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Julie Granger

Publications and source records attributed to Julie Granger.

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Arctic Ocean stratification set by sea level and freshwater inputs since the last ice age

Salinity-driven density stratification of the upper Arctic Ocean isolates sea-ice cover and cold, nutrient-poor surface waters from underlying warmer, nutrient-rich waters. Recently, stratification has strengthened in the western Arctic but has weakened in the eastern Arctic; it is unknown if these trends will continue. Here we present foraminifera-bound nitrogen isotopes from Arctic Ocean sediments since 35,000 years ago to reconstruct past changes in nutrient sources and the degree of nutrient consumption in surface waters, the latter reflecting stratification. During the last ice age and early deglaciation, the Arctic was dominated by Atlantic-sourced nitrate and incomplete nitrate consumption, indicating weaker stratification. Starting at 11,000 years ago in the western Arctic, there is a clear isotopic signal of Pacific-sourced nitrate and complete nitrate consumption associated with the flooding of the Bering Strait. These changes reveal that the strong stratification of the western Arctic relies on low-salinity inflow through the Bering Strait. In the central Arctic, nitrate consumption was complete during the early Holocene, then declined after 5,000 years ago as summer insolation decreased. This sequence suggests that precipitation and riverine freshwater fluxes control the stratification of the central Arctic Ocean. Based on these findings, ongoing warming will cause strong stratification to expand into the central Arctic, slowing the nutrient supply to surface waters and thus limiting future phytoplankton productivity.

Nature Geoscience

The influence of sample matrix on the accuracy of nitrite N and O isotope ratio analyses with the azide method

Rationale The isotope ratios of nitrogen ( 15 N/ 14 N) and oxygen ( 18 O/ 16 O) in nitrite (NO 2 − ) can be measured by conversion of the nitrite into nitrous oxide (N 2 O) with azide, followed by mass spectrometric analysis of N 2 O by gas chromatography isotope ratio mass spectrometry (GC/IRMS). While applying this method to brackish samples, we noticed that the N and O isotope ratio measurements of NO 2 − are highly sensitive to sample salinity and to the pH at which samples are preserved. Methods We investigated the influence of sample salinity and sample preservation pH on the N and O isotope ratios of the N 2 O produced from the reaction of NO 2 − with azide. The N 2 O isotope ratios were measured by GC/IRMS. Results Under the experimental reaction conditions, the conversion of NO 2 − into N 2 O was less complete in lower salinity solutions, resulting in respective N and O isotopic offsets of +2.5‰ and −14.0‰ compared with seawater solutions. Differences in salinity were also associated with differences in the fraction of O atoms exchanged between NO 2 − and water during the reaction. Similarly, aqueous NO 2 − samples preserved at elevated pH values resulted in the incomplete conversion of NO 2 − into N 2 O by azide, and consequent pH‐dependent isotopic offsets, as well as differences in the fraction of O atoms exchanged with water. The addition of sodium chloride to the reaction matrix of samples and standards largely mitigated salinity‐dependent isotopic offsets in the N 2 O product, and nearly homogenized the fraction of O atom exchange among samples of different salinity. A test of the hypobromite–azide method to measure N isotope ratios of ammonium by conversion into NO 2 − then N 2 O revealed no influence of sample salinity on the N isotope ratios of the N 2 O product. Conclusions We outline recommendations to mitigate potential matrix effects among samples and standards, to improve the accuracy of N and O isotope ratios in NO 2 − measured with the azide method.

Rapid Communications in Mass Spectrometry

Constraining the oxygen isotopic composition of nitrate produced by nitrification

Measurements of the stable isotope ratios of nitrogen ( 15 N/ 14 N) and oxygen ( 18 O/ 16 O) in nitrate (NO 3 – ) enable identification of sources, dispersal, and fate of natural and contaminant NO 3 – in aquatic environments. The 18 O/ 16 O of NO 3 – produced by nitrification is often assumed to reflect the proportional contribution of oxygen atom sources, water, and molecular oxygen, in a 2:1 ratio. Culture and seawater incubations, however, indicate oxygen isotopic equilibration between nitrite (NO 2 – ) and water, and kinetic isotope effects for oxygen atom incorporation, which modulate the NO 3 – 18 O/ 16 O produced during nitrification. To investigate the influence of kinetic and equilibrium effects on the isotopic composition of NO 3 – produced from the nitrification of ammonia (NH 3 ), we incubated streamwater supplemented with ammonium (NH 4 + ) and increments of 18 O-enriched water. Resulting NO 3 – 18 O/ 16 O ratios showed (1) a disproportionate sensitivity to the 18 O/ 16 O ratio of water, mediated by isotopic equilibration between water and NO 2 – , as well as (2) kinetic isotope discrimination during O atom incorporation from molecular oxygen and water. Empirically, the NO 3 – 18 O/ 16 O ratios thus produced fortuitously converge near the 18 O/ 16 O ratio of water. More elevated NO 3 – 18 O/ 16 O values commonly reported in soils and oxic groundwater may thus derive from processes additional to nitrification, including NO 3 – reduction.

Environmental Science & Technology