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Tracing Earth's Oxygen Cycle Through High-precision Multiple-isotope Analyses.
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Tracing Earth's Oxygen Cycle Through High-precision Multiple-isotope Analyses.
자료유형  
 학위논문
Control Number  
0017160265
International Standard Book Number  
9798382781839
Dewey Decimal Classification Number  
551
Main Entry-Personal Name  
Hughes, Eleanor.
Publication, Distribution, etc. (Imprint  
[S.l.] : Harvard University., 2024
Publication, Distribution, etc. (Imprint  
Ann Arbor : ProQuest Dissertations & Theses, 2024
Physical Description  
285 p.
General Note  
Source: Dissertations Abstracts International, Volume: 85-12, Section: B.
General Note  
Advisor: Johnston, David.
Dissertation Note  
Thesis (Ph.D.)--Harvard University, 2024.
Summary, Etc.  
요약The oxygen cycle is fundamental to the past, present and future of Earth's climate. This thesis focuses on three central components of the oxygen cycle: seawater sulfate (Chapter 1), molecular oxygen (Chapter 2), and odd-oxygen (Chapter 3). Together, these components encompass oxygen cycling in all regions of the fluid Earth (solid-fluid Earth interface, ocean, and atmosphere), and on timescales from geologic to transient. The study of each is enabled by emerging, high-precision multiple-isotopologue analyses.Chapter 1: Seawater sulfate is a major carrier of oxidizing capacity, and its budget is therefore a critical control on Earth's redox state. Here, the influence of submarine hydrothermal systems on seawater sulfate is investigated through triple-oxygen-isotope analyses. These analyses suggest that the seawater sulfate budget may contain a significant, and previously overlooked, hydrothermal contribution.Chapter 2: The flux of O2 generated by gross primary production is critical to Earth's oxygen and carbon cycles, but accurate estimation of this flux remains challenging. Here, triple-oxygen-isotope analyses of O2 are used to characterize the uncertainty in current estimates. A new method for estimating gross productivity, based on the fractionation of multiply-substituted O2 isotopologues (17O18O or 18O18O), is then proposed. This may reduce current uncertainties in gross primary production by a factor of 4.Chapter 3: Odd-oxygen (i.e. atomic oxygen, O, and ozone, O3) is a central control on atmospheric oxidising capacity and therefore on climate. Reconstruction of recent changes in atmospheric odd-oxygen is inhibited by the short lifetime of each species. Here, experiments are used to identify signals of odd-oxygen photochemistry in the relative abundances of 18O18O and 17O18O. The experiments are used to propose that atmospheric 18O18O and 17O18O may provide unique constraints on past and present O3 cycling.
Subject Added Entry-Topical Term  
Geochemistry.
Subject Added Entry-Topical Term  
Geophysics.
Subject Added Entry-Topical Term  
Climate change.
Subject Added Entry-Topical Term  
Atmospheric sciences.
Index Term-Uncontrolled  
Atmosphere
Index Term-Uncontrolled  
Climate
Index Term-Uncontrolled  
Hydrothermal systems
Index Term-Uncontrolled  
Isotopes
Index Term-Uncontrolled  
Ocean
Index Term-Uncontrolled  
Oxygen
Added Entry-Corporate Name  
Harvard University Earth and Planetary Sciences
Host Item Entry  
Dissertations Abstracts International. 85-12B.
Electronic Location and Access  
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Control Number  
joongbu:654070
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