{"id":{"repo_id":"usm","oai_identifier":"oai:aquila.usm.edu:masters_theses-1132"},"canonical_url":"https://search.dev.ndltd.org/etd/usm/oai:aquila.usm.edu:masters_theses-1132","repository":{"repo_id":"usm","name":"University of Southern Mississippi","base_url":"https://aquila.usm.edu/do/oai/"},"display":{"title":"Biogeochemical Alteration of Particulate Pyrogenic Organic Carbon (pyC)","abstract":"<p>The resistance of plant derived pyrogenic organic carbon (<em>py</em>C) to abiotic and biotic means of degradation has led to increased interest in the role of <em>py</em>C as a potential carbon sink, as well as a strategy for sequestering atmospheric CO2 to mitigate excess carbon emissions. Though much research pertaining to the fundamental properties of <em>py</em>C degradation have been performed in a controlled lab setting, there has been very little work regarding <em>py</em>C degradation in a field setting where factors such as precipitation and temperature fluctuate seasonally. This work focuses on various degradation characteristics of two different types of plant-derived <em>py</em>C, placed in both a burned and unburned setting, over a study period of 1-year. We observed that the potential for DOC from outside sources to adsorb itself to the surface of <em>pyC</em> increases in fall and spring due to increases in leaf litter and increases in temperature, respectively. We also observed that the overall recalcitrance of pine-derived <em>pyC</em>s decreases with time and the overall recalcitrance of CG-derived pyCs increases with time, as different portions of the <em>pyC</em>s are utilized by microbes depending on the microbial community present. Finally, we observed that <em>pyC</em>s degrade differently in burnt and unburnt sites. Namely, a more specialized microbial community found in burnt sites is able to utilize pine <em>py</em>Cs faster than the microbial community found in unburned sites. However, this specialization leads to the opposite trend occurring for CG <em>py</em>Cs, in which degradation occurs more quickly in unburnt sites than in burnt sites.</p>","abstract_html":"&lt;p&gt;The resistance of plant derived pyrogenic organic carbon (&lt;em&gt;py&lt;/em&gt;C) to abiotic and biotic means of degradation has led to increased interest in the role of &lt;em&gt;py&lt;/em&gt;C as a potential carbon sink, as well as a strategy for sequestering atmospheric CO2 to mitigate excess carbon emissions. Though much research pertaining to the fundamental properties of &lt;em&gt;py&lt;/em&gt;C degradation have been performed in a controlled lab setting, there has been very little work regarding &lt;em&gt;py&lt;/em&gt;C degradation in a field setting where factors such as precipitation and temperature fluctuate seasonally. This work focuses on various degradation characteristics of two different types of plant-derived &lt;em&gt;py&lt;/em&gt;C, placed in both a burned and unburned setting, over a study period of 1-year. We observed that the potential for DOC from outside sources to adsorb itself to the surface of &lt;em&gt;pyC&lt;/em&gt; increases in fall and spring due to increases in leaf litter and increases in temperature, respectively. We also observed that the overall recalcitrance of pine-derived &lt;em&gt;pyC&lt;/em&gt;s decreases with time and the overall recalcitrance of CG-derived pyCs increases with time, as different portions of the &lt;em&gt;pyC&lt;/em&gt;s are utilized by microbes depending on the microbial community present. Finally, we observed that &lt;em&gt;pyC&lt;/em&gt;s degrade differently in burnt and unburnt sites. Namely, a more specialized microbial community found in burnt sites is able to utilize pine &lt;em&gt;py&lt;/em&gt;Cs faster than the microbial community found in unburned sites. However, this specialization leads to the opposite trend occurring for CG &lt;em&gt;py&lt;/em&gt;Cs, in which degradation occurs more quickly in unburnt sites than in burnt sites.&lt;/p&gt;","abstract_has_math":false,"creators":["Stuart, Jason Matthew"],"institution":null,"degree_name":"Master of Science (MS)","degree_level":"Masters Thesis","degree_discipline":"Geography and Geology","degree_department":null,"school":null,"contributors":["Omar R. Harvey","Frank Heitmuller","Kevin A. Kuehn"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2015,"date_issued":"2015-08-01T07:00:00Z","date_published":"2015-08-01T07:00:00Z","updated_at":"2026-07-24T05:44:34Z","subjects":["Carbon","Pyrogenic","Recalcitrance","Degradation","Geochemistry","Geology"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://aquila.usm.edu/masters_theses/126","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Omar R. Harvey","Frank Heitmuller","Kevin A. 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Though much research pertaining to the fundamental properties of <em>py</em>C degradation have been performed in a controlled lab setting, there has been very little work regarding <em>py</em>C degradation in a field setting where factors such as precipitation and temperature fluctuate seasonally. This work focuses on various degradation characteristics of two different types of plant-derived <em>py</em>C, placed in both a burned and unburned setting, over a study period of 1-year. We observed that the potential for DOC from outside sources to adsorb itself to the surface of <em>pyC</em> increases in fall and spring due to increases in leaf litter and increases in temperature, respectively. We also observed that the overall recalcitrance of pine-derived <em>pyC</em>s decreases with time and the overall recalcitrance of CG-derived pyCs increases with time, as different portions of the <em>pyC</em>s are utilized by microbes depending on the microbial community present. Finally, we observed that <em>pyC</em>s degrade differently in burnt and unburnt sites. Namely, a more specialized microbial community found in burnt sites is able to utilize pine <em>py</em>Cs faster than the microbial community found in unburned sites. However, this specialization leads to the opposite trend occurring for CG <em>py</em>Cs, in which degradation occurs more quickly in unburnt sites than in burnt sites.</p>"]},{"key":"dc:title","label":"Title","values":["Biogeochemical Alteration of Particulate Pyrogenic Organic Carbon (pyC)"]}]}],"canonical_facts":{"dc:contributor":["Omar R. Harvey","Frank Heitmuller","Kevin A. Kuehn"],"dc:creator":["Stuart, Jason Matthew"],"dc:date.available":["2017-06-24T07:00:00Z"],"dc:description.abstract":["<p>The resistance of plant derived pyrogenic organic carbon (<em>py</em>C) to abiotic and biotic means of degradation has led to increased interest in the role of <em>py</em>C as a potential carbon sink, as well as a strategy for sequestering atmospheric CO2 to mitigate excess carbon emissions. Though much research pertaining to the fundamental properties of <em>py</em>C degradation have been performed in a controlled lab setting, there has been very little work regarding <em>py</em>C degradation in a field setting where factors such as precipitation and temperature fluctuate seasonally. This work focuses on various degradation characteristics of two different types of plant-derived <em>py</em>C, placed in both a burned and unburned setting, over a study period of 1-year. We observed that the potential for DOC from outside sources to adsorb itself to the surface of <em>pyC</em> increases in fall and spring due to increases in leaf litter and increases in temperature, respectively. We also observed that the overall recalcitrance of pine-derived <em>pyC</em>s decreases with time and the overall recalcitrance of CG-derived pyCs increases with time, as different portions of the <em>pyC</em>s are utilized by microbes depending on the microbial community present. Finally, we observed that <em>pyC</em>s degrade differently in burnt and unburnt sites. Namely, a more specialized microbial community found in burnt sites is able to utilize pine <em>py</em>Cs faster than the microbial community found in unburned sites. However, this specialization leads to the opposite trend occurring for CG <em>py</em>Cs, in which degradation occurs more quickly in unburnt sites than in burnt sites.</p>"],"dc:identifier":["https://aquila.usm.edu/masters_theses/126"],"dc:subject":["Carbon","Pyrogenic","Recalcitrance","Degradation","Geochemistry","Geology"],"dc:title":["Biogeochemical Alteration of Particulate Pyrogenic Organic Carbon (pyC)"],"thesis:degree_discipline":["Geography and Geology"],"thesis:degree_level":["Masters Thesis"],"thesis:degree_name":["Master of Science (MS)"]},"updated_at":"2026-07-24T05:44:34Z"}