Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms

The ocean plays an integral role in the global carbon cycle and serves as the largest planetary reservoir for carbon. As more anthropogenic CO2 is released to the atmosphere it is essential to understand and quantify the impact of elevated pCO2 on the ocean’s role in the uptake, transfer, and transf...

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Main Author: Briggs, Ellen
Other Authors: Martz, Todd
Format: Other/Unknown Material
Language:English
Published: eScholarship, University of California 2017
Subjects:
Online Access:https://escholarship.org/uc/item/1gc431rp
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spelling ftcdlib:oai:escholarship.org/ark:/13030/qt1gc431rp 2023-05-15T18:18:53+02:00 Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms Briggs, Ellen Martz, Todd 2017-01-01 application/pdf https://escholarship.org/uc/item/1gc431rp en eng eScholarship, University of California qt1gc431rp https://escholarship.org/uc/item/1gc431rp public Chemical oceanography etd 2017 ftcdlib 2019-09-20T22:53:00Z The ocean plays an integral role in the global carbon cycle and serves as the largest planetary reservoir for carbon. As more anthropogenic CO2 is released to the atmosphere it is essential to understand and quantify the impact of elevated pCO2 on the ocean’s role in the uptake, transfer, and transformation of carbon as well as cascading effects on biogeochemical processes. Direct observations are limited in space and time due to shortage of autonomous technology available to effectively monitor the aqueous carbon dioxide system at seasonal, interannual, and longer timescales. This dissertation describes novel sensors that are being developed and implemented to expand available marine biogeochemical observations. The first two chapters describe the development of a solid state sensor capable of rapid and simultaneous measurement of pH and Total Alkalinity of seawater for monitoring the aqueous carbon dioxide system. This novel sensor requires no external reagents, has low power consumption, and meets the rugged demands required for integration with autonomous platforms. Chapter 1 focuses on the development and analytical assessment of the working sensor. Chapter 2 provides a more detailed description of all the processes and methods that were explored in reaching the working sensor described in Chapter 1.Chapters 3 and 4 both use profiling floats equipped with existing biogeochemical sensing technology deployed through the Southern Ocean Carbon and Climate Observations and Modeling project to look at biogeochemical processes in the Southern Ocean. SOCCOM is a pilot program that will hopefully lead to global scale array of biogeochemical sensors on profiling floats. In Chapter 3, the influence of sea ice on the relative role of physical versus biological components of the pH and O2 signal is explored. While Chapter 3 primarily focuses on organic biogeochemical processes, Chapter 4 focuses on the role of CaCO3 reactions in the Southern Ocean carbon budget. Other/Unknown Material Sea ice Southern Ocean University of California: eScholarship Southern Ocean
institution Open Polar
collection University of California: eScholarship
op_collection_id ftcdlib
language English
topic Chemical oceanography
spellingShingle Chemical oceanography
Briggs, Ellen
Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
topic_facet Chemical oceanography
description The ocean plays an integral role in the global carbon cycle and serves as the largest planetary reservoir for carbon. As more anthropogenic CO2 is released to the atmosphere it is essential to understand and quantify the impact of elevated pCO2 on the ocean’s role in the uptake, transfer, and transformation of carbon as well as cascading effects on biogeochemical processes. Direct observations are limited in space and time due to shortage of autonomous technology available to effectively monitor the aqueous carbon dioxide system at seasonal, interannual, and longer timescales. This dissertation describes novel sensors that are being developed and implemented to expand available marine biogeochemical observations. The first two chapters describe the development of a solid state sensor capable of rapid and simultaneous measurement of pH and Total Alkalinity of seawater for monitoring the aqueous carbon dioxide system. This novel sensor requires no external reagents, has low power consumption, and meets the rugged demands required for integration with autonomous platforms. Chapter 1 focuses on the development and analytical assessment of the working sensor. Chapter 2 provides a more detailed description of all the processes and methods that were explored in reaching the working sensor described in Chapter 1.Chapters 3 and 4 both use profiling floats equipped with existing biogeochemical sensing technology deployed through the Southern Ocean Carbon and Climate Observations and Modeling project to look at biogeochemical processes in the Southern Ocean. SOCCOM is a pilot program that will hopefully lead to global scale array of biogeochemical sensors on profiling floats. In Chapter 3, the influence of sea ice on the relative role of physical versus biological components of the pH and O2 signal is explored. While Chapter 3 primarily focuses on organic biogeochemical processes, Chapter 4 focuses on the role of CaCO3 reactions in the Southern Ocean carbon budget.
author2 Martz, Todd
format Other/Unknown Material
author Briggs, Ellen
author_facet Briggs, Ellen
author_sort Briggs, Ellen
title Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
title_short Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
title_full Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
title_fullStr Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
title_full_unstemmed Expanding marine biogeochemical observations utilizing ISFET pH sensing technology and autonomous platforms
title_sort expanding marine biogeochemical observations utilizing isfet ph sensing technology and autonomous platforms
publisher eScholarship, University of California
publishDate 2017
url https://escholarship.org/uc/item/1gc431rp
geographic Southern Ocean
geographic_facet Southern Ocean
genre Sea ice
Southern Ocean
genre_facet Sea ice
Southern Ocean
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