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Natural Sciences

Sept. 18, 2026 | Read time 5 min

Unlocking the cosmic recipe for strontium

An international research team including scientists at Michigan State University’s Facility for Rare Isotope Beams has reported the first experimental investigation of a nuclear physics reaction essential for understanding how the element strontium is produced in stars, specifically in stellar environments where traditional explanations for its formation fall short. The study, “Influence of neutron-capture reactions on the nucleosynthesis of strontium,” published June 8 in Communications Physics, reports that the team used indirect experimental techniques to extract previously inaccessible information about how an isotope of a separate element, krypton, absorbs, or captures, neutrons.

Portrait of Artemis Spyrou smiling
Artemis Spyrou

Their measurements reduced the uncertainty of the neutron-capture rate of this isotope, krypton-88, from at least a factor of eight to about a factor of three. The team found that the measured rate of neutron capture by krypton-88 is consistently lower than theoretical predictions. When they incorporated these observations into models of how stars forge heavy elements through the intermediate neutron-capture process, or i-process, they discovered that the new rate increased the predicted amount of strontium, bringing simulations into better agreement with astronomical observations.

The team behind the discovery

The project was led by Caley Harris, a former graduate student at FRIB, and included researchers from 12 institutions in the United States, Canada and Europe.

“It turns out that explaining the abundances of elements in the universe is slightly more complicated than previously thought,” said Artemis Spyrou, professor of physics at FRIB and in MSU’s Department of Physics and Astronomy.

“Our models had flagged neutron capture on krypton-88 as the key unknown behind the strontium shortfall,” said Falk Herwig, professor of physics and astronomy at the University of Victoria and a coauthor of the study. “The measurement guides our next simulation and theory steps.”

The team installed FRIB’s Summing NaI detector, known as SuN, at the Argonne Tandem Linac Accelerator System, or ATLAS, a U.S. Department of Energy Office of Science user facility at the department’s Argonne National Laboratory, producing krypton-89 (krypton-88 plus one neutron) and measuring its gamma-ray emissions to infer the krypton-88 neutron-capture rate.

“The combination of a state-of-the-art instrument such as the SuN detector and the unique high-purity beams provided by ATLAS leads to powerful new insight into important nucleosynthesis processes,” said coauthor Guy Savard, ATLAS scientific director and Argonne distinguished fellow.

Illustration of krypton-88 capturing a neutron to become krypton-89 and emitting gamma rays, above a chart of atomic nuclei highlighting strontium against a starry background.

Why strontium matters on Earth and in astrophysics

Strontium is an alkaline earth metal widely used in glow-in-the-dark paint, fireworks and archaeological analysis. Scientists use strontium isotopes to determine a specimen’s place of origin, diet or age.

In astrophysics, understanding how strontium forms are crucial for interpreting the chemical signatures of very old stars, which preserve information about early nucleosynthesis, the formation of atomic nuclei in the universe.

Why strontium’s formation has been a puzzle

Most chemical elements heavier than helium were formed by stellar activity. Since the 1950s, scientists have relied on three established processes to explain the formation of elements heavier than iron:

  • Rapid neutron-capture process, or r-process
  • Slow neutron-capture process, or s-process
  • P-process, which involves gamma-ray-driven removal of neutrons, protons or alpha particles, a specific combination of protons and neutrons

This framework appeared largely complete until the 1990s, when scientists observed elemental abundances in very old stars that were not consistent with any of these processes. Strontium was among the elements whose abundance could not be explained.

One proposed explanation is the i-process, which occurs in conditions between those of the s- and the r-processes, with neutron densities and timescales on the order of minutes. During the i-process, atomic nuclei rapidly absorb neutrons and create heavier elements.

While i-process models reproduce many observed elemental abundances, they consistently produce too little strontium, pointing to missing or uncertain nuclear data, particularly the neutron-capture rate of krypton-88.

How the experiment worked

Neutron-capture reactions are difficult to measure directly because the nuclei involved are often short-lived, the reactions occur infrequently and the stellar conditions are hard to recreate in the laboratory.

To overcome these challenges, the team used indirect methods:

  • They produced krypton-89 (krypton-88 plus one neutron).
  • As krypton‑89 decayed to lower‑energy states, it emitted gamma rays.
  • The SuN detector, installed at the Californium Rare Isotope Breeder Upgrade facility at ATLAS, captured these gamma rays, allowing researchers to reconstruct the reaction pathway and infer the krypton-88 neutron-capture rate.

The impact of the new measurement and what comes next

The team found that their newly determined krypton-88 neutron-capture rate is consistently lower than theoretical predictions. They explored the impact of the new rate on the production of strontium in old stars using various i-process models. All models tested with the new rate produced more strontium, bringing the results into better agreement with astronomical observations.

With this key nuclear uncertainty reduced, the authors recommend further investigation of i-process models, including the roles of neutron densities and the time evolution of nuclear burning inside stars.

“Now that we know this reaction rate, the next step is again on us as modelers,” Herwig said. “With the main nuclear uncertainty removed, we can turn to the astrophysics, the neutron densities, and the timing of the burning, and work to close the remaining gap with what we see in the oldest stars.”

“The findings highlight how measurements of rare isotopes in the laboratory can help solve mysteries revealed by observations of very old stars, strengthening the connection between nuclear physics and astronomy,” Spyrou said.

This story was originally featured on frib.msu.edu.

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Emilie Lorditch
Natural SciencesEngineering, Science and TechnologyNuclear Science

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