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<titleInfo><title>A systematic survey for hypervelocity runaways from thermonuclear supernovae</title></titleInfo>


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<name type="personal">
  <namePart type="given">Kareem</namePart>
  <namePart type="family">El-Badry</namePart>
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  <namePart type="given">Klaus</namePart>
  <namePart type="family">Werner</namePart>
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<name type="personal">
  <namePart type="given">Ken J.</namePart>
  <namePart type="family">Shen</namePart>
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  <namePart type="given">Jay</namePart>
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<name type="personal">
  <namePart type="given">Antonio C.</namePart>
  <namePart type="family">Rodriguez</namePart>
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<name type="personal">
  <namePart type="given">Jiwon Jesse</namePart>
  <namePart type="family">Han</namePart>
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  <namePart type="given">Vedant</namePart>
  <namePart type="family">Chandra</namePart>
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  <namePart type="given">Laura</namePart>
  <namePart type="family">Chomiuk</namePart>
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  <namePart type="given">Zachary P.</namePart>
  <namePart type="family">Vanderbosch</namePart>
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  <namePart type="given">Lisa</namePart>
  <namePart type="family">Blomberg</namePart>
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  <namePart type="given">Joannes C</namePart>
  <namePart type="family">van Roestel</namePart>
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<abstract lang="eng">The explosion of a white dwarf (WD) in a close binary can launch a surviving runaway star at
velocities of ≳ 1000 km s−1
. Such runaways provide a direct probe of thermonuclear supernovae (SNe)
in double-degenerate binaries. Several candidate runaways are known, but their evolutionary states
and the demographics of the broader population are uncertain. To enable robust population inference,
we carry out a systematic survey for hypervelocity runaways with a simple selection function, selecting
candidates based on large Gaia-inferred tangential velocities and blue colors. We classify 100% of the
resulting 92 candidates using a combination of spectroscopic follow-up and archival data. The search
yields ten suspected D6
stars and three LP 40-365 stars. Three D6
stars are new discoveries, including
two hot (Teff ≳ 50,000 K) objects and one cool (Teff ≈ 7,000 K) object. We forward-model our survey
under several proposed D6
star evolutionary models, coupling each to a Galactic model and the survey
selection function. No single model reproduces the observed diversity of D6
stars, which likely reflects
a range of remnant masses, ages, and heating mechanisms. Models in which runaway companions
are heated by SN shocks alone are too faint and short-lived to explain most of the observed sample,
while fully reheated models are too luminous and long-lived. Models with intermediate heating,
as occurs in some simulations of violent mergers and partially disrupted remnants, best match the
observed magnitude, distance, and kinematic-age distributions. The inferred D6
star birth rate is
model dependent, but the models that best match the observed population require rates of only a
few percent of the Galactic SN Ia rate, perhaps implying that most SNe Ia result from WD binaries
in which both components explode. If most SNe Ia do produce surviving runaways, these must be
fainter or shorter-lived than the currently known runaways.</abstract>

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    <url displayLabel="2026_OpenJourAstrophysics_ElBadry.pdf">https://research-explorer.ista.ac.at/download/22270/22282/2026_OpenJourAstrophysics_ElBadry.pdf</url>
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</relatedItem><accessCondition type="use and reproduction">https://creativecommons.org/licenses/by/4.0/</accessCondition>
<originInfo><publisher>Maynooth Academic Publishing</publisher><dateIssued encoding="w3cdtf">2026</dateIssued>
</originInfo>
<language><languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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<subject><topic>white dwarfs</topic><topic>binaries: close</topic><topic>stars: chemically peculiar</topic>
</subject>


<relatedItem type="host"><titleInfo><title>The Open Journal of Astrophysics</title></titleInfo>
  <identifier type="eIssn">2565-6120</identifier>
  <identifier type="arXiv">2606.11293</identifier><identifier type="doi">10.33232/001c.164326</identifier>
<part><detail type="volume"><number>9</number></detail>
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<chicago>El-Badry, Kareem, Klaus Werner, Ken J. Shen, Jay Strader, Antonio C. Rodriguez, Jiwon Jesse Han, Vedant Chandra, et al. “A Systematic Survey for Hypervelocity Runaways from Thermonuclear Supernovae.” &lt;i&gt;The Open Journal of Astrophysics&lt;/i&gt;. Maynooth Academic Publishing, 2026. &lt;a href=&quot;https://doi.org/10.33232/001c.164326&quot;&gt;https://doi.org/10.33232/001c.164326&lt;/a&gt;.</chicago>
<ista>El-Badry K, Werner K, Shen KJ, Strader J, Rodriguez AC, Han JJ, Chandra V, Chomiuk L, Vanderbosch ZP, Blomberg L, Yamaguchi N, Nagarajan P, Caiazzo I, van Roestel JC, Glanz H, Wong TLS, Bhat A, Hollands MA. 2026. A systematic survey for hypervelocity runaways from thermonuclear supernovae. The Open Journal of Astrophysics. 9.</ista>
<ama>El-Badry K, Werner K, Shen KJ, et al. A systematic survey for hypervelocity runaways from thermonuclear supernovae. &lt;i&gt;The Open Journal of Astrophysics&lt;/i&gt;. 2026;9. doi:&lt;a href=&quot;https://doi.org/10.33232/001c.164326&quot;&gt;10.33232/001c.164326&lt;/a&gt;</ama>
<mla>El-Badry, Kareem, et al. “A Systematic Survey for Hypervelocity Runaways from Thermonuclear Supernovae.” &lt;i&gt;The Open Journal of Astrophysics&lt;/i&gt;, vol. 9, Maynooth Academic Publishing, 2026, doi:&lt;a href=&quot;https://doi.org/10.33232/001c.164326&quot;&gt;10.33232/001c.164326&lt;/a&gt;.</mla>
<apa>El-Badry, K., Werner, K., Shen, K. J., Strader, J., Rodriguez, A. C., Han, J. J., … Hollands, M. A. (2026). A systematic survey for hypervelocity runaways from thermonuclear supernovae. &lt;i&gt;The Open Journal of Astrophysics&lt;/i&gt;. Maynooth Academic Publishing. &lt;a href=&quot;https://doi.org/10.33232/001c.164326&quot;&gt;https://doi.org/10.33232/001c.164326&lt;/a&gt;</apa>
<short>K. El-Badry, K. Werner, K.J. Shen, J. Strader, A.C. Rodriguez, J.J. Han, V. Chandra, L. Chomiuk, Z.P. Vanderbosch, L. Blomberg, N. Yamaguchi, P. Nagarajan, I. Caiazzo, J.C. van Roestel, H. Glanz, T.L.S. Wong, A. Bhat, M.A. Hollands, The Open Journal of Astrophysics 9 (2026).</short>
<ieee>K. El-Badry &lt;i&gt;et al.&lt;/i&gt;, “A systematic survey for hypervelocity runaways from thermonuclear supernovae,” &lt;i&gt;The Open Journal of Astrophysics&lt;/i&gt;, vol. 9. Maynooth Academic Publishing, 2026.</ieee>
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