A measurement at the FRIB and ATLAS accelerator facilities puts the krypton-88 neutron-capture rate consistently lower than predicted, the quantity named behind a strontium shortfall in i-process models.
Scientists measure neutron capture rate in lab experiment AI illustrationhow this picture was madeResearchers at the Facility for Rare Isotope Beams (FRIB) and the Argonne Tandem Linac Accelerator System (ATLAS) in the US, with 12 other institutions in Canada and Europe, measured the neutron-capture rate of krypton-88 and found it consistently lower than theoretical predictions. They produced krypton-89 and observed its gamma-ray emissions with the Summing NaI (SuN) detector, capturing the rate indirectly.[2]
Neutron capture on krypton-88 had been flagged as the key unknown behind the strontium shortfall in i-process models, according to Falk Herwig, professor of physics and astronomy at the University of Victoria.[1]
Herwig said that with the main nuclear uncertainty removed, modelers can turn to neutron densities and the timing of nuclear burning to close the remaining gap.[4]Researchers from the Facility for Rare Isotope Beams (FRIB) and the Argonne Tandem Linac Accelerator System (ATLAS) in the United States, along with 12 other institutions from Canada and Europe, measured the neutron capture rate of krypton-88 and found it to be consistently lower than theoretical predictions. They produced krypton-89 and observed its gamma-ray emissions with the Summing NaI (SuN) detector, capturing the rate indirectly.[2]Neutron capture on krypton-88 had been flagged as the key uncertainty behind the strontium deficit in i-process models, according to Falk Herwig, a physics and astronomy professor at the University of Victoria.[1]Herwig said that with the main nuclear uncertainty removed, modelers can focus on neutron densities and the timing of nuclear burning to close the remaining gap.[4]
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Falk Herwig, professor of physics and astronomy at the University of Victoria, stated in the article that neutron capture on krypton-88 had been flagged as the key unknown behind the strontium shortfall in i-process models. · Interesting Engineering
Researchers at the Facility for Rare Isotope Beams (FRIB) and the Argonne Tandem Linac Accelerator System (ATLAS) in the US, along with 12 other institutions in Canada and Europe, measured the neutron-capture rate of krypton-88 indirectly by producing krypton-89 and observing its gamma-ray emissions with the Summing Nal (SuN) detector, and found the rate to be consistently lower than theoretical predictions. · Interesting Engineering
Adilson Motter, the Charles E. and Emma H. Morrison Professor of Physics and Astronomy at Northwestern, stated that previous studies found disorder improves stability in power grids, metamaterials, and brain computation. · Phys.org
Falk Herwig, professor of physics and astronomy at the University of Victoria, said that the models had flagged neutron capture on krypton-88 as the key unknown behind the strontium shortfall, and that with the main nuclear uncertainty removed, modelers can turn to neutron densities and timing of nuclear burning to close the remaining gap. · Phys.org
Carlos Román, a geographer from the Institute of Astronomy and Meteorology at the University of Guadalajara, stated on 2026-09-17 that maximum temperatures in Jalisco on Thursday ranged between 30 and 31 degrees Celsius. · El Heraldo de MéxicoMexico
The one we could place publishes from Mexico. 2 could not be placed by their address. None is an official body: that part stands on reporting, not on the underlying document or transcript.