Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as a large-scale climate engineering approach. When implemented in coastal environments, olivine weathering is expected to increase seawater alkalinity, thus resulting in additional CO2 uptake from the atmosphere. However, the mechanisms of marine olivine weathering and its effect on seawater–carbonate chemistry remain poorly understood. Here, we present results from batch reaction experiments, in which forsteritic olivine was subjected to rotational agitation in different seawater media for periods of days to months. Olivine dissolution caused a significant increase in alkalinity of the seawater with a consequent DIC increase due to CO2 invasio...
The potential of Coastal Ocean Alkalinization (COA), a carbon dioxide removal (CDR) climate engineer...
AbstractChemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental compo...
Chemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental component of ...
Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as ...
Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as...
Enhanced weathering of mafic and ultra-mafic minerals has been suggested as a strategy for carbon di...
Enhanced weathering of mafic and ultra-mafic minerals has been suggested as a strategy for carbon di...
Carbon dioxide removal (CDR) technologies at a gigaton scale need to be developed and implemented wi...
The Earth’s climate is increasingly warming due to ongoing anthropogenic carbon dioxide (CO2) emissi...
Overview on simulated CO2 removal experiments via olivine dissolution on land and ocean is given
Negative emission technologies (NETs) target the removal of carbon dioxide (CO<sub>2</sub>) from the...
Enhanced weathering of olivine has been suggested as a measure to lower the atmospheric CO2 level an...
AbstractEnhanced weathering of olivine has been suggested as a measure to lower the atmospheric CO2 ...
Every year about 10-14 million m3 of sediments are dredged in the Port of Rotterdam (PoR) as part of...
We investigate the potential of a specific geoengineering technique: the carbon sequestration by art...
The potential of Coastal Ocean Alkalinization (COA), a carbon dioxide removal (CDR) climate engineer...
AbstractChemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental compo...
Chemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental component of ...
Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as ...
Enhanced weathering of (ultra)basic silicate rocks such as olivine-rich dunite has been proposed as...
Enhanced weathering of mafic and ultra-mafic minerals has been suggested as a strategy for carbon di...
Enhanced weathering of mafic and ultra-mafic minerals has been suggested as a strategy for carbon di...
Carbon dioxide removal (CDR) technologies at a gigaton scale need to be developed and implemented wi...
The Earth’s climate is increasingly warming due to ongoing anthropogenic carbon dioxide (CO2) emissi...
Overview on simulated CO2 removal experiments via olivine dissolution on land and ocean is given
Negative emission technologies (NETs) target the removal of carbon dioxide (CO<sub>2</sub>) from the...
Enhanced weathering of olivine has been suggested as a measure to lower the atmospheric CO2 level an...
AbstractEnhanced weathering of olivine has been suggested as a measure to lower the atmospheric CO2 ...
Every year about 10-14 million m3 of sediments are dredged in the Port of Rotterdam (PoR) as part of...
We investigate the potential of a specific geoengineering technique: the carbon sequestration by art...
The potential of Coastal Ocean Alkalinization (COA), a carbon dioxide removal (CDR) climate engineer...
AbstractChemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental compo...
Chemical weathering of silicate minerals consumes atmospheric CO2 and is a fundamental component of ...