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A simple and effective method to remove hydrogen sulfide from fluid and gas samples prior to radiocarbon analysis of CO 2 gas and dissolved inorganic carbon

Dados Bibliográficos

ID21378598
AutoresLi Xu (0000-0001-5665-4861, Woods Hole Oceanographic Institution, autor correspondente), Alan Gagnon (Woods Hole Oceanographic Institution), Mark Roberts (0000-0002-5214-2663, Woods Hole Oceanographic Institution), Roberta L Hansman (0000-0003-1525-8509, Woods Hole Oceanographic Institution), Kathryn L Elder (0000-0003-4030-6752, Woods Hole Oceanographic Institution), Jeffrey S Seewald (0000-0001-6700-2754, Woods Hole Oceanographic Institution), Rachel Harris (0000-0001-5584-5420, NASA Research Park), Susan Lang (0000-0003-0873-6082, Woods Hole Oceanographic Institution)
Ano2026
Páginas1-8
Data de publicação2026-07-08
Peer ReviewedSim
Open AccessSim
TipoARTICLE
PeriódicoRadiocarbon (JOURNAL)
Identificadores do periódicoISSN: 0033-8222 • E-ISSN: 1945-5755
EditoraCambridge University Press (CUP) (PUBLISHER)
DOI10.1017/rdc.2026.10218
OpenAlexW7167662343
IdiomaEN
Referências citadas23

The radiocarbon content of dissolved inorganic carbon (DIC: CO 2(aq) , HCO 3 – , CO 3 2– ) and gaseous CO 2 can provide valuable information for the cycling and residence time of carbon in groundwaters, porewaters, hydrocarbon reservoirs, methane seeps, and hydrothermal systems. Fluids and gases from these systems often contain high concentrations of hydrogen sulfide (H 2 S) that interferes with critical steps of the analytical procedure, particularly the reduction of CO 2 to graphite. We developed and tested a simple and effective method to remove H 2 S from water and gas samples prior to graphitization by passing the gas through a silver nitrate solution in dilute nitric acid. The resulting cleaned CO 2 was sufficiently pure to be reduced to graphite by hydrogen on an iron catalyst. The mass of the process blank of this method is negligible (0.45 ± 0.10 μg C, with F 14 C of 0.30 ± 0.20) and almost identical to our process blanks without the H 2 S trap (0.43 ± 0.10 μg C, F 14 C = 0.30 ± 0.10). The method has been successfully applied to samples containing elevated H 2 S from multiple hydrothermal vent fluids

Carbon fibers · Graphite · Hydrocarbon · Hydrogen · Hydrogen sulfide · Hydrothermal circulation · Methane · Nitric acid · CO2 Sequestration and Geologic Interactions · Groundwater and Isotope Geochemistry · Industrial Gas Emission Control

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