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  • 2015-2019  (5)
  • 2016  (5)
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  • 2015-2019  (5)
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  • 1
    Publication Date: 2023-10-28
    Keywords: Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD/Rosette; CTD 101; CTD 102; CTD 105; CTD 107; CTD 108; CTD 109; CTD 110; CTD 116; CTD 117; CTD 123; CTD 124; CTD 125; CTD 126; CTD 127; CTD 128; CTD 129; CTD 13; CTD 132; CTD 133; CTD 135; CTD 136; CTD 138; CTD 139; CTD 14; CTD 143; CTD 144; CTD 151; CTD 152; CTD 23; CTD 24; CTD 29; CTD 30; CTD 34; CTD 35; CTD 36; CTD 37; CTD 4; CTD 41; CTD 5; CTD 51; CTD 52; CTD 56; CTD 57; CTD 61; CTD 62; CTD 66; CTD 67; CTD 71; CTD 72; CTD-RO; DATE/TIME; DEPTH, water; Event label; Identification; LATITUDE; LONGITUDE; M90; M90_1555-1; M90_1555-2; M90_1563-1; M90_1563-2; M90_1572-1; M90_1572-2; M90_1577-1; M90_1577-2; M90_1581-1; M90_1581-2; M90_1582-1; M90_1583-1; M90_1586-1; M90_1596-1; M90_1596-2; M90_1600-1; M90_1600-2; M90_1604-1; M90_1604-2; M90_1608-1; M90_1608-2; M90_1612-1; M90_1612-2; M90_1639-1; M90_1639-2; M90_1642-1; M90_1644-1; M90_1645-1; M90_1646-1; M90_1646-2; M90_1652-1; M90_1652-2; M90_1657-1; M90_1658-1; M90_1659-1; M90_1659-2; M90_1660-1; M90_1661-1; M90_1661-2; M90_1664-1; M90_1664-2; M90_1666-1; M90_1666-2; M90_1668-1; M90_1668-2; M90_1672-1; M90_1673-1; M90_1679-1; M90_1679-2; Meteor (1986); Nitrous oxide, dissolved; Sample code/label; SFB754
    Type: Dataset
    Format: text/tab-separated-values, 4752 data points
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  GEOMAR - Helmholtz Centre for Ocean Research Kiel
    Publication Date: 2023-10-28
    Keywords: Bottle number; Climate - Biogeochemistry Interactions in the Tropical Ocean; CTD/Rosette; CTD001; CTD002; CTD003; CTD004; CTD005; CTD006; CTD008; CTD009; CTD010; CTD011; CTD012; CTD013; CTD014; CTD015; CTD016; CTD017; CTD018; CTD019; CTD020; CTD021; CTD022; CTD023; CTD024; CTD025; CTD026; CTD027; CTD028; CTD029; CTD030; CTD031; CTD032; CTD033; CTD034; CTD035; CTD036; CTD037; CTD038; CTD039; CTD040; CTD041; CTD042; CTD043; CTD044; CTD045; CTD046; CTD047; CTD048; CTD049; CTD050; CTD051; CTD052; CTD053; CTD054; CTD055; CTD056; CTD057; CTD058; CTD059; CTD060; CTD061; CTD062; CTD063-64; CTD065; CTD066; CTD067; CTD068; CTD069; CTD070; CTD071; CTD072; CTD073; CTD074; CTD075; CTD076; CTD077; CTD078; CTD079; CTD080; CTD081; CTD082; CTD083; CTD086; CTD087; CTD088; CTD089; CTD090; CTD091; CTD092; CTD093; CTD094; CTD095; CTD096; CTD097; CTD098; CTD101; CTD102; CTD103; CTD104; CTD105; CTD107; CTD109; CTD110; CTD111; CTD112; CTD113; CTD114; CTD115; CTD116; CTD117; CTD118; CTD119; CTD120; CTD121; CTD122; CTD123; CTD124; CTD125; CTD131; CTD132; CTD133; CTD134; CTD136; CTD137; CTD138; CTD139; CTD140; CTD141; CTD142; CTD143; CTD144; CTD145; CTD146; CTD147; CTD148; CTD149; CTD150; CTD151; CTD153; CTD154; CTD155; CTD156; CTD157; CTD158; CTD159; CTD160; CTD-RO; DATE/TIME; DEPTH, water; Event label; LATITUDE; LONGITUDE; M93; M93_290-1; M93_291-1; M93_292-1; M93_293-1; M93_295-1; M93_295-3; M93_298-1; M93_299-1; M93_300-1; M93_301-1; M93_302-1; M93_303-2; M93_304-1; M93_305-1; M93_306-1; M93_307-1; M93_308-1; M93_309-1; M93_310-1; M93_311-1; M93_312-1; M93_313-1; M93_314-1; M93_315-1; M93_316-1; M93_317-1; M93_318-2; M93_318-4; M93_318-6; M93_319-1; M93_320-1; M93_321-1; M93_322-1; M93_323-1; M93_324-1; M93_325-1; M93_326-1; M93_327-1; M93_328-1; M93_329-1; M93_330-1; M93_331-1; M93_332-1; M93_334-1; M93_335-1; M93_336-1; M93_337-1; M93_338-1; M93_339-1; M93_340-1; M93_341-1; M93_342-1; M93_343-1; M93_344-1; M93_345-1; M93_346-1; M93_347-2; M93_347-4; M93_347-6; M93_349-3; M93_350-1; M93_351-1; M93_354-1; M93_356-1; M93_357-1; M93_358-1; M93_359-2; M93_360-1; M93_361-2; M93_363-1; M93_364-1; M93_365-1; M93_366-1; M93_367-1; M93_368-1; M93_368-3; M93_369-1; M93_369-4; M93_376-2; M93_378-2; M93_380-3; M93_384-1; M93_384-2; M93_385-1; M93_386-1; M93_387-1; M93_388-1; M93_389-1; M93_390-1; M93_391-2; M93_391-5; M93_392-1; M93_393-1; M93_394-1; M93_399-5; M93_399-7; M93_404-1; M93_405-1; M93_406-1; M93_408-1; M93_411-2; M93_411-7; M93_411-9; M93_412-1; M93_413-1; M93_414-1; M93_415-1; M93_416-1; M93_417-1; M93_418-1; M93_419-1; M93_420-1; M93_421-1; M93_422-1; M93_423-1; M93_424-1; M93_425-1; M93_433-1; M93_434-1; M93_435-1; M93_436-1; M93_439-1; M93_441-3; M93_441-4; M93_441-5; M93_447-1; M93_448-1; M93_448-5; M93_456-1; M93_457-1; M93_458-1; M93_459-1; M93_460-1; M93_460-2; M93_461-1; M93_462-1; M93_463-1; M93_463-7; M93_465-1; M93_466-1; M93_467-1; M93_468-1; M93_469-1; M93_471-1; M93_471-2; Meteor (1986); Nitrous oxide; Oxygen; Salinity; SFB754; South Pacific Ocean; Temperature, water
    Type: Dataset
    Format: text/tab-separated-values, 10354 data points
    Location Call Number Limitation Availability
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  • 3
    Publication Date: 2021-04-23
    Type: Conference or Workshop Item , NonPeerReviewed
    Location Call Number Limitation Availability
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  • 4
    Publication Date: 2023-09-19
    Description: Recent observations in the eastern tropical South Pacific (ETSP) have shown the key role of meso- and submesoscale processes (e.g. eddies) in shaping its hydrographic and biogeochemical properties. Off Peru, elevated primary production from coastal upwelling in combination with sluggish ventilation of subsurface waters fuels a prominent oxygen minimum zone (OMZ). Given that nitrous oxide (N2O) production–consumption processes in the water column are sensitive to oxygen (O2) concentrations, the ETSP is a region of particular interest to investigate its source–sink dynamics. To date, no detailed surveys linking mesoscale processes and N2O distributions as well as their relevance to nitrogen (N) cycling are available. In this study, we present the first measurements of N2O across three mesoscale eddies (two mode water or anticyclonic and one cyclonic) which were identified, tracked, and sampled during two surveys carried out in the ETSP in November–December 2012. A two-peak structure was observed for N2O, wherein the two maxima coincide with the upper and lower boundaries of the OMZ, indicating active nitrification and partial denitrification. This was further supported by the abundances of the key gene for nitrification, ammonium monooxygenase (amoA), and the gene marker for N2O production during denitrification, nitrite reductase (nirS). Conversely, we found strong N2O depletion in the core of the OMZ (O2 〈 5 μmol/L) to be consistent with nitrite (NO2-) accumulation and low levels of nitrate (NO3-), thus suggesting active denitrification. N2O depletion within the OMZ’s core was substantially higher in the centre of mode water eddies, supporting the view that eddy activity enhances N-loss processes off Peru, in particular near the shelf break where nutrient-rich, productive waters from upwelling are trapped before being transported offshore. Analysis of eddies during their propagation towards the open ocean showed that, in general, “ageing” of mesoscale eddies tends to decrease N2O concentrations through the water column in response to the reduced supply of material to fuel N loss, although the hydrographic variability might also significantly impact the pace of the production–consumption pathways for N2O. Our results evidence the relevance of mode water eddies for N2O distribution, thereby improving our understanding of the N-cycling processes, which are of crucial importance in times of climate change and ocean deoxygenation.
    Type: Article , PeerReviewed , info:eu-repo/semantics/article
    Format: text
    Format: text
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  • 5
    Publication Date: 2023-01-31
    Description: Depth profiles of nitrous oxide (N2O) were measured during six cruises to the upwelling area and oxygen minimum zone (OMZ) off Peru in 2009 and 2012/2013, covering both the coastal shelf region and the adjacent open ocean. N2O profiles displayed a strong sensitivity towards oxygen concentrations. Open ocean profiles with distances to the shelf break larger than the first baroclinic Rossby radius of deformation showed a transition from a broad maximum close to the Equator to a double-peak structure south of 5° S where the oxygen minimum was more pronounced. Maximum N2O concentrations in the open ocean were about 80 nM. A linear relationship between ΔN2O and apparent oxygen utilization (AOU) could be found for measurements within the upper oxycline, with a slope similar to studies in other oceanic regions. In contrast, N2O profiles close to the shelf revealed a much higher variability, and N2O concentrations higher than 100 nM were often observed. The highest N2O concentration measured at the shelf was  ∼  850 nM. Due to the extremely sharp oxygen gradients at the shelf, N2O maxima occurred in very shallow water depths of less than 50 m. In the coastal area, a linear relationship between ΔN2O and AOU could not be observed as extremely high ΔN2O values were scattered over the full range of oxygen concentrations. The data points that showed the strongest deviation from a linear ΔN2O ∕ AOU relationship also showed signals of intense nitrogen loss. These results indicate that the coastal upwelling at the Peruvian coast and the subsequent strong remineralization in the water column causes conditions that lead to extreme N2O accumulation, most likely due to the interplay of intense mixing and high rates of remineralization which lead to a rapid switching of the OMZ waters between anoxic and oxic conditions. This, in turn, could trigger incomplete denitrification or pulses of increased nitrification with extreme N2O production.
    Type: Article , PeerReviewed
    Format: text
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