Oxygen (δ18O) and hydrogen (δ2H) isotope ratios, and their relationship to one another (d-excess) are altered as water travels from the atmosphere to the land surface, into soils and plants and back to the atmosphere. Plants return water to the atmosphere through transpiration (evaporation through the stomata), which causes isotopic fractionation concentrating the heavier isotopes (18O and 2H) in the water that remains behind in the leaves. The degree of isotopic fractionation during transpiration is controlled largely by climate, and as a result can be predicted using process-based models and climate data. The modelled transpirational isotopic fractionation can be applied to plant source water isotopic values to predict leaf water isotope ...
H2 18 O enrichment develops when leaves transpire, but an accurate generalized mechanistic model has...
A growing number of studies have described the direct absorption of water into leaves, a phenomenon ...
Previous studies demonstrated the importance of pathways of water movement, hydraulic conductance, a...
Oxygen (δ18O) and hydrogen (δ2H) isotope ratios, and their relationship to one another (d-excess) ar...
Leaf water contains naturally occurring stable isotopes of oxygen and hydrogen in abundances that va...
Several previous studies have investigated the use of the stable hydrogen and oxygen isotope composi...
We compiled hydrogen and oxygen stable isotope compositions (δ H and δ O) of leaf water from multipl...
The stable hydrogen (delta(2)H) and oxygen (delta(18)O) isotope ratios of organic and inorganic mate...
We compiled hydrogen and oxygen stable isotope compositions (δ2H and δ18O) of leaf water from multip...
Journal ArticleThe stable hydrogen (d2H) and oxygen (d18O) isotope ratios of organic and inorganic m...
A growing number of field studies report isotopic offsets between stem water and its potential sourc...
We have studied the temporal behaviour of the deuterium isotope ratio of water vapour emerging from ...
Tree and small catchment scale studies are important in getting a detailed understanding of ecohydro...
Oxygen and hydrogen isotopes of cellulose in plant biology are commonly used to infer environmental ...
H2 18 O enrichment develops when leaves transpire, but an accurate generalized mechanistic model has...
A growing number of studies have described the direct absorption of water into leaves, a phenomenon ...
Previous studies demonstrated the importance of pathways of water movement, hydraulic conductance, a...
Oxygen (δ18O) and hydrogen (δ2H) isotope ratios, and their relationship to one another (d-excess) ar...
Leaf water contains naturally occurring stable isotopes of oxygen and hydrogen in abundances that va...
Several previous studies have investigated the use of the stable hydrogen and oxygen isotope composi...
We compiled hydrogen and oxygen stable isotope compositions (δ H and δ O) of leaf water from multipl...
The stable hydrogen (delta(2)H) and oxygen (delta(18)O) isotope ratios of organic and inorganic mate...
We compiled hydrogen and oxygen stable isotope compositions (δ2H and δ18O) of leaf water from multip...
Journal ArticleThe stable hydrogen (d2H) and oxygen (d18O) isotope ratios of organic and inorganic m...
A growing number of field studies report isotopic offsets between stem water and its potential sourc...
We have studied the temporal behaviour of the deuterium isotope ratio of water vapour emerging from ...
Tree and small catchment scale studies are important in getting a detailed understanding of ecohydro...
Oxygen and hydrogen isotopes of cellulose in plant biology are commonly used to infer environmental ...
H2 18 O enrichment develops when leaves transpire, but an accurate generalized mechanistic model has...
A growing number of studies have described the direct absorption of water into leaves, a phenomenon ...
Previous studies demonstrated the importance of pathways of water movement, hydraulic conductance, a...