{"id":{"repo_id":"soton","oai_identifier":"oai:eprints.soton.ac.uk:66262"},"canonical_url":"https://search.dev.ndltd.org/etd/soton/oai:eprints.soton.ac.uk:66262","repository":{"repo_id":"soton","name":"University of Southampton","base_url":"https://eprints.soton.ac.uk/cgi/oai2"},"display":{"title":"Carbon export from natural iron fertilisation in the Southern Ocean","abstract":"It has long been recognised that some oceanic regions have persistently low chlorophyll<br/>levels, even though inorganic nutrients are plentiful. Studies have shown that these<br/>high-nutrient, low-chlorophyll (HNLC) areas are depleted in iron, which is an essential<br/>micronutrient for phytoplankton growth. In HNLC regions biological production can be<br/>enhanced with artificial mesoscale iron fertilisation. However, the ability of artificially<br/>induced phytoplankton blooms to efficiently sequester carbon to mesopelagic depths is<br/>still an open question. SubAntarctic islands in the HNLC Southern Ocean are a natural<br/>source of iron and thus fuel the annual phytoplankton blooms observed in their<br/>proximity. One such bloom, tied to the Crozet Islands (52ºE, 46ºS), provided the<br/>opportunity to examine particulate organic carbon (POC) export during the austral<br/>summer of 2004/5. This work was imbedded into the multi-disciplinary CROZEX<br/>project thus providing a rich context for data interpretation.<br/>Based on satellite imagery, a high chlorophyll region (max = 4 µg l-1) north and<br/>downstream of the Crozet Islands was distinguished from a low chlorophyll region<br/>(typically 0.3 µg l-1) south and upstream of the islands. POC export estimates, obtained<br/>with the naturally occurring particle reactive radionuclide tracer, 234Th, were initially<br/>D15 mmol C m-2 d-1 in the high chlorophyll region, compared with D5 mmol C m-2 d-1 in<br/>the low chlorophyll region. After a moderately small increase in chlorophyll in the<br/>south (max = 0.7 µg l-1) the spatial variability in POC export was lost, resulting in<br/>equally high levels of POC export (ca. 20 mmol C m-2 d-1) throughout the study area.<br/>After comparing the daily rates of POC export with temporally integrated new<br/>production calculated from nitrate budgets, a different spatial pattern emerged. New<br/>production (NP) presented consistently higher values in the north, when compared to<br/>the south. Two hypotheses were formulated to explain this, 1) dissolved organic matter<br/>(DOM) and suspended particulate organic matter (sPOM) produced from NP was stored<br/>in the mixed layer with this effect relatively greater in the north, 2) the export event in<br/>the north was longer resulting in greater seasonal POC export. Investigation of the<br/>DOM pool revealed that DOM accounted for 46±7% of NP and was consistent across<br/>the whole study area. In contrast, sPOM accumulated at differential rates of 18±7% in<br/>the north and 0±7% in the south. This suggested that differential storage of sPOM was<br/>responsible for the lack of a latitudinal gradient in POC export after the relatively small<br/>increase in chlorophyll in the south. After investigating the second hypothesis, the daily<br/>rates of POC export were scaled to seasonal integrals using a silicon budget, which<br/>allowed the formulation of a seasonal carbon budget. This revealed that over the timescale<br/>of the study the magnitude of NP and POC export were not the same with this<br/>difference greatest within the northern high chlorophyll region. This was the result of<br/>relatively greater storage of sPOM in the north and had the effect of reducing the<br/>amount of easily exportable POC to mesopelagic depths. Thus both hypotheses<br/>contributed to better understanding carbon export in the Crozet region.","abstract_html":"It has long been recognised that some oceanic regions have persistently low chlorophyll&lt;br/&gt;levels, even though inorganic nutrients are plentiful. Studies have shown that these&lt;br/&gt;high-nutrient, low-chlorophyll (HNLC) areas are depleted in iron, which is an essential&lt;br/&gt;micronutrient for phytoplankton growth. In HNLC regions biological production can be&lt;br/&gt;enhanced with artificial mesoscale iron fertilisation. However, the ability of artificially&lt;br/&gt;induced phytoplankton blooms to efficiently sequester carbon to mesopelagic depths is&lt;br/&gt;still an open question. SubAntarctic islands in the HNLC Southern Ocean are a natural&lt;br/&gt;source of iron and thus fuel the annual phytoplankton blooms observed in their&lt;br/&gt;proximity. One such bloom, tied to the Crozet Islands (52ºE, 46ºS), provided the&lt;br/&gt;opportunity to examine particulate organic carbon (POC) export during the austral&lt;br/&gt;summer of 2004/5. This work was imbedded into the multi-disciplinary CROZEX&lt;br/&gt;project thus providing a rich context for data interpretation.&lt;br/&gt;Based on satellite imagery, a high chlorophyll region (max = 4 µg l-1) north and&lt;br/&gt;downstream of the Crozet Islands was distinguished from a low chlorophyll region&lt;br/&gt;(typically 0.3 µg l-1) south and upstream of the islands. POC export estimates, obtained&lt;br/&gt;with the naturally occurring particle reactive radionuclide tracer, 234Th, were initially&lt;br/&gt;D15 mmol C m-2 d-1 in the high chlorophyll region, compared with D5 mmol C m-2 d-1 in&lt;br/&gt;the low chlorophyll region. After a moderately small increase in chlorophyll in the&lt;br/&gt;south (max = 0.7 µg l-1) the spatial variability in POC export was lost, resulting in&lt;br/&gt;equally high levels of POC export (ca. 20 mmol C m-2 d-1) throughout the study area.&lt;br/&gt;After comparing the daily rates of POC export with temporally integrated new&lt;br/&gt;production calculated from nitrate budgets, a different spatial pattern emerged. New&lt;br/&gt;production (NP) presented consistently higher values in the north, when compared to&lt;br/&gt;the south. Two hypotheses were formulated to explain this, 1) dissolved organic matter&lt;br/&gt;(DOM) and suspended particulate organic matter (sPOM) produced from NP was stored&lt;br/&gt;in the mixed layer with this effect relatively greater in the north, 2) the export event in&lt;br/&gt;the north was longer resulting in greater seasonal POC export. Investigation of the&lt;br/&gt;DOM pool revealed that DOM accounted for 46±7% of NP and was consistent across&lt;br/&gt;the whole study area. In contrast, sPOM accumulated at differential rates of 18±7% in&lt;br/&gt;the north and 0±7% in the south. This suggested that differential storage of sPOM was&lt;br/&gt;responsible for the lack of a latitudinal gradient in POC export after the relatively small&lt;br/&gt;increase in chlorophyll in the south. After investigating the second hypothesis, the daily&lt;br/&gt;rates of POC export were scaled to seasonal integrals using a silicon budget, which&lt;br/&gt;allowed the formulation of a seasonal carbon budget. This revealed that over the timescale&lt;br/&gt;of the study the magnitude of NP and POC export were not the same with this&lt;br/&gt;difference greatest within the northern high chlorophyll region. This was the result of&lt;br/&gt;relatively greater storage of sPOM in the north and had the effect of reducing the&lt;br/&gt;amount of easily exportable POC to mesopelagic depths. Thus both hypotheses&lt;br/&gt;contributed to better understanding carbon export in the Crozet region.","abstract_has_math":false,"creators":["Morris, Paul James"],"institution":"University of Southampton","degree_name":"Ph.D.","degree_level":"doctoral","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2008,"date_issued":"2008-08","date_published":"2008-08","updated_at":"2026-07-24T04:36:02Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":null,"outbound_label":null,"outbound_source":null},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Morris, Paul James"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2008-08"]},{"key":"dc:date.issued","label":"Date","values":["2008-08"]},{"key":"dc:publisher.department","label":"Dc Publisher Department","values":["Ocean and Earth Science (pre 2011 reorg)","School of Ocean and Earth Science"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Southampton"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://eprints.soton.ac.uk/66262/"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["doctoral"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Ph.D."]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://eprints.soton.ac.uk/66262/1/Morris_PJ_2008_PhD.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["It has long been recognised that some oceanic regions have persistently low chlorophyll<br/>levels, even though inorganic nutrients are plentiful. Studies have shown that these<br/>high-nutrient, low-chlorophyll (HNLC) areas are depleted in iron, which is an essential<br/>micronutrient for phytoplankton growth. In HNLC regions biological production can be<br/>enhanced with artificial mesoscale iron fertilisation. However, the ability of artificially<br/>induced phytoplankton blooms to efficiently sequester carbon to mesopelagic depths is<br/>still an open question. SubAntarctic islands in the HNLC Southern Ocean are a natural<br/>source of iron and thus fuel the annual phytoplankton blooms observed in their<br/>proximity. One such bloom, tied to the Crozet Islands (52ºE, 46ºS), provided the<br/>opportunity to examine particulate organic carbon (POC) export during the austral<br/>summer of 2004/5. This work was imbedded into the multi-disciplinary CROZEX<br/>project thus providing a rich context for data interpretation.<br/>Based on satellite imagery, a high chlorophyll region (max = 4 µg l-1) north and<br/>downstream of the Crozet Islands was distinguished from a low chlorophyll region<br/>(typically 0.3 µg l-1) south and upstream of the islands. POC export estimates, obtained<br/>with the naturally occurring particle reactive radionuclide tracer, 234Th, were initially<br/>D15 mmol C m-2 d-1 in the high chlorophyll region, compared with D5 mmol C m-2 d-1 in<br/>the low chlorophyll region. After a moderately small increase in chlorophyll in the<br/>south (max = 0.7 µg l-1) the spatial variability in POC export was lost, resulting in<br/>equally high levels of POC export (ca. 20 mmol C m-2 d-1) throughout the study area.<br/>After comparing the daily rates of POC export with temporally integrated new<br/>production calculated from nitrate budgets, a different spatial pattern emerged. New<br/>production (NP) presented consistently higher values in the north, when compared to<br/>the south. Two hypotheses were formulated to explain this, 1) dissolved organic matter<br/>(DOM) and suspended particulate organic matter (sPOM) produced from NP was stored<br/>in the mixed layer with this effect relatively greater in the north, 2) the export event in<br/>the north was longer resulting in greater seasonal POC export. Investigation of the<br/>DOM pool revealed that DOM accounted for 46±7% of NP and was consistent across<br/>the whole study area. In contrast, sPOM accumulated at differential rates of 18±7% in<br/>the north and 0±7% in the south. This suggested that differential storage of sPOM was<br/>responsible for the lack of a latitudinal gradient in POC export after the relatively small<br/>increase in chlorophyll in the south. After investigating the second hypothesis, the daily<br/>rates of POC export were scaled to seasonal integrals using a silicon budget, which<br/>allowed the formulation of a seasonal carbon budget. This revealed that over the timescale<br/>of the study the magnitude of NP and POC export were not the same with this<br/>difference greatest within the northern high chlorophyll region. This was the result of<br/>relatively greater storage of sPOM in the north and had the effect of reducing the<br/>amount of easily exportable POC to mesopelagic depths. Thus both hypotheses<br/>contributed to better understanding carbon export in the Crozet region."]},{"key":"dc:format","label":"Dc Format","values":["text"]},{"key":"dc:title","label":"Title","values":["Carbon export from natural iron fertilisation in the Southern Ocean"]}]}],"canonical_facts":{"dc:creator":["Morris, Paul James"],"dc:date":["2008-08"],"dc:date.issued":["2008-08"],"dc:description.abstract":["It has long been recognised that some oceanic regions have persistently low chlorophyll<br/>levels, even though inorganic nutrients are plentiful. Studies have shown that these<br/>high-nutrient, low-chlorophyll (HNLC) areas are depleted in iron, which is an essential<br/>micronutrient for phytoplankton growth. In HNLC regions biological production can be<br/>enhanced with artificial mesoscale iron fertilisation. However, the ability of artificially<br/>induced phytoplankton blooms to efficiently sequester carbon to mesopelagic depths is<br/>still an open question. SubAntarctic islands in the HNLC Southern Ocean are a natural<br/>source of iron and thus fuel the annual phytoplankton blooms observed in their<br/>proximity. One such bloom, tied to the Crozet Islands (52ºE, 46ºS), provided the<br/>opportunity to examine particulate organic carbon (POC) export during the austral<br/>summer of 2004/5. This work was imbedded into the multi-disciplinary CROZEX<br/>project thus providing a rich context for data interpretation.<br/>Based on satellite imagery, a high chlorophyll region (max = 4 µg l-1) north and<br/>downstream of the Crozet Islands was distinguished from a low chlorophyll region<br/>(typically 0.3 µg l-1) south and upstream of the islands. POC export estimates, obtained<br/>with the naturally occurring particle reactive radionuclide tracer, 234Th, were initially<br/>D15 mmol C m-2 d-1 in the high chlorophyll region, compared with D5 mmol C m-2 d-1 in<br/>the low chlorophyll region. After a moderately small increase in chlorophyll in the<br/>south (max = 0.7 µg l-1) the spatial variability in POC export was lost, resulting in<br/>equally high levels of POC export (ca. 20 mmol C m-2 d-1) throughout the study area.<br/>After comparing the daily rates of POC export with temporally integrated new<br/>production calculated from nitrate budgets, a different spatial pattern emerged. New<br/>production (NP) presented consistently higher values in the north, when compared to<br/>the south. Two hypotheses were formulated to explain this, 1) dissolved organic matter<br/>(DOM) and suspended particulate organic matter (sPOM) produced from NP was stored<br/>in the mixed layer with this effect relatively greater in the north, 2) the export event in<br/>the north was longer resulting in greater seasonal POC export. Investigation of the<br/>DOM pool revealed that DOM accounted for 46±7% of NP and was consistent across<br/>the whole study area. In contrast, sPOM accumulated at differential rates of 18±7% in<br/>the north and 0±7% in the south. This suggested that differential storage of sPOM was<br/>responsible for the lack of a latitudinal gradient in POC export after the relatively small<br/>increase in chlorophyll in the south. After investigating the second hypothesis, the daily<br/>rates of POC export were scaled to seasonal integrals using a silicon budget, which<br/>allowed the formulation of a seasonal carbon budget. This revealed that over the timescale<br/>of the study the magnitude of NP and POC export were not the same with this<br/>difference greatest within the northern high chlorophyll region. This was the result of<br/>relatively greater storage of sPOM in the north and had the effect of reducing the<br/>amount of easily exportable POC to mesopelagic depths. Thus both hypotheses<br/>contributed to better understanding carbon export in the Crozet region."],"dc:format":["text"],"dc:identifier.uri":["https://eprints.soton.ac.uk/66262/1/Morris_PJ_2008_PhD.pdf"],"dc:publisher.department":["Ocean and Earth Science (pre 2011 reorg)","School of Ocean and Earth Science"],"dc:publisher.institution":["University of Southampton"],"dc:relation.isreferencedby":["https://eprints.soton.ac.uk/66262/"],"dc:title":["Carbon export from natural iron fertilisation in the Southern Ocean"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["doctoral"],"dc:type.qualificationname":["Ph.D."]},"updated_at":"2026-07-24T04:36:02Z"}