Lensed stars in galaxy-galaxy strong lensing -- a JWST prediction for the Cosmic Horseshoe

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Hauptverfasser: Li, Sung Kei, Weisenbach, Luke, Collett, Thomas E., Diego, Jose M., Lim, Jeremy, Broadhurst, Thomas J., Chow, Alex, Enzi, Wolfgang J. R., Kelly, Patrick L., Melo-Carneiro, Carlos R., Palencia, Jose M., Williams, Liliya L. R., Zhang, Jiashuo
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Veröffentlicht: 2025
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author Li, Sung Kei
Weisenbach, Luke
Collett, Thomas E.
Diego, Jose M.
Lim, Jeremy
Broadhurst, Thomas J.
Chow, Alex
Enzi, Wolfgang J. R.
Kelly, Patrick L.
Melo-Carneiro, Carlos R.
Palencia, Jose M.
Williams, Liliya L. R.
Zhang, Jiashuo
author_facet Li, Sung Kei
Weisenbach, Luke
Collett, Thomas E.
Diego, Jose M.
Lim, Jeremy
Broadhurst, Thomas J.
Chow, Alex
Enzi, Wolfgang J. R.
Kelly, Patrick L.
Melo-Carneiro, Carlos R.
Palencia, Jose M.
Williams, Liliya L. R.
Zhang, Jiashuo
contents We explore for the first time the possibility of detecting lensed star transients in galaxy-galaxy strong lensing systems upon repeated, deep imaging using the {\it James-Webb Space Telescope} ({\it JWST}). Our calculation predicts that the extremely high recent star formation rate of $\sim 140\,M_{\odot}\textrm{yr}^{-1}$ over the last 50 Myr (not accounting for image multiplicity) in the ``Cosmic Horseshoe'' lensed system ($z = 2.381$) generates many young, bright stars, of which their large abundance is expected to lead to a detection rate of $\sim 60$ transients per pointing in {\it JWST} observations with a $5σ$ limiting magnitude of $\sim 29\,m_{AB}$. With the high expected detection rate and little room for uncertainty for the lens model compared with cluster lenses, our result suggests that the Cosmic Horseshoe could be an excellent tool to test the nature of dark matter based on the spatial distribution of transients, and can be used to constrain axion mass if dark matter is constituted of ultra-light axions. We also argue that the large distance modulus of $\sim46.5\,$mag at $z \approx 2.4$ can act as a filter to screen out less massive stars as transients and allow one to better constrain the high-mass end of the stellar initial mass function based on the transient detection rate. Follow-up {\it JWST} observations of the Cosmic Horseshoe would allow one to better probe the nature of dark matter and the star formation properties, such as the initial mass function at the cosmic noon, via lensed star transients.
format Preprint
id arxiv_https___arxiv_org_abs_2509_16154
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Lensed stars in galaxy-galaxy strong lensing -- a JWST prediction for the Cosmic Horseshoe
Li, Sung Kei
Weisenbach, Luke
Collett, Thomas E.
Diego, Jose M.
Lim, Jeremy
Broadhurst, Thomas J.
Chow, Alex
Enzi, Wolfgang J. R.
Kelly, Patrick L.
Melo-Carneiro, Carlos R.
Palencia, Jose M.
Williams, Liliya L. R.
Zhang, Jiashuo
Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
We explore for the first time the possibility of detecting lensed star transients in galaxy-galaxy strong lensing systems upon repeated, deep imaging using the {\it James-Webb Space Telescope} ({\it JWST}). Our calculation predicts that the extremely high recent star formation rate of $\sim 140\,M_{\odot}\textrm{yr}^{-1}$ over the last 50 Myr (not accounting for image multiplicity) in the ``Cosmic Horseshoe'' lensed system ($z = 2.381$) generates many young, bright stars, of which their large abundance is expected to lead to a detection rate of $\sim 60$ transients per pointing in {\it JWST} observations with a $5σ$ limiting magnitude of $\sim 29\,m_{AB}$. With the high expected detection rate and little room for uncertainty for the lens model compared with cluster lenses, our result suggests that the Cosmic Horseshoe could be an excellent tool to test the nature of dark matter based on the spatial distribution of transients, and can be used to constrain axion mass if dark matter is constituted of ultra-light axions. We also argue that the large distance modulus of $\sim46.5\,$mag at $z \approx 2.4$ can act as a filter to screen out less massive stars as transients and allow one to better constrain the high-mass end of the stellar initial mass function based on the transient detection rate. Follow-up {\it JWST} observations of the Cosmic Horseshoe would allow one to better probe the nature of dark matter and the star formation properties, such as the initial mass function at the cosmic noon, via lensed star transients.
title Lensed stars in galaxy-galaxy strong lensing -- a JWST prediction for the Cosmic Horseshoe
topic Cosmology and Nongalactic Astrophysics
Astrophysics of Galaxies
url https://arxiv.org/abs/2509.16154