Cores in warm dark matter haloes: a Catch 22 problem

被引:209
作者
Maccio, Andrea V. [1 ]
Paduroiu, Sinziana [2 ]
Anderhalden, Donnino [3 ]
Schneider, Aurel [3 ]
Moore, Ben [3 ]
机构
[1] Max Planck Inst Astron, D-69117 Heidelberg, Germany
[2] Univ Geneva, Observ Geneva, CH-1290 Sauverny, Switzerland
[3] Univ Zurich, Inst Theoret Phys, CH-8057 Zurich, Switzerland
关键词
galaxies: haloes; dark matter; DENSITY PROFILES; STERILE NEUTRINOS; LAMBDA-CDM; COLD; SUBSTRUCTURE; CUSPS; MASS; SIMULATIONS; CONSTRAINTS; SATELLITES;
D O I
10.1111/j.1365-2966.2012.21284.x
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The free streaming of warm dark matter particles dampens the fluctuation spectrum, flattens the mass function of haloes and sets a fine-grained phase density limit for dark matter structures. The phase-space density limit is expected to imprint a constant-density core at the halo centre in contrast to what happens for cold dark matter. We explore these effects using high-resolution simulations of structure formation in different warm dark matter scenarios. We find that the size of the core we obtain in simulated haloes is in good agreement with theoretical expectations based on Liouvilles theorem. However, our simulations show that in order to create a significant core ( kpc) in a dwarf galaxy (M similar to 1010 M?), a thermal candidate with mass as low as 0.1 keV is required. This would fully prevent the formation of the dwarf galaxy in the first place. For candidates satisfying large-scale structure constraints (m? larger than similar to 12 keV), the expected size of the core is of the order of 10 (20) pc for a dark matter halo with a mass of 1010 (108) M?. We conclude that standard warm dark matter is not a viable solution for explaining the presence of cored density profiles in low-mass galaxies.
引用
收藏
页码:1105 / 1112
页数:8
相关论文
共 70 条
[1]   Production and evolution of perturbations of sterile neutrino dark matter [J].
Abazajian, K .
PHYSICAL REVIEW D, 2006, 73 (06)
[2]   Constraints on sterile neutrino dark matter [J].
Abazajian, Kevork ;
Koushiappas, Savvas M. .
PHYSICAL REVIEW D, 2006, 74 (02)
[3]   Dark matter cores and cusps: the case of multiple stellar populations in dwarf spheroidals [J].
Amorisco, N. C. ;
Evans, N. W. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2012, 419 (01) :184-196
[4]  
[Anonymous], JCAP
[5]   Multiscale Gaussian random fields and their application to cosmological simulations [J].
Bertschinger, E .
ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 2001, 137 (01) :1-20
[6]   Halo formation in warm dark matter models [J].
Bode, P ;
Ostriker, JP ;
Turok, N .
ASTROPHYSICAL JOURNAL, 2001, 556 (01) :93-107
[7]  
BOND JR, 1980, PHYS REV LETT, V45, P1980, DOI 10.1103/PhysRevLett.45.1980
[8]   The Role of Sterile Neutrinos in Cosmology and Astrophysics [J].
Boyarsky, Alexey ;
Ruchayskiy, Oleg ;
Shaposhnikov, Mikhail .
ANNUAL REVIEW OF NUCLEAR AND PARTICLE SCIENCE, 2009, 59 :191-214
[9]   A lower bound on the mass of dark matter particles [J].
Boyarsky, Alexey ;
Ruchayskiy, Oleg ;
Iakubovskyi, Dmytro .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2009, (03)
[10]   Lyman-α constraints on warm and on warm-plus-cold dark matter models [J].
Boyarsky, Alexey ;
Lesgourgues, Julien ;
Ruchayskiy, Oleg ;
Viel, Matteo .
JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2009, (05)