sotomayor,et al. Einstein-Klein-Gordon system by gravitational decoupling , 2018, EPL (Europhysics Letters).
[23] M. Sharif,et al. Gravitational decoupled anisotropic solutions in $$f({\mathcal {G}})$$f(G) gravity , 2018, The European Physical Journal C.
[24] Á. Rincón,et al. Minimal geometric deformation in a cloud of strings , 2018, The European Physical Journal C.
[25] P. Bargueño,et al. Minimal geometric deformation in asymptotically (A-)dS space-times and the isotropic sector for a polytropic black hole , 2018, The European Physical Journal C.
[26] P. Nicolini,et al. Generalised uncertainty principle Hawking fermions from minimally geometric deformed black holes , 2018, Classical and Quantum Gravity.
[27] F. Tello‐Ortiz,et al. Compact anisotropic models in general relativity by gravitational decoupling , 2018, The European Physical Journal C.
[28] E. Contreras. Minimal Geometric Deformation: the inverse problem , 2018, The European Physical Journal C.
[29] Z. Rezaei. Double dark matter admixed neutron star , 2018, International Journal of Modern Physics D.
[30] M. Sharif,et al. Gravitational decoupled anisotropic solutions for cylindrical geometry , 2018, The European Physical Journal Plus.
[31] S. Maharaj,et al. Relativistic stars with conformal symmetry , 2018, The European Physical Journal C.
[32] P. Bargueño,et al. Minimal geometric deformation decoupling in $$2+1$$2+1 dimensional space–times , 2018, The European Physical Journal C.
[33] F. Tello‐Ortiz,et al. Charged anisotropic compact objects by gravitational decoupling , 2018, The European Physical Journal C.
[34] M. Sharif,et al. Gravitational decoupled charged anisotropic spherical solutions , 2018, 1804.09616.
[35] P. León,et al. Using MGD Gravitational Decoupling to Extend the Isotropic Solutions of Einstein Equations to the Anisotropical Domain , 2018, Fortschritte der Physik.
[36] A. Sotomayor,et al. Black holes by gravitational decoupling , 2018, The European Physical Journal C.
[37] M. H. Murad. Some families of relativistic anisotropic compact stellar models embedded in pseudo-Euclidean space $$E^5$$E5: an algorithm , 2018 .
[38] Z. Rezaei. Neutron stars with spin polarized self-interacting dark matter , 2018, Astroparticle Physics.
[39] R. Rocha,et al. The extended minimal geometric deformation of SU(N) dark glueball condensates , 2018, The European Physical Journal C.
[40] F. Tello‐Ortiz,et al. A new family of analytical anisotropic solutions by gravitational decoupling , 2018, The European Physical Journal Plus.
[41] Á. Rincón,et al. Gravitational decoupled anisotropies in compact stars , 2018, 1802.08000.
[42] Y. K. Gupta,et al. Anisotropic strange stars in Tolman–Kuchowicz spacetime , 2018, The European Physical Journal C.
[43] I. Lopes,et al. Dark matter admixed strange quark stars in the Starobinsky model , 2018, 1801.05031.
[44] A. Banerjee,et al. Role of pressure anisotropy on relativistic compact stars , 2017, 1710.10463.
[45] R. Rocha,et al. Gregory–Laflamme analysis of MGD black strings , 2017, 1708.08686.
[46] S. Chakraborty,et al. Packing extra mass in compact stellar structures: an interplay between Kalb-Ramond field and extra dimensions , 2017, 1708.08315.
[47] M. Machado,et al. A dark matter compact star in the framework of the pseudo-complex general relativity , 2017 .
[48] P. Bhar,et al. A comparative study on generalized model of anisotropic compact star satisfying the Karmarkar condition , 2017 .
[49] A. Sotomayor,et al. Anisotropic solutions by gravitational decoupling , 2017, 1708.00407.
[50] I. Lopes,et al. Gravitational effects of condensed dark matter on strange stars , 2017, 1706.07272.
[51] J. Ovalle. Decoupling gravitational sources in general relativity: from perfect to anisotropic fluids , 2017, 1704.05899.
[52] R. Rocha. Black hole acoustics in the minimal geometric deformation of a de Laval nozzle , 2017, 1703.01528.
[53] R. Rocha. Dark SU(N) glueball stars on fluid branes , 2017, 1701.00761.
[54] C. Moustakidis. The stability of relativistic stars and the role of the adiabatic index , 2016, 1612.01726.
[55] R. Rocha,et al. Stability of the graviton Bose–Einstein condensate in the brane-world , 2016, 1610.01572.
[56] J. Ovalle. Extending the geometric deformation: New black hole solutions , 2015, 1510.00855.
[57] Y. K. Gupta,et al. Anisotropic models for compact stars , 2015, 1504.00209.
[58] R. Rocha,et al. The minimal geometric deformation approach extended , 2015, 1503.02873.
[59] R. Casadio,et al. Classical tests of general relativity: Brane-world Sun from minimal geometric deformation , 2015, 1503.02316.
[60] L. Gergely,et al. Brane-world stars with a solid crust and vacuum exterior , 2014, 1405.0252.
[61] Y. Jiménez-Teja,et al. Stellar occultation by (119951) 2002 KX14 on April 26, 2012 , 2014 .
[62] F. Linares,et al. Tolman IV solution in the Randall-Sundrum Braneworld , 2013, 1311.1844.
[63] F. Linares,et al. The role of exterior Weyl fluids on compact stellar structures in Randall–Sundrum gravity , 2013, 1304.5995.
[64] R. Casadio,et al. Brane-world stars and (microscopic) black holes , 2012, 1201.6145.
[65] S. Ray,et al. Anisotropic strange star with de Sitter spacetime , 2012, 1201.5234.
[66] A. Yadav,et al. Singularity-free dark energy star , 2011, 1102.1382.
[67] J. Orosz,et al. REFINED NEUTRON STAR MASS DETERMINATIONS FOR SIX ECLIPSING X-RAY PULSAR BINARIES , 2011, 1101.2465.
[68] Fredrik Sandin,et al. Have neutron stars a dark matter core , 2010, 1005.0857.
[69] A. A. Usmani,et al. A comparison of Hořava–Lifshitz gravity and Einstein gravity through thin-shell wormhole construction , 2010, 1011.3600.
[70] J. Ovalle. The Schwarzschild's Braneworld Solution , 2010, 1009.3674.
[71] S. Ray,et al. Singularity-free solutions for anisotropic charged fluids with Chaplygin equation of state , 2010, 1007.1889.
[72] B. Ivanov. The Importance of Anisotropy for Relativistic Fluids with Spherical Symmetry , 2010 .
[73] Jonathan L. Feng. Dark Matter Candidates from Particle Physics and Methods of Detection , 2010, 1003.0904.
[74] M. Malheiro,et al. Electrically charged strange quark stars , 2009, 0907.5537.
[75] S. Viaggiu. Modeling Usual and Unusual Anisotropic Spheres , 2008, 0810.2209.
[76] J. Ovalle. Nonuniform Braneworld Stars: AN Exact Solution , 2008, 0809.3547.
[77] A. Cherepashchuk,et al. The mass of the compact object in the X-ray binary her X-1/HZ her , 2008, 1201.5519.
[78] L. Herrera,et al. All static spherically symmetric anisotropic solutions of Einstein's equations , 2007, 0712.0713.
[79] K. Freese,et al. Dark matter and the first stars: a new phase of stellar evolution. , 2007, Physical review letters.
[80] J. Ovalle. SEARCHING EXACT SOLUTIONS FOR COMPACT STARS IN BRANEWORLD: A CONJECTURE , 2007, gr-qc/0703095.
[81] L. Núñez,et al. Sound speeds, cracking and the stability of self-gravitating anisotropic compact objects , 2007, 0706.3452.
[82] K. Lake. All static spherically symmetric perfect-fluid solutions of Einstein’s equations , 2002, gr-qc/0209104.
[83] L. Verde,et al. Dark halo properties from rotation curves , 2002, astro-ph/0201352.
[84] T. Harko,et al. Anisotropic stars in general relativity , 2001, Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[85] T. Harko,et al. An Exact Anisotropic Quark Star Model , 2002 .
[86] T. Harko,et al. EXACT MODELS FOR ANISOTROPIC RELATIVISTIC STARS , 2002 .
[87] D. Hooper,et al. Indirect search for neutralino dark matter with high energy neutrinos , 2001, hep-ph/0105182.
[88] M. Gleiser,et al. Anisotropic Stars: Exact Solutions , 2000, astro-ph/0012265.
[89] K. Lake,et al. Physical acceptability of isolated, static, spherically symmetric, perfect fluid solutions of Einstein's equations , 1998, gr-qc/9809013.
[90] L. Herrera,et al. Cracking of Homogeneous Self-Gravitating Compact Objects Induced by Fluctuations of Local Anisotropy , 1997 .
[91] L. Herrera,et al. Local anisotropy in self-gravitating systems , 1997 .
[92] L. Herrera,et al. Tidal forces and fragmentation of self-gravitating compact objects , 1994 .
[93] A. Mehra,et al. Anisotropic spheres with variable energy density in general relativity , 1994 .
[94] N. O. Santos,et al. Dynamical instability for radiating anisotropic collapse , 1993 .
[95] H. Bondi. Anisotropic spheres in general relativity , 1992 .
[96] L. Herrera,et al. Dynamical instability in the collapse of anisotropic matter , 1992 .
[97] A. Broeils,et al. Extended rotation curves of spiral galaxies: dark haloes and modified dynamics , 1991 .
[98] R. Chan,et al. Heat flow and dynamical instability in spherical collapse , 1989 .
[99] J. P. Leon. New analytical models for anisotropic spheres in general relativity , 1987 .
[100] J. L. Ponce de Léon. General relativistic electromagnetic mass models of neutral spherically symmetric systems , 1987 .
[101] L. Herrera,et al. Isotropic and anisotropic charged spheres admitting a one-parameter group of conformal motions , 1985 .
[102] L. Witten,et al. Evolution of radiating anisotropic spheres in general relativity , 1982 .
[103] V. Rubin,et al. Rotational properties of 21 SC galaxies with a large range of luminosities and radii, from NGC 4605 /R = 4kpc/ to UGC 2885 /R = 122 kpc/ , 1980 .
[104] Sandra M. Faber,et al. Masses and Mass-To-Light Ratios of Galaxies , 1979 .
[105] P. Joss,et al. Quark stars with ‘realistic’ equations of state , 1978, Nature.
[106] E. Liang,et al. Anisotropic spheres in general relativity , 1974 .
[107] W. Israel. Singular hypersurfaces and thin shells in general relativity , 1966 .
[108] S. Chandrasekhar. The Dynamical Instability of Gaseous Masses Approaching the Schwarzschild Limit in General Relativity. , 1964 .
[109] S. Chandrasekhar. Dynamical Instability of Gaseous Masses Approaching the Schwarzschild Limit in General Relativity , 1964 .
[110] H. Buchdahl. General Relativistic Fluid Spheres , 1959 .
[111] J. Oppenheimer,et al. On Massive neutron cores , 1939 .
[112] R. Tolman. Static Solutions of Einstein's Field Equations for Spheres of Fluid , 1939 .