---
title: 'Pegasus W: Ultra-Faint Dwarf Galaxy'
url: https://www.emergentmind.com/topics/pegasus-w
type: topic
---

# Pegasus W: Ultra-Faint Dwarf Galaxy

Searching arXiv for Pegasus W and closely related Local Group ultra-faint dwarf galaxy work.
Pegasus W is an ultra-faint dwarf galaxy in the Local Group, identified on the far side of the Milky Way–M31 system and presently located outside the virial radius of M31. It was reported as a newly discovered ultra-faint dwarf with a distance of \(915^{+60}_{-91}\) kpc, a half-light radius of \(100^{+11}_{-13}\) pc, absolute magnitude \(M_V=-7.20^{+0.17}_{-0.16}\) mag, and present-day stellar mass \(6.5^{+1.1}_{-1.5}\times10^4\,M_\odot\) [2301.04157]. Its significance lies in the combination of very low stellar mass, extended star-formation history, and late quenching time despite its current position beyond M31’s virial radius, which bears directly on debates over whether ultra-faint dwarfs are uniformly fossils of reionization or can instead remain star-forming for several gigayears under environmental influence [2301.04157].

## 1. Discovery and astrophysical classification

Pegasus W was reported as a newly discovered ultra-faint dwarf galaxy, or UFD, in the Local Group [2301.04157]. The discovery paper places it on the far side of the Milky Way–M31 system and specifically outside the virial radius of M31, making it unusual among UFDs used to study quenching, since many of the best-studied systems are satellites deep inside the halos of the Milky Way or M31 [2301.04157].

The galaxy is located at a 3D separation of 348 kpc from M31. Adopting \(R_{\rm vir}=300\) kpc for M31, this places Pegasus W beyond the virial radius, at about \(1.2\times R_{\rm vir}\) [2301.04157]. The paper therefore frames Pegasus W as a test case for whether a galaxy with present-day stellar mass below \(10^5\,M_\odot\) must have been rapidly quenched by reionization, or whether prolonged star formation can instead occur in such low-mass systems [2301.04157].

Its principal structural and photometric properties place it securely in the UFD regime. The reported values are summarized below.

| Quantity | Reported value |
|---|---:|
| Distance | \(915^{+60}_{-91}\) kpc |
| Half-light radius | \(100^{+11}_{-13}\) pc |
| Absolute magnitude | \(M_V=-7.20^{+0.17}_{-0.16}\) mag |
| Present-day stellar mass | \(6.5^{+1.1}_{-1.5}\times10^4\,M_\odot\) |
| Distance from M31 | 348 kpc |

In the \(M_V\)–\(r_h\) plane, Pegasus W overlaps known dwarf galaxies rather than globular clusters, although it is described as somewhat more compact than some systems of similar luminosity [2301.04157]. This classification matters because the paper’s interpretation depends on Pegasus W being a bona fide UFD rather than a star cluster.

A common misconception is that the designation itself implies a previously established subcomponent or catalog family. The discovery paper instead treats Pegasus W straightforwardly as a newly identified ultra-faint dwarf galaxy and does not present it as a formal substructure of another Pegasus system [2301.04157].

## 2. Observations, photometry, and distance determination

Pegasus W was initially identified in the DESI Legacy Imaging Surveys as an overdensity in a photometric stellar catalog [2301.04157]. Its decisive characterization came from follow-up Hubble Space Telescope imaging. The core observations were obtained with HST/ACS WFC on 2022 June 27 in F606W and F814W, with total integration times of 1140 s in each filter, under program HST-GO-16916 [2301.04157]. A parallel field was simultaneously observed with HST/WFC3 UVIS in the same filters, with exposure times of 1020 s in F606W and 1045 s in F814W [2301.04157].

Photometry was performed on charge-transfer-efficiency-corrected \(\texttt{flc.fits}\) images using DOLPHOT, with ACS/WFC- and WFC3/UVIS-specific modules [2301.04157]. The catalog was filtered with explicit quality cuts: error flag \(<4\), object type \(\le 2\), signal-to-noise ratio \(\ge 5\) in both filters, \(\mathrm{sharp}_{F606W}^2+\mathrm{sharp}_{F814W}^2<0.075\), and \(\mathrm{crowd}_{F606W}+\mathrm{crowd}_{F814W}<0.1\) [2301.04157]. About 500,000 artificial stars were injected per dataset to characterize completeness and photometric uncertainty [2301.04157].

The distance determination relies on the luminosity of horizontal branch stars rather than the tip of the red giant branch, because the upper RGB is too sparsely populated for a secure TRGB estimate [2301.04157]. After transformation from ACS photometry into Johnson \(V\) and correction for foreground extinction, the extinction-corrected HB magnitude was measured as
\[
m_{V,0}=25.30^{+0.12}_{-0.20}\ \mathrm{mag}
\]
using a maximum-likelihood fit to the HB luminosity function [2301.04157].

For the absolute HB calibration, the paper adopts
\[
M_V=(0.13\pm0.09)\times {\rm [Fe/H] + 1.5} + (0.54\pm0.07),
\]
with \([\mathrm{M/H}]=-1.9\pm0.1\) used as representative of \([\mathrm{Fe/H}]\) for the distance calculation [2301.04157]. This yields a distance modulus
\[
\mu=24.81^{+0.14}_{-0.22}\ \mathrm{mag}
\]
and corresponding distance
\[
D=915^{+60}_{-91}\ \mathrm{kpc}
\]
[2301.04157].

This distance is central to the scientific interpretation, because it places Pegasus W beyond M31’s virial radius while still near enough for plausible environmental influence. A plausible implication is that Pegasus W occupies a regime especially useful for separating present-day host membership from cumulative environmental history.

## 3. Structure, luminosity, and stellar content

The spatial structure of Pegasus W was derived from the distribution of stars in the ACS field using an unbinned maximum-likelihood MCMC fit to an exponential stellar density profile [2301.04157]. The galaxy surface-density model is written as
\[
\rho_\text{gal}(r)=
\frac{1.68^2}{2\pi r_{h}^{2}(1-\epsilon)} N_{\star} \exp(-1.68r/r_{h}),
\]
with elliptical radius
\[
\begin{split}
r = \biggl\{\left[ \frac{1}{1-\epsilon} ((x-x_{0})\,\textrm{cos}\,\theta - (y-y_{0})\,\textrm{sin} \,\theta)\right]^{2} + \\
((x-x_{0})\,\textrm{sin}\,\theta + (y-y_{0})\,\textrm{cos}\,\theta)^{2}\biggr\}^{1/2}.
\end{split}
\]
A constant background term \(\Sigma_b\) is included, and the likelihood is given in the printed text as
\[
\mathcal{L}(p_1, p_2, ... ,p_6) = \prod_{i} \ell_{i} (p_1, p_2, ... ,p_6),
\]
with log-likelihood
\[
\textrm{ln}\,\mathcal{L} = \sum_{i}^{N_\text{obs} \rho_\text{model}(r_{i}) - N_\text{obs}.
\]
These expressions are reproduced as printed in the paper [2301.04157].

The fitted structural parameters are RA \(358.31248167^\circ \pm 1''\), Dec \(22.10197022^\circ \pm 1''\), position angle \(92\pm3^\circ\) east of north, ellipticity \(0.17^{+0.07}_{-0.08}\), half-light radius \(23\pm2''\), and half-light radius \(100^{+11}_{-13}\) pc [2301.04157]. The background density is reported as \(\Sigma_b=16.8^{+4.1}_{-15.4}\ {\rm arcmin}^{-2}\) [2301.04157].

The total luminosity and stellar mass were inferred using the best-fit star-formation history together with Monte Carlo realizations. The final absolute magnitude is
\[
M_V=-7.20^{+0.17}_{-0.16}\ \mathrm{mag},
\]
and the adopted present-day stellar mass is
\[
M_* = 6.5^{+1.1}_{-1.5}\times10^4\,M_\odot
\]
[2301.04157]. The latter combines two estimates: \(6.9^{+1.1}_{-1.0}\times10^4\,M_\odot\) from synthetic populations and \(6.1^{+0.9}_{-1.5}\times10^4\,M_\odot\) from the total mass formed in the SFH after IMF-normalization and recycling corrections [2301.04157].

The color–magnitude diagram shows a red giant branch, both blue and red horizontal branch, and a red clump [2301.04157]. These features establish a predominantly old, metal-poor stellar population and provide the basis for both the distance estimate and the star-formation-history reconstruction.

The paper also notes possible evidence for younger populations. Four stars above the HB at approximately \(F606W-F814W<0.8\) and \(F606W<24.8\) are consistent with blue helium-burning stars younger than 500 Myr, and 30 faint blue sources below the HB may trace a blue-plume population [2301.04157]. However, the authors explicitly treat these as tentative because they could instead be contaminants or blue stragglers [2301.04157]. This caution is important: the paper does not claim definitive recent star formation, only suggestive evidence.

## 4. Star-formation history and quenching timescale

The star-formation history of Pegasus W was reconstructed by fitting the CMD with MATCH, using a Kroupa IMF, a 35% binary fraction with flat secondary-mass distribution, and stellar libraries BaSTI, PARSEC, and MIST [2301.04157]. The fit spans \(\log(t/{\rm yr})=6.6\)–10.15, with metallicities from \([\mathrm{M/H}]=-2.0\) to \(-1.0\) in 0.15 dex spacing, and enforces a continuous, non-decreasing metallicity history [2301.04157].

The fiducial solution adopts the BaSTI library, which produced a slightly better overall fit [2301.04157]. The resulting SFH is extended rather than confined to the earliest epoch of cosmic history. Pegasus W is reported to have formed 50% of its stellar mass after \(z\sim6\), formed 10% of its stellar mass within the last several Gyr, and possibly continued forming stars into the last gigayear, with the \(<500\) Myr component depending on whether the candidate BHeB stars are genuine members [2301.04157]. The SFH rises until about 7 Gyr ago and then declines [2301.04157].

The paper quantifies quenching using \(\tau_{90}\), defined verbally as the lookback time by which the galaxy formed 90% of its stellar mass [2301.04157]. The reported value is
\[
\tau_{90}=7.4^{+2.2}_{-2.6}\ {\rm Gyr},
\]
which the authors interpret as the quenching time, approximately corresponding to \(z\sim0.9\) [2301.04157].

This late quenching is one of the defining results for Pegasus W. It differs sharply from the standard picture in which UFDs at such low stellar mass are quenched rapidly by reionization. The paper also shows that removing the candidate very young stars eliminates star formation at \(<500\) Myr but does not remove the inferred 1–3 Gyr activity, and changes the total stellar mass by only about 1–2% [2301.04157]. Thus, the overall inference of an extended SFH does not hinge on the most speculative recent-age CMD features.

A frequent oversimplification is to equate all UFDs with ancient, purely reionization-quenched fossils. Pegasus W provides a counterexample within the limits of current CMD depth, because its measured \(\tau_{90}\) and cumulative SFH are inconsistent with such a uniformly early shutdown [2301.04157].

## 5. Reionization, environmental quenching, and Local Group context

The paper’s central interpretive claim is that Pegasus W’s star-formation history is too extended to be explained by rapid quenching due solely to cosmic reionization [2301.04157]. Simulations are described as often placing the stellar-mass threshold for efficient reionization quenching around
\[
M_* \sim 10^5\,M_\odot,
\]
possibly with additional help from stellar feedback [2301.04157]. Pegasus W has
\[
M_*=6.5^{+1.1}_{-1.5}\times10^4\,M_\odot,
\]
which is below that rough threshold, yet it formed a substantial fraction of its stars after \(z\sim6\) and quenched only \(7.4^{+2.2}_{-2.6}\) Gyr ago [2301.04157].

The authors therefore argue that pure reionization quenching is disfavored. They do note that stellar mass is only an imperfect proxy for halo mass, so Pegasus W could have occupied a somewhat more massive halo than its stellar mass alone suggests [2301.04157]. Even so, their interpretation is that a simple rapid-reionization scenario is not adequate.

In comparative context, Pegasus W resembles some M31 UFD satellites more than the best-studied Milky Way UFDs. Several M31 UFDs with \(10^4<M_*<10^5\,M_\odot\) are said to show somewhat extended SFHs and later quenching, whereas six Milky Way UFDs in the overlapping range \(6\times10^3<M_*<5\times10^4\,M_\odot\) formed 80% of their stars by \(z\sim6\) and 100% by \(z\sim3\) [2301.04157]. Pegasus W is therefore significantly more prolonged in its star formation than the canonical Milky Way UFD sample discussed there [2301.04157].

The preferred explanation is environmental quenching linked to M31, despite Pegasus W’s current location outside the virial radius [2301.04157]. The reasoning is cumulative: Pegasus W lies at 348 kpc from M31, observational work suggests transitions in dwarf-galaxy properties out to about 400 kpc or \(\sim1.33\,R_{\rm vir}\), simulations indicate environmental effects can extend beyond \(R_{\rm vir}\), and very high-resolution simulations suggest that most galaxies within \(1.5\times R_{\rm vir}\) may be backsplash systems [2301.04157]. On this basis, the paper proposes that Pegasus W could be a backsplash galaxy that once passed through M31’s halo and was slowly quenched by ram-pressure stripping, tidal stripping, or partial gas removal [2301.04157].

This interpretation remains explicitly somewhat speculative because Pegasus W’s orbital history is unknown [2301.04157]. A plausible implication is that Pegasus W may be more informative about cumulative environmental processing than about present-day host membership alone.

## 6. Uncertainties, limitations, and future work

The paper is explicit about the main limitations of the present analysis [2301.04157]. The HST photometry reaches only about 2 mag below the horizontal branch and does not reach the oldest main-sequence turnoff. As a result, the old SFH is subject to age–metallicity degeneracy, and the exact early-time star-formation chronology is less tightly constrained than it would be with deeper imaging [2301.04157].

The possible young stellar component is also uncertain. The candidate BHeB and blue-plume populations are suggestive but not secure, because some of the blue stars may be contaminants and the blue-plume population may instead consist of blue stragglers [2301.04157]. The paper further notes that the stellar-evolution libraries used for SFH fitting do not explicitly include blue-straggler populations [2301.04157].

Additional observational constraints are limited. Pegasus W is not detected in GALEX UV imaging, but the paper notes that this is unsurprising given GALEX depth and the short timescales traced by UV; it is also not detected in ALFALFA HI, although gas below the survey limit could still be present [2301.04157]. Spectroscopic data are lacking, so membership confirmation, internal kinematics, dark-matter content, and present-day radial trajectory remain unconstrained [2301.04157].

The authors identify two major priorities for future work: deeper imaging that reaches the oldest main-sequence turnoff, and spectroscopy of Pegasus W stars [2301.04157]. Deeper imaging would reduce age–metallicity degeneracy and sharpen the SFH and quenching-time estimates, while spectroscopy would constrain membership, internal dynamics, dark-matter content, and orbital status in the Local Group [2301.04157]. These measurements would directly test the backsplash interpretation and help determine whether the putative young stars are genuinely associated with Pegasus W [2301.04157].

Pegasus W is therefore best understood not as an isolated anomaly but as a high-value case in the broader study of ultra-faint dwarf evolution. Its combination of UFD-scale stellar mass, present-day location beyond M31’s virial radius, and quenching time of \(7.4^{+2.2}_{-2.6}\) Gyr makes it a key empirical constraint on how reionization, halo mass, and environmental processing jointly shape the faintest galaxies in the Local Group [2301.04157].

Source: https://www.emergentmind.com/topics/pegasus-w