607 research outputs found

    The Local Group: The Ultimate Deep Field

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    Near-field cosmology -- using detailed observations of the Local Group and its environs to study wide-ranging questions in galaxy formation and dark matter physics -- has become a mature and rich field over the past decade. There are lingering concerns, however, that the relatively small size of the present-day Local Group (∼2\sim 2 Mpc diameter) imposes insurmountable sample-variance uncertainties, limiting its broader utility. We consider the region spanned by the Local Group's progenitors at earlier times and show that it reaches 3β€²β‰ˆ73' \approx 7 co-moving Mpc in linear size (a volume of β‰ˆ350 Mpc3\approx 350\,{\rm Mpc}^3) at z=7z=7. This size at early cosmic epochs is large enough to be representative in terms of the matter density and counts of dark matter halos with Mvir(z=7)≲2Γ—109 MβŠ™M_{\rm vir}(z=7) \lesssim 2\times 10^{9}\,M_{\odot}. The Local Group's stellar fossil record traces the cosmic evolution of galaxies with 103≲M⋆(z=0)/MβŠ™β‰²10910^{3} \lesssim M_{\star}(z=0) / M_{\odot} \lesssim 10^{9} (reaching M1500>βˆ’9M_{1500} > -9 at z∼7z\sim7) over a region that is comparable to or larger than the Hubble Ultra-Deep Field (HUDF) for the entire history of the Universe. It is highly complementary to the HUDF, as it probes much fainter galaxies but does not contain the intrinsically rarer, brighter sources that are detectable in the HUDF. Archaeological studies in the Local Group also provide the ability to trace the evolution of individual galaxies across time as opposed to evaluating statistical connections between temporally distinct populations. In the JWST era, resolved stellar populations will probe regions larger than the HUDF and any deep JWST fields, further enhancing the value of near-field cosmology.Comment: 6 pages, 5 figures; MNRAS Letters, in pres

    Near-Field Limits on the Role of Faint Galaxies in Cosmic Reionization

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    Reionizing the Universe with galaxies appears to require significant star formation in low-mass halos at early times, while local dwarf galaxy counts tell us that star formation has been minimal in small halos around us today. Using simple models and the ELVIS simulation suite, we show that reionization scenarios requiring appreciable star formation in halos with Mvirβ‰ˆ108 MβŠ™M_{\rm vir} \approx 10^{8}\,M_{\odot} at z=8z=8 are in serious tension with galaxy counts in the Local Group. This tension originates from the seemingly inescapable conclusion that 30 - 60 halos with Mvir>108 MβŠ™M_{\rm vir} > 10^{8}\,M_{\odot} at z=8z=8 will survive to be distinct bound satellites of the Milky Way at z=0z = 0. Reionization models requiring star formation in such halos will produce dozens of bound galaxies in the Milky Way's virial volume today (and 100 - 200 throughout the Local Group), each with ≳105 MβŠ™\gtrsim 10^{5}\,M_{\odot} of old stars (≳13\gtrsim 13 Gyr). This exceeds the stellar mass function of classical Milky Way satellites today, even without allowing for the (significant) post-reionization star formation observed in these galaxies. One possible implication of these findings is that star formation became sharply inefficient in halos smaller than ∼109 MβŠ™\sim 10^9 \,M_{\odot} at early times, implying that the high-zz luminosity function must break at magnitudes brighter than is often assumed (at MUVβ‰ˆβˆ’14{\rm M_{UV}} \approx -14). Our results suggest that JWST (and possibly even HST with the Frontier Fields) may realistically detect the faintest galaxies that drive reionization. It remains to be seen how these results can be reconciled with the most sophisticated simulations of early galaxy formation at present, which predict substantial star formation in Mvir∼108 MβŠ™M_{\rm vir} \sim 10^8 \, M_{\odot} halos during the epoch of reionization.Comment: 6 pages, 4 figures; minor updates. Published in MNRAS Letter

    Through a Smoother Lens: An expected absence of LCDM substructure detections from hydrodynamic and dark matter only simulations

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    A fundamental prediction of the cold dark matter cosmology is the existence of a large number of dark subhalos around galaxies, most of which should be entirely devoid of stars. Confirming the existence of dark substructures stands among the most important empirical challenges in modern cosmology: if they are found and quantified with the mass spectrum expected, then this would close the door on a vast array of competing theories. But in order for observational programs of this kind to reach fruition, we need robust predictions. Here we explore substructure predictions for lensing using galaxy lens-like hosts at z=0.2 from the Illustris simulations both in full hydrodynamics and dark matter only. We quantify substructures more massive than ~ 10^9 M_sun, comparable to current lensing detections derived from HST, Keck, and ALMA. The addition of full hydrodynamics reduces the overall subhalo mass function by about a factor of two. Even for the dark matter only runs, most (~ 85%) lines of sight through projected cylinders of size close to an Einstein radius contain no substructures larger than 10^9 M_sun. The fraction of empty sight lines rises to ~ 95% in full physics simulations. This suggests we will likely need hundreds of strong lensing systems suitable for substructure studies, as well as predictions that include the effects of baryon physics on substructure, to properly constrain cosmological models. Fortunately, the field is poised to fulfill these requirements.Comment: 11 pages, 9 figure

    On the stark difference in satellite distributions around the Milky Way and Andromeda

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    We compare spherically-averaged radial number counts of bright (> 10^5 Lsun) dwarf satellite galaxies within 400 kpc of the Milky Way (MW) and M31 and find that the MW satellites are much more centrally concentrated. Remarkably, the two satellite systems are almost identical within the central 100 kpc, while M31 satellites outnumber MW satellites by about a factor of four at deprojected distances spanning 100 - 400 kpc. We compare the observed distributions to those predicted for LCDM suhbalos using a suite of 44 high-resolution ~10^12 halo zoom simulations, 22 of which are in pairs like the MW and M31. We find that the radial distribution of satellites around M31 is fairly typical of those predicted for subhalos, while the Milky Way's distribution is more centrally concentrated that any of our simulated LCDM halos. One possible explanation is that our census is bright (> 10^5 Lsun) MW dwarf galaxies is significantly incomplete beyond ~ 100 kpc of the Sun. If there were ~8 - 20 more bright dwarfs orbiting undetected at 100 - 400 kpc, then the Milky Way's radial distribution would fall within the range expected from subhalo distributions and alos look very much like the known M31 system. We use our simulations to demonstrate that there is enough area left unexplored by the Sloan Digital Sky Survey and its extensions that the discovery of ~10 new bright dwarfs is not implausible given the expected range of angular anisotropy of subhalos in the sky.Comment: 10 pages, 8 figures, submitted to MNRA

    Organized Chaos: Scatter in the relation between stellar mass and halo mass in small galaxies

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    We use Local Group galaxy counts together with the ELVIS N-body simulations to explore the relationship between the scatter and slope in the stellar mass vs. halo mass relation at low masses, M⋆≃105βˆ’108MβŠ™M_\star \simeq 10^5 - 10^8 M_\odot. Assuming models with log-normal scatter about a median relation of the form Mβ‹†βˆMhaloΞ±M_\star \propto M_\mathrm{halo}^\alpha, the preferred log-slope steepens from α≃1.8\alpha \simeq 1.8 in the limit of zero scatter to α≃2.6\alpha \simeq 2.6 in the case of 22 dex of scatter in M⋆M_\star at fixed halo mass. We provide fitting functions for the best-fit relations as a function of scatter, including cases where the relation becomes increasingly stochastic with decreasing mass. We show that if the scatter at fixed halo mass is large enough (≳1\gtrsim 1 dex) and if the median relation is steep enough (α≳2\alpha \gtrsim 2), then the "too-big-to-fail" problem seen in the Local Group can be self-consistently eliminated in about ∼5βˆ’10%\sim 5-10\% of realizations. This scenario requires that the most massive subhalos host unobservable ultra-faint dwarfs fairly often; we discuss potentially observable signatures of these systems. Finally, we compare our derived constraints to recent high-resolution simulations of dwarf galaxy formation in the literature. Though simulation-to-simulation scatter in M⋆M_\star at fixed MhaloM_\mathrm{halo} is large among separate authors (∼2\sim 2 dex), individual codes produce relations with much less scatter and usually give relations that would over-produce local galaxy counts.Comment: 15 pages, 6 figures, 1 table. Accepted for publication into MNRA

    The Mass Dependance of Satellite Quenching in Milky Way-like Halos

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    Using the Sloan Digital Sky Survey, we examine the quenching of satellite galaxies around isolated Milky Way-like hosts in the local Universe. We find that the efficiency of satellite quenching around isolated galaxies is low and roughly constant over two orders of magnitude in satellite stellar mass (Mβˆ—M_{*} = 108.5βˆ’1010.5 MβŠ™10^{8.5}-10^{10.5} \, M_{\odot}), with only ∼ 20%\sim~20\% of systems quenched as a result of environmental processes. While largely independent of satellite stellar mass, satellite quenching does exhibit clear dependence on the properties of the host. We show that satellites of passive hosts are substantially more likely to be quenched than those of star-forming hosts, and we present evidence that more massive halos quench their satellites more efficiently. These results extend trends seen previously in more massive host halos and for higher satellite masses. Taken together, it appears that galaxies with stellar masses larger than about 108Β MβŠ™10^{8}~M_{\odot} are uniformly resistant to environmental quenching, with the relative harshness of the host environment likely serving as the primary driver of satellite quenching. At lower stellar masses (<108Β MβŠ™< 10^{8}~M_{\odot}), however, observations of the Local Group suggest that the vast majority of satellite galaxies are quenched, potentially pointing towards a characteristic satellite mass scale below which quenching efficiency increases dramatically.Comment: 14 pages, 8 figure
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