Javascript must be enabled to continue!
Isotopic Compositions of Ruthenium Predicted from the NuGrid Project
View through CrossRef
Abstract
The isotopic compositions of ruthenium (Ru) are measured from presolar silicon carbide (SiC) grains. In a popular scenario, the presolar SiC grains formed in the outskirt of an asymptotic giant branch (AGB) star, left the star as a stellar wind, and joined the presolar molecular cloud from which the solar system formed. The Ru isotopes formed inside the star, moved to the stellar surface during the AGB phase, and were locked into the SiC grains. Following this scenario, we analyze the Nucleosynthesis Grid (NuGrid) data, which provide the abundances of the Ru isotopes in the stellar wind for a set of stars in a wide range of initial masses and metallicities. We apply the C > O (carbon abundance larger than the oxygen abundance) condition, which is commonly adopted for the condition of the SiC formation in the stellar wind. The NuGrid data confirm that SiC grains do not form in the winds of massive stars. The isotopic compositions of Ru in the winds of low-mass stars can explain the measurements. We find that lower-mass stars (1.65 M
☉ and 2 M
☉) with low metallicity (Z = 0.0001) can explain most of the measured isotopic compositions of Ru. We confirm that the abundance of 99 Ru inside the presolar grain includes the contribution from the in situ decay of 99 Tc. We also verify our conclusion by comparing the isotopic compositions of Ru integrated over all the pulses with those calculated at individual pulses.
Title: Isotopic Compositions of Ruthenium Predicted from the NuGrid Project
Description:
Abstract
The isotopic compositions of ruthenium (Ru) are measured from presolar silicon carbide (SiC) grains.
In a popular scenario, the presolar SiC grains formed in the outskirt of an asymptotic giant branch (AGB) star, left the star as a stellar wind, and joined the presolar molecular cloud from which the solar system formed.
The Ru isotopes formed inside the star, moved to the stellar surface during the AGB phase, and were locked into the SiC grains.
Following this scenario, we analyze the Nucleosynthesis Grid (NuGrid) data, which provide the abundances of the Ru isotopes in the stellar wind for a set of stars in a wide range of initial masses and metallicities.
We apply the C > O (carbon abundance larger than the oxygen abundance) condition, which is commonly adopted for the condition of the SiC formation in the stellar wind.
The NuGrid data confirm that SiC grains do not form in the winds of massive stars.
The isotopic compositions of Ru in the winds of low-mass stars can explain the measurements.
We find that lower-mass stars (1.
65 M
☉ and 2 M
☉) with low metallicity (Z = 0.
0001) can explain most of the measured isotopic compositions of Ru.
We confirm that the abundance of 99 Ru inside the presolar grain includes the contribution from the in situ decay of 99 Tc.
We also verify our conclusion by comparing the isotopic compositions of Ru integrated over all the pulses with those calculated at individual pulses.
Related Results
Isotopic Signatures of Precipitation: Linking Tropospheric and Surface Processes in India's Core Monsoon Zone
Isotopic Signatures of Precipitation: Linking Tropospheric and Surface Processes in India's Core Monsoon Zone
The monsoon system is a dynamic and complex component of the atmospheric water cycle, profoundly impacting weather, climate, and human activities. A variety of meteorological obser...
Platinum stable isotope fractionation and adsorption on marine ferromanganese oxide substrates
Platinum stable isotope fractionation and adsorption on marine ferromanganese oxide substrates
<p><b>In the modern oxic ocean, ferromanganese sediments in the form of crusts and nodules precipitate directly from seawater over geological timescales. These slow gro...
Ruthenium Speciation in Extraction Phases of Nuclear Fuel Recycling Processes
Ruthenium Speciation in Extraction Phases of Nuclear Fuel Recycling Processes
Spéciation du ruthénium dans les solutions d’extraction des procédés de recyclage du combustible nucléaire
Le ruthénium est un produit de fission qui peut complique...
Nanostructured Nickel/Ruthenium/Ruthenium‐Oxide Supercapacitor Displaying Exceptional High Frequency Response
Nanostructured Nickel/Ruthenium/Ruthenium‐Oxide Supercapacitor Displaying Exceptional High Frequency Response
AbstractThe lower performance of pseudocapacitive supercapacitors in high‐frequency applications such as alternating current (AC) line filtering has been ascribed to presumed slow ...
Abyssal peridotite osmium isotopic compositions from cr‐spinel
Abyssal peridotite osmium isotopic compositions from cr‐spinel
Abyssal peridotites, fragments of residual upper oceanic mantle, are believed to have less radiogenic Os compositions and higher Os concentrations than primitive upper mantle (PUM,...
Aspects of the petrology and geochemistry of the Huckleberry Ridge Tuff, Yellowstone
Aspects of the petrology and geochemistry of the Huckleberry Ridge Tuff, Yellowstone
<p>Silicic (i.e. dacitic-rhyolitic) magmatic systems have the potential to generate large, explosive caldera-forming eruptions which have global effects and consequences. How...
Assessing the potential composition of Europa’s subsurface ocean from water-rock interactions.
Assessing the potential composition of Europa’s subsurface ocean from water-rock interactions.
<p><strong>Introduction:</strong> Constraining the composition of Europa&#8217;s ocean is critical to understanding whether it cou...
Coordination Chemistry of Ruthenium
Coordination Chemistry of Ruthenium
Ruthenium is one of the rare elements that belongs to the platinum group metals. Ruthenium is very effective hardener for platinum and palladium. Well studied coordination and orga...

