{"id":{"repo_id":"wustl","oai_identifier":"oai:openscholarship.wustl.edu:etd-1169"},"canonical_url":"https://search.dev.ndltd.org/etd/wustl/oai:openscholarship.wustl.edu:etd-1169","repository":{"repo_id":"wustl","name":"Washington University in St. Louis","base_url":"https://openscholarship.wustl.edu/do/oai/"},"display":{"title":"Multi-element isotopic analyses of presolar graphite grains from the Orgueil meteorite","abstract":"This dissertation presents the results and implications of the isotopic analyses of presolar graphite grains from the primitive carbonaceous chondrite, Orgueil. Graphite grains from low- and high-density fractions were analyzed for C, N, O, Si, Al-Mg, K, Ca, and Ti isotopes. These analyses indicate that isotopic properties are density dependent. Most low-density grains come from supernovae as indicated by large <super>18</super>O, <super>15</super>N, <super>28</super>Si excesses, high inferred <super>26</super>Al/<super>27</super>Al and <super>41</super>Ca/<super>40</super>Ca ratios, and the initial presence of the short-lived radionuclide <super>44</super>Ti in some grains. Some high-density grains also show supernovae signatures, but a majority seems to originate from low-metallicity asymptotic giant branch stars. Evidence for this comes from correlated <super>12</super>C and <super>30</super>Si enrichments. In low-metallicity asymptotic giant branch stars, <super>12</super>C and <super>29,30</super>Si that are produced in the He shell are mixed into the envelope by the third dredge-up during the thermally pulsing phase. This scenario also increases the C/O ratio of the envelope and favours the condensation of graphite grains over SiC grains. A minor fraction of high-density graphite grains exhibits very low <super>12</super>C/<super>13</super>C ratios and extremely large <super>42,43</super>Ca and <super>46,47,49,50</super>Ti excesses. These excesses are much larger than those expected in the envelopes of asymptotic giant branch stars and are as large as those predicted for pure He-shell material in those stars and the interior, O-rich zones of type II supernovae. However, these zones have almost pure <super>12</super>C, making the low <super>12</super>C/<super>13</super>C ratios enigmatic. We propose that born-again, asymptotic giant branch stars that have undergone a very late thermal pulse, such as Sakurai's object, might be the stellar source for these grains. In such stars, limited mixing of the He-burning intershell with the thin, residual hydrogen envelope leads to the production of <super>13</super>C and enables material with s-process enrichments and low <super>12</super>C/<super>13</super>C ratios to occur on the surface simultaneously. This study concludes that low-density graphite grains originate from supernovae while high-density graphite grains have multiple stellar sources: low-metallicity and born-again asymptotic giant branch stars, as well as supernovae.","abstract_html":"This dissertation presents the results and implications of the isotopic analyses of presolar graphite grains from the primitive carbonaceous chondrite, Orgueil. Graphite grains from low- and high-density fractions were analyzed for C, N, O, Si, Al-Mg, K, Ca, and Ti isotopes. These analyses indicate that isotopic properties are density dependent. Most low-density grains come from supernovae as indicated by large &lt;super&gt;18&lt;/super&gt;O, &lt;super&gt;15&lt;/super&gt;N, &lt;super&gt;28&lt;/super&gt;Si excesses, high inferred &lt;super&gt;26&lt;/super&gt;Al/&lt;super&gt;27&lt;/super&gt;Al and &lt;super&gt;41&lt;/super&gt;Ca/&lt;super&gt;40&lt;/super&gt;Ca ratios, and the initial presence of the short-lived radionuclide &lt;super&gt;44&lt;/super&gt;Ti in some grains. Some high-density grains also show supernovae signatures, but a majority seems to originate from low-metallicity asymptotic giant branch stars. Evidence for this comes from correlated &lt;super&gt;12&lt;/super&gt;C and &lt;super&gt;30&lt;/super&gt;Si enrichments. In low-metallicity asymptotic giant branch stars, &lt;super&gt;12&lt;/super&gt;C and &lt;super&gt;29,30&lt;/super&gt;Si that are produced in the He shell are mixed into the envelope by the third dredge-up during the thermally pulsing phase. This scenario also increases the C/O ratio of the envelope and favours the condensation of graphite grains over SiC grains. A minor fraction of high-density graphite grains exhibits very low &lt;super&gt;12&lt;/super&gt;C/&lt;super&gt;13&lt;/super&gt;C ratios and extremely large &lt;super&gt;42,43&lt;/super&gt;Ca and &lt;super&gt;46,47,49,50&lt;/super&gt;Ti excesses. These excesses are much larger than those expected in the envelopes of asymptotic giant branch stars and are as large as those predicted for pure He-shell material in those stars and the interior, O-rich zones of type II supernovae. However, these zones have almost pure &lt;super&gt;12&lt;/super&gt;C, making the low &lt;super&gt;12&lt;/super&gt;C/&lt;super&gt;13&lt;/super&gt;C ratios enigmatic. We propose that born-again, asymptotic giant branch stars that have undergone a very late thermal pulse, such as Sakurai&#x27;s object, might be the stellar source for these grains. In such stars, limited mixing of the He-burning intershell with the thin, residual hydrogen envelope leads to the production of &lt;super&gt;13&lt;/super&gt;C and enables material with s-process enrichments and low &lt;super&gt;12&lt;/super&gt;C/&lt;super&gt;13&lt;/super&gt;C ratios to occur on the surface simultaneously. This study concludes that low-density graphite grains originate from supernovae while high-density graphite grains have multiple stellar sources: low-metallicity and born-again asymptotic giant branch stars, as well as supernovae.","abstract_has_math":false,"creators":["Jadhav, Manavi"],"institution":null,"degree_name":"Doctor of Philosophy (PhD)","degree_level":"Dissertation","degree_discipline":"Earth and Planetary Sciences","degree_department":null,"school":null,"contributors":["Ernst Zinner"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2009,"date_issued":"2009-01-01T08:00:00Z","date_published":"2009-01-01T08:00:00Z","updated_at":"2026-07-24T06:12:25Z","subjects":["Physics","Astronomy and Astrophysics","Geochemistry","asymptotic giant branch stars","born-again AGB stars","NanoSIMS","presolar graphite grains","short-lived radionuclides","supernovae"],"languages":["English (en)"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K78P5XK9"],"render_values":[{"text":"https://doi.org/10.7936/K78P5XK9","href":"https://doi.org/10.7936/K78P5XK9","code":true}]}]},"links":{"outbound_url":"https://openscholarship.wustl.edu/etd/170","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Ernst Zinner"]},{"key":"dc:creator","label":"Author","values":["Jadhav, Manavi"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.available","label":"Dc Date Available","values":["2010-01-01T08:00:00Z"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Earth and Planetary Sciences"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Doctor of Philosophy (PhD)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Physics","Astronomy and Astrophysics","Geochemistry","asymptotic giant branch stars","born-again AGB stars","NanoSIMS","presolar graphite grains","short-lived radionuclides","supernovae"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["English (en)"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://openscholarship.wustl.edu/etd/170"]},{"key":"dc:identifier.doi","label":"DOI","values":["https://doi.org/10.7936/K78P5XK9"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["This dissertation presents the results and implications of the isotopic analyses of presolar graphite grains from the primitive carbonaceous chondrite, Orgueil. Graphite grains from low- and high-density fractions were analyzed for C, N, O, Si, Al-Mg, K, Ca, and Ti isotopes. These analyses indicate that isotopic properties are density dependent. Most low-density grains come from supernovae as indicated by large <super>18</super>O, <super>15</super>N, <super>28</super>Si excesses, high inferred <super>26</super>Al/<super>27</super>Al and <super>41</super>Ca/<super>40</super>Ca ratios, and the initial presence of the short-lived radionuclide <super>44</super>Ti in some grains. Some high-density grains also show supernovae signatures, but a majority seems to originate from low-metallicity asymptotic giant branch stars. Evidence for this comes from correlated <super>12</super>C and <super>30</super>Si enrichments. In low-metallicity asymptotic giant branch stars, <super>12</super>C and <super>29,30</super>Si that are produced in the He shell are mixed into the envelope by the third dredge-up during the thermally pulsing phase. This scenario also increases the C/O ratio of the envelope and favours the condensation of graphite grains over SiC grains. A minor fraction of high-density graphite grains exhibits very low <super>12</super>C/<super>13</super>C ratios and extremely large <super>42,43</super>Ca and <super>46,47,49,50</super>Ti excesses. These excesses are much larger than those expected in the envelopes of asymptotic giant branch stars and are as large as those predicted for pure He-shell material in those stars and the interior, O-rich zones of type II supernovae. However, these zones have almost pure <super>12</super>C, making the low <super>12</super>C/<super>13</super>C ratios enigmatic. We propose that born-again, asymptotic giant branch stars that have undergone a very late thermal pulse, such as Sakurai's object, might be the stellar source for these grains. In such stars, limited mixing of the He-burning intershell with the thin, residual hydrogen envelope leads to the production of <super>13</super>C and enables material with s-process enrichments and low <super>12</super>C/<super>13</super>C ratios to occur on the surface simultaneously. This study concludes that low-density graphite grains originate from supernovae while high-density graphite grains have multiple stellar sources: low-metallicity and born-again asymptotic giant branch stars, as well as supernovae."]},{"key":"dc:title","label":"Title","values":["Multi-element isotopic analyses of presolar graphite grains from the Orgueil meteorite"]}]}],"canonical_facts":{"dc:contributor":["Ernst Zinner"],"dc:creator":["Jadhav, Manavi"],"dc:date.available":["2010-01-01T08:00:00Z"],"dc:description.abstract":["This dissertation presents the results and implications of the isotopic analyses of presolar graphite grains from the primitive carbonaceous chondrite, Orgueil. Graphite grains from low- and high-density fractions were analyzed for C, N, O, Si, Al-Mg, K, Ca, and Ti isotopes. These analyses indicate that isotopic properties are density dependent. Most low-density grains come from supernovae as indicated by large <super>18</super>O, <super>15</super>N, <super>28</super>Si excesses, high inferred <super>26</super>Al/<super>27</super>Al and <super>41</super>Ca/<super>40</super>Ca ratios, and the initial presence of the short-lived radionuclide <super>44</super>Ti in some grains. Some high-density grains also show supernovae signatures, but a majority seems to originate from low-metallicity asymptotic giant branch stars. Evidence for this comes from correlated <super>12</super>C and <super>30</super>Si enrichments. In low-metallicity asymptotic giant branch stars, <super>12</super>C and <super>29,30</super>Si that are produced in the He shell are mixed into the envelope by the third dredge-up during the thermally pulsing phase. This scenario also increases the C/O ratio of the envelope and favours the condensation of graphite grains over SiC grains. A minor fraction of high-density graphite grains exhibits very low <super>12</super>C/<super>13</super>C ratios and extremely large <super>42,43</super>Ca and <super>46,47,49,50</super>Ti excesses. These excesses are much larger than those expected in the envelopes of asymptotic giant branch stars and are as large as those predicted for pure He-shell material in those stars and the interior, O-rich zones of type II supernovae. However, these zones have almost pure <super>12</super>C, making the low <super>12</super>C/<super>13</super>C ratios enigmatic. We propose that born-again, asymptotic giant branch stars that have undergone a very late thermal pulse, such as Sakurai's object, might be the stellar source for these grains. In such stars, limited mixing of the He-burning intershell with the thin, residual hydrogen envelope leads to the production of <super>13</super>C and enables material with s-process enrichments and low <super>12</super>C/<super>13</super>C ratios to occur on the surface simultaneously. This study concludes that low-density graphite grains originate from supernovae while high-density graphite grains have multiple stellar sources: low-metallicity and born-again asymptotic giant branch stars, as well as supernovae."],"dc:identifier":["https://openscholarship.wustl.edu/etd/170"],"dc:identifier.doi":["https://doi.org/10.7936/K78P5XK9"],"dc:language":["English (en)"],"dc:subject":["Physics","Astronomy and Astrophysics","Geochemistry","asymptotic giant branch stars","born-again AGB stars","NanoSIMS","presolar graphite grains","short-lived radionuclides","supernovae"],"dc:title":["Multi-element isotopic analyses of presolar graphite grains from the Orgueil meteorite"],"thesis:degree_discipline":["Earth and Planetary Sciences"],"thesis:degree_level":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T06:12:25Z"}