Transient hydrodynamic effects influence organic carbon signatures in marine sediments


Ocean dynamics served an important role during past dramatic climate changes via impacts on deep-ocean carbon storage. Such changes are recorded in sedimentary proxies of hydrographic change on continental margins, which lie at the ocean–atmosphere–earth interface. However, interpretations of these records are challenging, given complex interplays among processes delivering particulate material to and from ocean margins. Here we report radiocarbon (14C) signatures measured for organic carbon in differing grain-size sediment fractions and foraminifera in a sediment core retrieved from the southwest Iberian margin, spanning the last ~25,000 yr. Variable differences of 0–5000 yr in radiocarbon age are apparent between organic carbon in differing grain-sizes and foraminifera of the same sediment layer. The magnitude of 14C differences co-varies with key paleoceanographic indices (e.g., proximal bottom-current density gradients), which we interpret as evidence of Atlantic–Mediterranean seawater exchange influencing grain-size specific carbon accumulation and translocation. These findings underscore an important link between regional hydrodynamics and interpretations of down-core sedimentary proxies.


Previous studies suggest that dramatic climate changes during glacial terminations, including the last deglaciation, about 23–9 thousand years (kyr) ago, were related to periods of Atlantic meridional overturning circulation slowdown1,2. These slowdowns were accompanied by pronounced hydrographic changes3 throughout the sub-tropical Atlantic, which are exemplified by paleoceanographic reconstructions off the southwest Iberian margin1,4 (Fig. 1). Respective reconstructions demonstrate an antiphase relationship between North Atlantic Deep Water (NADW) formation and the strength of Mediterranean Outflow Water (MOW) during glacial termination5,6, which together are important influences on Eurasian and high north-latitude climate conditions7.

Fig. 1

Core sites and down-column water chemistry profiles. Maps of the southwest Iberian margin (a) showing modern ocean current trajectories of Mediterranean outflow water (MOW [shown in orange]), which flows around 500–2000 m depth, and locations of SHAK06-5K (open circle) and MD95-2042, U1386, and U1389 (black dots). Orange arrows show approximate sediment transfer courses out of the Gulf of Cadiz9,61,65,84. Bathymetric contours are shown at 50 m intervals as adapted from Ocean Data View (Schlitzer, R. Ocean Data View,, 2018). b, Contemporary profile around 37.5 °N for salinity, which correlates with seawater density50. Also shown are estimates of the modern (solid hatches) and deglacial (stipled hashes) nepheloid layer mixing (peak) depths16,17,50,84, which are reflected by particulate-matter concentration maxima. Deglacial nepheloid layer depths are derived from numeric simulations50,84 considered together with complementary grain-size, isotopic and foraminiferal data regarding glacial MOW dynamics3,8,50. NADW, North Atlantic Deep Water

Microfossils and biogeochemical data suggest that marked paleoceanographic changes occurred in sub-tropical Atlantic circulation at intermediate water depths during glacial termination2,8,9,10,11,12, but debate persists about the nature of these changes vis-à-vis apparent disparities among proxies within singular or correlative sediment horizons;13 for instance, sea-surface temperatures (SSTs) reconstructed from co-deposited (organic) biomarkers and foraminifera12,14,15. There is some evidence suggesting particle re-suspension and lateral translocation (advection) of sediment16 within nepheloid layers10,17 drive apparent disparities among proxies with differing grain-size associations via sediment (hydrodynamic) sorting processes18,19,20, but this evidence remains inconclusive as sediment mobilization and advection is often stochastic16 and difficult to resolve21.

Here, we reveal the effects of hydrodynamics on carbon accumulation in sediment from southwest Iberian margin core-sediments spanning the last ~25 kyr via complementary physico-chemical (e.g., grain-size distributions and X-ray fluorescence [XRF]) data and 14C ages measured for organic carbon (OC) in different grain-size classes and foraminifera separated from a 3.44 m-long sediment (Kasten) core recovered in 2013 during cruise JC089 aboard the RSS James Cook in the northeast Atlantic Ocean (Fig. 1). The core site called SHAK06-5K (37.571 °N, 10.153 °W, 2646 mbsl) lies at the lower slope of the southwest Iberian margin, where high sedimentation rates resolve paleoceanographic conditions over decadal-to-orbital timescales4,9.

Results and discussion

Radiocarbon ages of bulk organic carbon and foraminifera

Radiocarbon ages of OC increase with depth in every grain-size class and feature a maximum average radiocarbon age of 20,600 ± 900 yr, when coincident foraminifera reach their maximum calendar age of 21,725 yr BP (Fig. 2). Associated bulk sediment OC 14C feature a consistent down-core difference against foraminifera radiocarbon ages of 1450 ± 200 yr (Fig. 2) with one exception at 65–66 cm (~600 yr offset [Supplementary Data 1]) that fell during prominent Mediterranean sapropel 1 formation22 wherein radiocarbon age offsets appear influenced by particularly ‘old’ foraminifera calendar ages as opposed to unexpectedly young gross sediment TOC. In contrast, the radiocarbon offset between organic carbon in clay-size sediment fractions against foraminifera (RC–F) is more variable, with down-core differences of between about 0–2000 yr (Fig. 3a). The radiocarbon offset between organic carbon in coincident fine or coarse-silts and foraminifera (RFS–F and RCS–F, respectively) likewise is variable, with down-core differences of ~1000–3500 yr (Fig. 3a). Because organic carbon in sediment fractions of >63 μm is subject to varied influences of biomineral-bound OC (ref. 23) and incomplete disaggregation of flocculates with effective diameters in excess of 100 μm (refs. 19,24,25), we will focus here on changes in down-core radiocarbon offsets apparent between coincident finer sediment fractions and foraminifera. Notwithstanding questions about the reliability of differently preserved tests (translucent versus frosty), prior studies suggest foraminiferal 14C dates are an accurate indication of initial deposition age in rapidly accumulating sediments because of their consistent high settling velocities, whereas co-deposited finer sediments are more subject to (re)suspension with attendant spatio-temporal biases on sedimentary proxies20,26.

Fig. 2

Down-core age relationships among grain-size sediment fractions. Down-core relationships in conventional 14C (R) age of organic carbon in bulk sediment and among grain-size classes as a function of calendar age derived from 14C measurements on coincident planktonic foraminifera (c.f., Supplementary Data 1). Between sediment-fraction differences are magnified in Fig. 3 and furthermore available in Supplementary Data 1

Fig. 3

Deglacial trends in down-core records at SHAK06-5K and vicinal Iberian Margin ocean cores. Comparison of down-core sedimentary proxies at Iberian margin sites during glacial termination and Holocene. a Radiocarbon age offset between grain-size sediment fractions (clay [C], fine silt [FS], coarse silt [CS], foraminifera [F]; Rxy = RxRy, where x and y represent discrete sediment fractions [c.f., eq. 1]) isolated from the same sediment core intervals of SHAK06-5K. Also shown are propagated 1σ (s.d.) uncertainties of differences in radiocarbon age among grain-size sediment fractions (c.f., Supplementary Data 1). b Average sedimentation rates of the sediments at SHAK06-5K (black line [c.f., Supplementary Data 1]), together with bulk percent total organic carbon (TOC%) for respective sediments (N.B., the axis reversal for improved down-core comparisons). c Relative sea-level (RSL) fluctuations of the southeast Portuguese margin27,28 (blue solid line) beside corresponding global RSL data with depth uncertainties85. The rate of sea-level change is also shown, as modeled in Monte Carlo experiments with 6 m coral depth uncertainty86. d Zirconium-to-Aluminum (Zr/Al) ratios of bulk sediments at SHAK06-5K (green solid line). Raw values are natural-log transformed to improve data normality. Also shown are relative abundance (percentage) of reworked nannofossils in down-core sediments at SHAK06-5K (c.f., Supplementary Data 4). e Manganese-to Aluminum (Mn/Al) ratios of bulk sediments at SHAK06-5K, which serve as a relative indicator of benthic redox conditions22. f Difference between normalized Zr/Al ratios at U1386 and U1389 (ref. 40) that theoretically presents a surrogate measure of MOW flow depth43. g Radiocarbon age offset between co-occurring grain-size classes as compared to clays at SHAK06-5K. Again, corresponding propagated 1σ uncertainties of differences in radiocarbon age among grain-size sediment fractions are also shown (c.f., Supplementary Data 1). g Alkenone concentrations (C37:2 + C37:3 [light blue solid line]) for at MD95-2042 (ref. 14); higher values indicate increasing primary production or increases in organic matter preservation55. Also shown is excess 231Pa-to-230Th ratio at SU18-81 (green solid line), demonstrative of bottom-water circulation strength2. h Parallel down-core reconstructions of sea-surface temperature at MD95-2042 derived from coincident foraminifera assemblages67 (purple solid line), alkenones (light blue67 and dark blue14 solid lines, respectively) and tetraethers14 (green solid line). Also shown is calculated orbital precession (dashed black line), which equals the product of calculated eccentricity (e) and the sine function of longitude of the perihelion (ω). Dashed lines connecting points represent intervals of low data resolution and high meltwater release, which could drive anomalous radiocarbon values1,83. BA Bølling/Allerød, HE1 Heinrich Event 1, LGM Last Glacial Maximum, YD Younger Dryas

The organic carbon in all finer sediment fractions (i.e., C, FS and CS) has older radiocarbon ages as compared to coincident foraminifera, and the magnitude of their respective radiocarbon offsets change in step with complementary proxies of (paleo)oceanographic variability since at least 25 kyr ago (Fig. 3; Supplementary Data 1). A lower radiocarbon offset (i.e., decreased RC–F, RFS–F and RCS–F values) during the Last Glacial Maximum (LGM; 23.2 kyr ago) transitions into more moderate offsets of ~2000 ± 500 yr during preliminary glacial termination, and then rapidly peak to values of ~1500–3500 yr amid the middle of Heinrich Event 1 (HE1; 17.5–14.7 kyr ago). After an interim of lower radiocarbon offset through the conclusion of HE1 and initial Bølling/Allerød interstadial (B/A; 14.7–12.8 kyr ago), the relative age differences among grain-size classes increase again at B/A-to-Younger Dryas (YD; 12.9–11.7 kyr ago) transition with moderate offsets of ~2000 ± 500 yr. Low-to-intermediate average radiocarbon offsets subsequently persist through the mid-Holocene. Thereafter, respective offsets climb to significantly greater values amid the last few millennia, most likely due to anthropogenic impacts on sedimentary processes27 (e.g., particulate material transmission and deposition)28.

Potential driver(s) of 14C differences

Previous studies indicate systematic radiocarbon offsets among grain-size classes could be consequent to several different factors29, including preferential bioturbation30,31, diagenetic alteration or downslope mobilization of foraminiferal tests8, and the differential lateral transfer of bottom and intermediate nepheloid layer sediment fractions32 via deeper water currents16,20,33. However, although benthic organisms can induce age or size-dependent depositional displacement30,31, bioturbation effects are unlikely to affect down-core records significantly, given ichnofabric evidence of low-moderate degree34 of mid-tier35,36 (limited to upper <10 cm of the substrate) bioturbation alongside relatively high sedimentation rates31,37 and lack of a deep mixed layer29 as indicated by 210Pb from multi-cores at SHAK06-5K (Supplementary Data 3). This evidence is supported by geochemical biodiffusion models38,39, which further suggest limited biodiffusive coefficients of ~0.15 ± 0.05 cm2 yr−1 at SHAK06-5K (Supplementary Fig. 4). Diagenetic alteration or downslope remobilization of foraminiferal tests are also unlikely, given coincident foraminifera are consistently younger versus organic carbon and that tests are resistant to winnowing19.

There is a moderate correlation apparent between down-core values of RFS–F and RCS–F and XRF-derived Zr/Al ratios of bulk sediment (Fig. 3d–f), which can often serve as a proxy of MOW flow-core velocities40, that implies bottom-current flow dynamics are an important factor in controlling grain-size specific re-suspension. Yet, the recent MOW flow-core shows an average depth of ~500–1500 mbsl (ref. 41) that lies well above SHAK06-5K (2646 mbsl). Thus, while at least the base of the MOW descended to at least 2600 mbsl (Fig. 1) during past Heinrich events5,41, it is improbable that Zr/Al trends at SHAK06-5K directly proxy past changes in past MOW flow-core velocities13.

Therefore, we compared the differences in normalized4,40,42 Zr/Al ratios between marine cores recovered from a site close to the Strait of Gibraltar (U1389; 36.425 °N, 7.277 °W, 644 mbsl), which is a sensitive recorder of MOW flow velocities40,42, and another site closer to the moat generated by the uppermost MOW (U1386; 36.828 °N, 7.755 °W, 561 mbsl), which is sensitive to both MOW flow velocities and flow-core depth42. Considered together, such differences should be a robust, though indirect, indicator of MOW flow-core depths42,43. Not too surprisingly, patterns of U1389–U1386 differences show a stronger correlation with RFS–C and RCS–C trends as compared to either core alone (Fig. 3f). With this in mind, here we suggest that Zr/Al instead tracks changes in advected finer-grained terrigenous siliclastics entrained in association with a nepheloid layer16,17,44,45.

There are significant low-to-moderate strength relationships apparent between radiocarbon offsets and XRF (i.e., manganese-to-aluminum ratio [Mn/Al]) trends at SHAK06-5K (Fig. 3e; Supplementary Data 1) that hint toward the effects of bottom water oxygenation with respect to sediment flux and OM degradation. Previous studies of Mediterranean seawater and sediment dynamics suggest Mn/Al trends in regional deep-sea sediments correlate with redox conditions22 that, in turn, impact the abundance and degradation (e.g., ‘pre-aged’) of OM in sediments and suspended particulate matter (SPM) through cyclic oxygen (re)exposure46,47. More specifically, paleoceanographic reconstructions of deglacial MOW fluctuations suggest that there was increased discharge of deep-and-intermediate waters48 with high amounts of fine sediment fractions and TOC22,49.

Insomuch as nepheloid layer dynamics and bottom current flow velocities along the Iberian margin are each related to seawater density gradients44 between regional MOW and Atlantic seawater41,50, increased Zr/Al and Mn/Al ratios most likely parallel the enhanced lateral transport flux and deposition of finer sediments (i.e., silts) as compared to vertical input of fresh hemipelagic materials22,48 because of the deeper, enhanced nepheloid layer developed between seawater masses with disparate densities16,17. This interpretation is consistent with the nominal differences in down-core sortable silt distributions (Supplementary Data 1) and is reinforced by parallel down-core records of the unsupported 231Pa-to-230Th ratios at SU81-18 (37.767 °N, 10.183 °W, 3135 mbsl) (Fig. 3h). Thus, we suggest that it is not MOW flow-core velocity, in itself, that drives apparent Zr/Al trends at SHAK06-5K, but the associated nepheloid layer(s) that develops alongside wider salinity gradients amid Atlantic-Mediterranean seawater masses17,44 at lower depths50. This association squares with observations of turbulent (re)suspension of finer sediment from upper slopes at their contact with uppermost MOW flow (c.f., internal tides)16,51 that then settles at MOW–NADW interface16,17,22,52 along with SPM transported from up-current distal locations9,16,22,48. Aforementioned drivers also square with the moderate correlation strength between radiocarbon offsets and down-core sedimentation rate (Fig. 3a, b) and inferred benthic redox conditions (Fig. 3e), both of which are entwined to changes in sea-level22. This combination of (hydro)physical drivers would drive increased injection of turbid Mediterranean water masses into the Gulf of Cadiz at high velocities during periods of deglacial transgression6,48,49, alongside regional increases in rainfall (i.e. river discharge) and benthic dysoxia22,48,49. As such, times of stronger MOW flow would thus result in more advection of fine grained terrigenous clastic material to our site, which then would be admixed together with local hemipelagic rain in varying proportions18,49,53.

Although the exact balance of MOW temperature-salinity parameters during glacial termination remains uncertain41,54, reconstructed densities (σ) of important Atlantic-Mediterranean seawater masses are more certain. The contrast between reconstructed densities of MOW and NADW through Greenland stadials (σMOW − σNADW = 2.4 kg m−3) is much larger as compared to warmer (interstadial) intervals41, such as the recent Holocene45,54MOW − σNADW = 0.7 kg m−3). Considered together with evidence of low-moderate degree34 of mid-tier (< 10 cm of the substrate) bioturbation35,36, our data suggest that down-core radiocarbon age offsets among grain-size classes are consequent – at least in part – to differential hydrodynamic effects on sediment lateral transfer vis-à-vis differences in regional Atlantic-Mediterranean seawater densities and flow depths. All data considered together, we suggest there are competing influences of (hemi)pelagic dilution vs. advection of finer sediment fractions as a function of MOW depth and OM degradation extent that, in turn, are related to regional (Mediterranean) terrestrial hydroclimate, ocean circulation dynamics, and benthic oxygenation.

(Paleo)oceanographic implications

Considerable changes occurred in regional MOW dynamics (i.e., current depth and flow velocities) during glacial termination9,40,42,43, about 20–10 kyr ago; however, important details of these changes remain unclear. Increasing grain-sizes42 and increases in reworked nannofossil influx11,55 (Fig. 3d) during deglacial transitions and the mid-Holocene correspond to intervals of decreased Nile river discharge56, which led to more saline (denser) MOW41,45,50, and decreased formation of less dense, cold NADW54,57. Intervals associated with cold Arctic conditions2,54,56 show decreased percent total OC (TOC% [Fig. 3b]) together with overall high sedimentation rates (Supplementary Data 1), which typically parallel OC burial efficiency37. Although relative differences in terrestrial input (vs. marine) could be one explanation of these observations, it does not befit the consistent low ratio values of bulk carbon-to-nitrogen (Supplementary Data 1) and branched isoprenoid tetraethers14 (BIT) that together indicate negligible soil OM input throughout the last ~25 kyr. Decreased TOC% through these intervals also does not track the significant, though varied, disparities in relative abundances or reconstructed temperatures among principle oceanography proxies14 (i.e., alkenones, isoprenoid tetraethers, and foraminifera [Fig. 3h, i]).

One approach to reconcile such apparent discrepancies invokes recent data suggesting grain-sizes of 10–63 μm (c.f., CS) feature especially protracted lateral transport histories in ocean margin systems33,58,59, such that CS fractions contain decreasing proportions of fresh organic matter and decreased TOC% through time via progressive pre-depositional degradation23,33. During progressive oxic degradation, residual OC in CS fractions will become increasingly pre-aged because of decreased fresh organic matter and its accumulative residence in nepheloid layers over repeated (re)suspension–deposition cycles21,33,58,59,60.

Interestingly, previous studies reveal that the recent MOW transfers particulate matter with an average diameter of 5–25 μm (refs. 17,61) from coastal Atlantic sources (Gulf of Cádiz)55,61 that then is entrained to more distal locations of the continental Iberian margin. Assuming grain-sizes of 2–10 μm (c.f., FS) have similar sediment transport histories as coarser silt51,59, these combined data suggest that RFS–C and RCS–C trends (Fig. 3g) are related to relative differences in organic carbon mixing proportions and degradation among grain-size classes as controlled by pre-depositional translocation (entrainment) time, although the specific mechanisms responsible for apparent bulk 14C differences remain speculative in lieu of biomarker compositional data in corresponding grain-size sediment fractions.

Our analyses reveal down-core coherence of TOC% and the corresponding proportion of OC derived from clay (r = 0.789 [Supplementary Data 1]) that drive strong parallels of TOC% against RCS–C and RFS–C (Fig. 3b, g). In contrast, TOC% has weak correlations with both fine- and the coarse silt fractions (Supplementary Data 1). As such, marked decreases of TOC% during parts of HE1 and YD (Fig. 3b) follow alongside a relative shift towards more refractory, pre-aged OC in coarse and fine-silt fractions (Fig. 3g, Supplementary Data 1) independent of OC dilution or isotopic mass balance. Assuming particle entrainment during deglacial formation of MOW-related nepheloid layers was also dominated by grain-sizes of 15 ± 10 μm (ref. 17), these data suggest there was increased lateral (re)suspension of finer sediment19,52,59,62 (i.e., silt) with relatively pre-aged OC21,33,58 derived from more remote allochthonous sources63 such as marginal Gulf of Cadiz drift deposits61,64,65.

Apparent discrepancies among (paleo)oceanography proxies

Differential lateral transfer dynamics among grain-size classes may help to explain apparent disparities among proxies during paleoceanographic reconstructions in drift deposits when a single age-depth model is adopted for all down-core records (c.f., Fig. 3i). For example, earlier studies reveal disparities in sea-surface temperature (SST) estimates reconstructed from alkenones14,55, glycerol dialkyl glycerol tetraethers14,66 (GDGTs), and foraminifera12,15,67 from correlative down-core records at MD95-2042 (ref. 14). Although some of these disparities could be consequent to multiple or independent factors14,66 (e.g., phylogenetic or other species-dependent factors), degradation and hydrodynamic effects could have an intrinsic role in explaining such proxy paradoxes13,59,63,68.

Overall MOW flow velocities decline from >250 cm s−1 at the strait of Gibraltar to about 10–15 cm s−1 off Cape St. Vicente spur and <10 cm s−1 along the western Portuguese slope65. Considered together with observations that demonstrate resuspension of fine silts and benthic aggregates occurs when respective currents exceed 15-to-25 cm s−1 (refs. 19,59,62), this suggests a critical threshold for deceleration is crossed in the vicinity of SHAK06-5K that might lead to differential degradation24,29,33,58 and deposition of advected SPM from up-current locations65. Accepting previous studies showing prototypic organic matter aggregates and fine surface-sediments of the southwest Portuguese margin show average settling speeds of ~0.015 cm s–1 within associated MOW branches and spend ~50% of time in (re)suspension52,59, these combined data insinuate advective displacement distances of up to several hundreds of kilometres (c.f., Alboran Sea25) that befit the results of bottom boundary (BOBO) landers53 and bottom-current circulation simulations65.

Alkenones and GDGTs show dissimilar radiocarbon age offsets26,69,70 as compared to coincident foraminifera in north Atlantic drift deposits20 that befit the combination of their differing grain-size associations31,59 and degradation recalcitrance29,68,70. Previous studies indicate alkenones, which are more recalcitrant to oxidation20,26,70, occur in association with sedimentary particles of <6 μm (refs. 71,72), but less-recalcitrant GDGTs66,69 are associated with sedimentary particles of 6–32 μm (ref. 73). Although sorting processes are subject to variable and differential influences among grain-sizes (e.g., particle sphericity, particle aggregation, and turbidity [particle concentration])59,60 and between sedimentary particles of the same size (e.g., grain mineralogy [illite vs. kaolinite])74, analogous molecular sediment-fraction associations23,29 – and thus relative age offsets25,33,45,64 – are also implied for southwest Portuguese margin sites71, wherein down-core alkenone and GDGT-derived SST trends are offset (lagged), like RCS–FS values, about 200 yr on average, and likewise are offset from coincident foraminifera-derived SSTs up to several hundreds of years (Fig. 3g, i).

The magnitude of time offset between organic sedimentary proxies of SST through deglaciation is consistent with the average radiocarbon age offsets of their corresponding grain-size classes (i.e., alkenones [FS] and GDGTs [CS]) (Fig. 3a, i). Stepwise increases in instantaneous (differential) lag phase amid HE1 and YD happen in concert with high radiocarbon offsets (Supplementary Fig. 3), high MOW flow velocities and densities (Fig. 3d–f), and elevated fluxes of reworked nannofossils11,55 (Fig. 3d) despite rather uniform4,45 corresponding grain-size distributions at SHAK06-5K (Supplementary Data 1). Like some other studies13,59, these same increases do not feature changes in median diameter of the sortable silts (equivalent to coarse silt [CS] fraction), which are often used to reconstruct flow velocities9. Further work, especially paired 14C measurements of differing proxies (e.g., alkenones) and their carrier phase (e.g., coccolithophores), is essential to establish the occurrence and significance of these phenomena. Even so, our study provides support for significant hydrodynamic effects on organic carbon transport, degradation, and deposition on ocean margins, and interpretations of related (paleo)climate records.

To summarize, organic radiocarbon age differences among grain-size classes as compared to coincident foraminiferal tests in marine sediments of the northeast Atlantic margin reveal differential lateral transfer dynamics accompanying particle mobilization, as controlled by paleo-current densities vis-à-vis nepheloid layer dynamics. Intervals with intensified Mediterranean Outflow, which closely parallel increased Atlantic-Mediterranean seawater density contrasts, amid Heinrich Event 1 have much higher radiocarbon offsets among grain-size classes of ~1000–2500 yr and lower organic carbon concentrations as compared to intervals with more sluggish Mediterranean Outflow amid the mid-Holocene. In consequence, our results suggest differential lateral transfer dynamics can influence apparent lead–lag patterns among proxies with differing grain-size associations; as such, hydrodynamic influences on organic carbon accumulation and transfer are important factors to consider in interpretations of diverse co-occurring proxies in down-core records, which can experience differential degradation and hydrodynamic (sorting) processes.


Sediment sampling procedures and fraction separation

The entire core was sectioned at 1-cm resolution on-board, from which 21 discrete sediment intervals (~50 g) were sub-sampled, before storage at −20 °C. Sub-samples were separated through wetted fine-mesh sieves75 and tube settling protocol76 to create a series of four grain-size sediment fractions: clay (<2 μm [C]), fine silt (2–10 μm [FS]), coarse silt (10–63 μm [CS]), and sand (>63 μm [S]). Although sediment-fraction recoveries were not monitored directly, previous studies demonstrate wet-sieve recovery percentages exceed 85% both for mass and bulk organic carbon in most instances60 and have a nominal influence on associated bulk sediment-fraction isotopic signatures71,77 despite small, though significant, losses of dissolved organic matter during rinsing. Likewise, measured total bulk organic compositions correlate with mass-balance calculations of the organic composition among grain-size sediment fractions (r2 = 0.718 [c.f., Supplementary Data 1 and Supplementary Fig. 2]). Well-preserved tests of the planktonic foraminifer Globigerina bulloides—abbreviated “F” for foraminifera—were subsequently picked from associated 200–250 μm sediment fractions.

Sample analysis

Radiocarbon measurements of foraminiferal tests and decarbonated (hydrochloric acid fumigated)78 bulk sediment fractions were made on a mini-carbon dating system79 (MICADAS) following graphitization or via elemental analyser as detailed previously80. Radioactive carbon isotope compositions are shown as conventional 14C ages (R ± 1σ s.d.) to calculate relative age relationships (i.e., offsets)81 among grain-size classes, where x and y represent discrete sediment fractions:

$$R_{x-y} = R_x-R_y$$

To calculate absolute age relationships26,33, however, conventional 14C ages of foraminiferal tests were converted into calendar years in an age-depth model (CALIB 7.1)82 with a dynamic marine inorganic carbon reservoir correction (Supplementary Data 1) that is consistent with chronostratigraphic constraints imposed by planktonic oxygen isotope records1,2,83 from MD95-2042/MD99-2334K (37.799 °N, 10.168 °W, 3146 mbsl) to within several hundred years83. XRF (Avaatech [University of Cambridge]) analyses were used for semi-quantitative analysis at 0.5 cm depth intervals on u-channel (sub)cores extracted from composite split-core scans of SHAK06-5K Kasten core material (c.f., Supplementary Data 2).

Age models

Foraminiferal (Globigerina bulloides) test 14C ages were used to construct the age model for SHAK06-5K (37.571 °N, 10.153 °W, 2646 mbsl). To do so, surface reservoir ages estimated from at MD99-2334K (37.799 °N, 10.168 °W, 3146 mbsl)1 were subtracted from each conventional 14C date (c.f., Supplementary Data 1) before conversion to calendar ages with CALIB 7.1 (ref. 82). Then, respective calendar ages were used to construct down-core sediment depth-age models after stratigraphic alignment (c.f., Supplementary Fig. 1) against U1385 (37.571 °N, 10.126 °W, 2578 mbsl)4. With this in mind, the corresponding propagated 1σ uncertainties used for estimating phase relationships fall below about 150 yr with few exceptions (c.f., Supplementary Data 1). We note that these uncertainties do not have much influence on our interpretations of lead/lag phase among proxy records (c.f., Fig. 3g, i) because appertaining proxies (i.e, RCFS/CS–C and tetraether/alkenone-derived SST) are derived from singular cores (SHAK06-5K and MD95-2042, respectively) and thus are internally consistent.

Data availability

The authors declare all the new data used to support this research are available within the article and its supplementary information files.


  1. 1.

    Skinner, L. C., Waelbroeck, C., Scrivner, A. E. & Fallon, S. J. Radiocarbon evidence for alternating northern and southern sources of ventilation of the deep Atlantic carbon pool during the last deglaciation. Proc. Natl Acad. Sci. USA 111, 5480–5484 (2014).

    ADS  CAS  Article  Google Scholar 

  2. 2.

    Gherardi, J. M. et al. Evidence from the Northeastern Atlantic basin for variability in the rate of the meridional overturning circulation through the last deglaciation. Earth Planet. Sc. Lett. 240, 710–723 (2005).

    ADS  CAS  Article  Google Scholar 

  3. 3.

    Voelker, A. H. L. & de Abreu, L. in Abrupt Climate Change: Mechanisms, Patterns, and Impacts (eds H. Rashid, L. Polyak, & E. Mosley-Thompson) 15–37 (American Geophysical Union, 2011).

  4. 4.

    Hodell, D. et al. A reference time scale for Site U1385 (Shackleton Site) on the SW Iberian Margin. Glob. Planet. Change 133, 49–64 (2015).

    ADS  Article  Google Scholar 

  5. 5.

    Rogerson, M., Rohling, E. J. & Weaver, P. P. Promotion of meridional overturning by Mediterranean‐derived salt during the last deglaciation. Paleoceanography 21, PA4101 (2006).

  6. 6.

    Voelker, A. H. L. et al. Mediterranean outflow strengthening during northern hemisphere coolings: a salt source for the glacial Atlantic? Earth Planet. Sc. Lett. 245, 39–55 (2006).

    ADS  CAS  Article  Google Scholar 

  7. 7.

    Ivanovic, R. F., Valdes, P. J., Gregoire, L., Flecker, R. & Gutjahr, M. Sensitivity of modern climate to the presence, strength and salinity of Mediterranean-Atlantic exchange in a global general circulation model. Clim. Dynam. 42, 859–877 (2014).

    ADS  Article  Google Scholar 

  8. 8.

    Schönfeld, J. & Zahn, R. Late Glacial to Holocene history of the Mediterranean Outflow: evidence from benthic foraminiferal assemblages and stable isotopes at the Portuguese margin. Palaeogeogr. Palaeocl. 159, 85–111 (2000).

    Article  Google Scholar 

  9. 9.

    Toucanne, S. et al. Contourites of the Gulf of Cadiz: a high-resolution record of the paleocirculation of the Mediterranean outflow water during the last 50,000 years. Palaeogeogr. Palaeocl. 246, 354–366 (2007).

    Article  Google Scholar 

  10. 10.

    Stumpf, R., Frank, M., Schönfeld, J. & Haley, B. A. Climatically driven changes in sediment supply on the SW Iberian shelf since the Last Glacial Maximum. Earth Planet. Sc. Lett. 312, 80–90 (2011).

    ADS  CAS  Article  Google Scholar 

  11. 11.

    Palumbo, E. et al. Abrupt variability of the last 24 ka BP recorded by coccolithophore assemblages off the Iberian Margin (core MD03‐2699). J. Quat. Sci. 28, 320–328 (2013).

    Article  Google Scholar 

  12. 12.

    Salgueiro, E. et al. Past circulation along the western Iberian margin: a time slice vision from the Last Glacial to the Holocene. Quat. Sci. Rev. 106, 316–329 (2014).

    ADS  Article  Google Scholar 

  13. 13.

    Mulder, T. et al. Contourites in the Gulf of Cadiz: a cautionary note on potentially ambiguous indicators of bottom current velocity. Geo. -Mar. Lett. 33, 357–367 (2013).

    ADS  Article  Google Scholar 

  14. 14.

    Darfeuil, S. et al. Sea surface temperature reconstructions over the last 70 kyr off Portugal: biomarker data and regional modeling. Paleoceanography 31, 40–65 (2016).

    ADS  Article  Google Scholar 

  15. 15.

    Cayre, O., Lancelot, Y., Vincent, E. & Hall, M. A. Paleoceanographic reconstructions from planktonic foraminifera off the Iberian Margin: temperature, salinity, and Heinrich events. Paleoceanography 14, 384–396 (1999).

    ADS  Article  Google Scholar 

  16. 16.

    Quaresma, L. S., Vitorino, J., Oliveira, A. & da Silva, J. Evidence of sediment resuspension by nonlinear internal waves on the western Portuguese mid-shelf. Mar. Geol. 246, 123–143 (2007).

    ADS  Article  Google Scholar 

  17. 17.

    Oliveira, A. et al. Nepheloid layer dynamics in the northern Portuguese shelf. Prog. Oceanogr. 52, 195–213 (2002).

    ADS  Article  Google Scholar 

  18. 18.

    Lebreiro, S. M. et al. Sediment instability on the Portuguese continental margin under abrupt glacial climate changes (last 60kyr). Quat. Sci. Rev. 28, 3211–3223 (2009).

    ADS  Article  Google Scholar 

  19. 19.

    Thomsen, L. & Gust, G. Sediment erosion thresholds and characteristics of resuspended aggregates on the western European continental margin. Deep-Sea Res. Pt. I 47, 1881–1897 (2000).

    Article  Google Scholar 

  20. 20.

    Ohkouchi, N., Eglinton, T. I., Keigwin, L. D. & Hayes, J. M. Spatial and temporal offsets between proxy records in a sediment drift. Science 298, 1224–1227 (2002).

    ADS  CAS  Article  Google Scholar 

  21. 21.

    Tesi, T. et al. Reexposure and advection of 14C‐depleted organic carbon from old deposits at the upper continental slope. Global Biogeochem. Cy. 24 10.1029/2009GB003745 (2010).

    Article  Google Scholar 

  22. 22.

    Rogerson, M. et al. A dynamic explanation for the origin of the western Mediterranean organic‐rich layers. Geochem. Geophys. Geosy. 9, Q0740 (2008).

    Article  Google Scholar 

  23. 23.

    Arnarson, T. S. & Keil, R. G. Changes in organic matter–mineral interactions for marine sediments with varying oxygen exposure times. Geochim. Cosmochim. Ac. 71, 3545–3556 (2007).

    ADS  CAS  Article  Google Scholar 

  24. 24.

    García, R. et al. Sediment bioavailable organic matter, deposition rates and mixing intensity in the Setúbal–Lisbon canyon and adjacent slope (Western Iberian Margin). Deep-Sea Res. Pt. I 57, 1012–1026 (2010).

    Article  Google Scholar 

  25. 25.

    Pando, S., Juliano, M., García, R., de Jesus Mendes, P. & Thomsen, L. Application of a lagrangian transport model to organo-mineral aggregates within the Nazaré canyon. Biogeosciences 10, 4103 (2013).

    ADS  Article  Google Scholar 

  26. 26.

    Mollenhauer, G. et al. An evaluation of 14C age relationships between co‐occurring foraminifera, alkenones, and total organic carbon in continental margin sediments. Paleoceanography 20, PA1016 (2005).

    Article  Google Scholar 

  27. 27.

    Dias, J., Boski, T., Rodrigues, A. & Magalhães, F. Coast line evolution in Portugal since the Last Glacial Maximum until present—a synthesis. Mar. Geol. 170, 177–186 (2000).

    ADS  Article  Google Scholar 

  28. 28.

    Delgado, J. et al. Sea-level rise and anthropogenic activities recorded in the late Pleistocene/Holocene sedimentary infill of the Guadiana Estuary (SW Iberia). Quat. Sci. Rev. 33, 121–141 (2012).

    ADS  Article  Google Scholar 

  29. 29.

    Zonneveld, K. A. F. et al. Selective preservation of organic matter in marine environments; processes and impact on the sedimentary record. Biogeosciences 7, 483–511 (2010).

    ADS  CAS  Article  Google Scholar 

  30. 30.

    Smith, C. R., Pope, R. H., DeMaster, D. J. & Magaard, L. Age-dependent mixing of deep-sea sediments. Geochim. Cosmochim. Ac. 57, 1473–1488 (1993).

    ADS  CAS  Article  Google Scholar 

  31. 31.

    Bard, E. Paleoceanographic implications of the difference in deep‐sea sediment mixing between large and fine particles. Paleoceanography 16, 235–239 (2001).

    ADS  Article  Google Scholar 

  32. 32.

    Karakaş, G. et al. High‐resolution modeling of sediment erosion and particle transport across the northwest African shelf. J. Geophys. Res. 111, C06025 (2006).

  33. 33.

    Mollenhauer, G. et al. Aging of marine organic matter during cross‐shelf lateral transport in the Benguela upwelling system revealed by compound‐specific radiocarbon dating. Geochem. Geophys. Geosy. 8, Q09004 (2007).

    Article  Google Scholar 

  34. 34.

    Dorador, J. & Rodríguez-Tovar, F. J. Stratigraphic variation in ichnofabrics at the “Shackleton Site” (IODP Site U1385) on the Iberian Margin: paleoenvironmental implications. Mar. Geol. 377, 118–126 (2016).

    ADS  Article  Google Scholar 

  35. 35.

    Baas, J., Schönfeld, J. & Zahn, R. Mid-depth oxygen drawdown during Heinrich events: evidence from benthic foraminiferal community structure, trace-fossil tiering, and benthic δ13C at the Portuguese Margin. Mar. Geol. 152, 25–55 (1998).

    ADS  CAS  Article  Google Scholar 

  36. 36.

    Baas, J. H., Mienert, J., Abrantes, F. & Prins, M. A. Late Quaternary sedimentation on the Portuguese continental margin: climate-related processes and products. Palaeogeogr. Palaeoclimatol. Palaeoecol. 130, 1–23 (1997).

    Article  Google Scholar 

  37. 37.

    Masson, D. G. et al. Efficient burial of carbon in a submarine canyon. Geology 38, 831–834 (2010).

    ADS  CAS  Article  Google Scholar 

  38. 38.

    Nittrouer, C., DeMaster, D., McKee, B., Cutshall, N. & Larsen, I. The effect of sediment mixing on Pb-210 accumulation rates for the Washington continental shelf. Mar. Geol. 54, 201–221 (1984).

    ADS  CAS  Article  Google Scholar 

  39. 39.

    Meysman, F. J., Boudreau, B. P. & Middelburg, J. J. Relations between local, nonlocal, discrete and continuous models of bioturbation. J. Mar. Res. 61, 391–410 (2003).

    Article  Google Scholar 

  40. 40.

    Bahr, A. et al. Persistent monsoonal forcing of Mediterranean Outflow Water dynamics during the late Pleistocene. Geology 43, 951–954 (2015).

    ADS  Article  Google Scholar 

  41. 41.

    Rogerson, M. et al. Enhanced Mediterranean‐Atlantic exchange during Atlantic freshening phases. Geochem. Geophys. Geosy. 11, Q08013 (2010).

    Article  Google Scholar 

  42. 42.

    Bahr, A. et al. Deciphering bottom current velocity and paleoclimate signals from contourite deposits in the Gulf of Cádiz during the last 140 kyr: an inorganic geochemical approach. Geochem. Geophys. Geosy. 15, 3145–3160 (2014).

    ADS  MathSciNet  Article  Google Scholar 

  43. 43.

    Kaboth, S., Bahr, A., Reichart, G.-J., Jacobs, B. & Lourens, L. J. New insights into upper MOW variability over the last 150 kyr from IODP 339 Site U1386 in the Gulf of Cadiz. Mar. Geol. 377, 136–145 (2016).

    ADS  Article  Google Scholar 

  44. 44.

    Puig, P., Palanques, A., Guillén, J. & El Khatab, M. Role of internal waves in the generation of nepheloid layers on the northwestern Alboran slope: implications for continental margin shaping. J. Geophys. Res. 109, C09011 (2004).

  45. 45.

    Hanebuth, T. J., Zhang, W., Hofmann, A. L., Löwemark, L. A. & Schwenk, T. Oceanic density fronts steering bottom-current induced sedimentation deduced from a 50 ka contourite-drift record and numerical modeling (off NW Spain). Quat. Sci. Rev. 112, 207–225 (2015).

    ADS  Article  Google Scholar 

  46. 46.

    Blair, N. E. & Aller, R. C. The fate of terrestrial organic carbon in the marine environment. Annu. Rev. Mar. Sci. 4, 401–423 (2012).

    ADS  Article  Google Scholar 

  47. 47.

    Hedges, J. I. et al. Sedimentary organic matter preservation; a test for selective degradation under oxic conditions. Am. J. Sci. 299, 529–555 (1999).

    ADS  CAS  Article  Google Scholar 

  48. 48.

    Jiménez-Espejo, F. J. et al. Geochemical evidence for intermediate water circulation in the westernmost Mediterranean over the last 20kyrBP and its impact on the Mediterranean Outflow. Glob. Planet. Change 135, 38–46 (2015).

    ADS  Article  Google Scholar 

  49. 49.

    Martinez-Ruiz, F. et al. Paleoclimate and paleoceanography over the past 20,000 yr in the Mediterranean Sea Basins as indicated by sediment elemental proxies. Quat. Sci. Rev. 107, 25–46 (2015).

    ADS  Article  Google Scholar 

  50. 50.

    Rogerson, M., Rohling, E. J., Bigg, G. R. & Ramirez, J. Paleoceanography of the Atlantic‐Mediterranean exchange: overview and first quantitative assessment of climatic forcing. Rev. Geophys. 50, RG2003 (2012).

  51. 51.

    McCave, I. & Hall, I. Turbidity of waters over the Northwest Iberian continental margin. Prog. Oceanogr. 52, 299–313 (2002).

    ADS  Article  Google Scholar 

  52. 52.

    de Jesus Mendes, P. A., Maier, I. & Thomsen, L. Effect of physical variables on particle critical erosion shear stress: hydrostatic pressure, slope and changes in water density. Estuar. Coast. Shelf. S. 75, 317–326 (2007).

    ADS  Article  Google Scholar 

  53. 53.

    de Stigter, H. C. et al. Recent sediment transport and deposition in the Lisbon–Setúbal and Cascais submarine canyons, Portuguese continental margin. Deep-Sea Res. Pt. II 58, 2321–2344 (2011).

    ADS  Article  Google Scholar 

  54. 54.

    Zahn, R. et al. Thermohaline instability in the North Atlantic during meltwater events: stable isotope and ice‐rafted detritus records from Core SO75‐26KL, Portuguese Margin. Paleoceanography 12, 696–710 (1997).

    ADS  Article  Google Scholar 

  55. 55.

    Incarbona, A. et al. Primary productivity variability on the Atlantic Iberian Margin over the last 70,000 years: evidence from coccolithophores and fossil organic compounds. Paleoceanography 25, PA2218 (2010).

  56. 56.

    Tjallingii, R. et al. Coherent high-and low-latitude control of the northwest African hydrological balance. Nat. Geosci. 1, 670–675 (2008).

    ADS  CAS  Article  Google Scholar 

  57. 57.

    Dubois‐Dauphin, Q. et al. South Atlantic intermediate water advances into the north‐east Atlantic with reduced Atlantic meridional overturning circulation during the last glacial period. Geochem. Geophys. Geosy. 17, 2336–2353 (2016).

    ADS  Article  Google Scholar 

  58. 58.

    Bao, R. et al. Widespread dispersal and aging of organic carbon in shallow marginal seas. Geology 44, 791–794 (2016).

    ADS  CAS  Article  Google Scholar 

  59. 59.

    McCave, I. N. & Hall, I. R. Size sorting in marine muds: processes, pitfalls, and prospects for paleoflow‐speed proxies. Geochem. Geophys. Geosy. 7, Q10N05 (2006).

    Article  Google Scholar 

  60. 60.

    Tesi, T., Semiletov, I., Dudarev, O., Andersson, A. & Gustafsson, Ö. Matrix association effects on hydrodynamic sorting and degradation of terrestrial organic matter during cross‐shelf transport in the Laptev and East Siberian shelf seas. J. Geophys. Res. -Biogeo. 121, 731–752 (2016).

    CAS  Article  Google Scholar 

  61. 61.

    Freitas, P. S. & Abrantes, F. Suspended particulate matter in the Mediterranean water at the Gulf of Cadiz and off the southwest coast of the Iberian Peninsula. Deep-Sea Res. Pt. II 49, 4245–4261 (2002).

    ADS  CAS  Article  Google Scholar 

  62. 62.

    Davies, A. M., Xing, J., Huthnance, J. M., Hall, P. & Thomsen, L. Models of near-bed dynamics and sediment movement at the Iberian margin. Prog. Oceanogr. 52, 373–397 (2002).

    ADS  Article  Google Scholar 

  63. 63.

    Epping, E., van der Zee, C., Soetaert, K. & Helder, W. On the oxidation and burial of organic carbon in sediments of the Iberian margin and Nazaré Canyon (NE Atlantic). Prog. Oceanogr. 52, 399–431 (2002).

    ADS  Article  Google Scholar 

  64. 64.

    Sala, I., Caldeira, R., Estrada‐Allis, S. N., Froufe, E. & Couvelard, X. Lagrangian transport pathways in the northeast Atlantic and their environmental impact. Limnol. Oceanogr.: Fluids Environ. 3, 40–60 (2013).

    Article  Google Scholar 

  65. 65.

    Hernández-Molina, F. J. et al. Along-slope oceanographic processes and sedimentary products around the Iberian margin. Geo. -Mar. Lett. 31, 315–341 (2011).

    ADS  Article  Google Scholar 

  66. 66.

    Kim, J.-H. et al. Influence of deep-water derived isoprenoid tetraether lipids on the paleothermometer in the Mediterranean Sea. Geochim. Cosmochim. Ac. 150, 125–141 (2015).

    ADS  CAS  Article  Google Scholar 

  67. 67.

    Pénaud, A. et al. Assessment of sea surface temperature changes in the Gulf of Cadiz during the last 30 ka: implications for glacial changes in the regional hydrography. Biogeosciences 8, 2295–2316 (2011).

    ADS  Article  Google Scholar 

  68. 68.

    Burdige, D. J. Preservation of organic matter in marine sediments: controls, mechanisms, and an imbalance in sediment organic carbon budgets? Chem. Rev. 107, 467–485 (2007).

    CAS  Article  Google Scholar 

  69. 69.

    Shah, S. R., Mollenhauer, G., Ohkouchi, N., Eglinton, T. I. & Pearson, A. Origins of archaeal tetraether lipids in sediments: insights from radiocarbon analysis. Geochim. Cosmochim. Ac. 72, 4577–4594 (2008).

    ADS  CAS  Article  Google Scholar 

  70. 70.

    Mollenhauer, G., Eglinton, T. I., Hopmans, E. C. & Damsté, J. S. S. A radiocarbon-based assessment of the preservation characteristics of crenarchaeol and alkenones from continental margin sediments. Org. Geochem. 39, 1039–1045 (2008).

    CAS  Article  Google Scholar 

  71. 71.

    Quirós-Collazos, L. et al. Distribution and sources of organic matter in size-fractionated nearshore sediments off the Barcelona city (NW Mediterranean). Estuar. Coast. Shelf. S. 189, 267–280 (2017).

    ADS  Article  Google Scholar 

  72. 72.

    Pedrosa-Pàmies, R. et al. Composition and sources of sedimentary organic matter in the deep eastern Mediterranean Sea. Biogeosciences 12, 9935–9989 (2015).

    Article  Google Scholar 

  73. 73.

    Park, Y.-H. et al. Distribution, source and transportation of glycerol dialkyl glycerol tetraethers in surface sediments from the western Arctic Ocean and the northern Bering Sea. Mar. Chem. 165, 10–24 (2014).

    CAS  Article  Google Scholar 

  74. 74.

    Whitehouse, U. G., Jeffrey, L. M. & Debbrecht, J. D. in Clays and Clay Minerals: Proceedings of the Seventh National Conference. 1–79 (Elsevier).

  75. 75.

    Stemmer, M., Gerzabek, M. H. & Kandeler, E. Organic matter and enzyme activity in particle-size fractions of soils obtained after low-energy sonication. Soil Biol. Biochem. 30, 9–17 (1998).

    CAS  Article  Google Scholar 

  76. 76.

    Gibbs, R. J., Matthews, M. D. & Link, D. A. The relationship between sphere size and settling velocity. J. Sediment. Res. 41, 7–18 (1971).

    Article  Google Scholar 

  77. 77.

    Xu, C., Guo, L., Dou, F. & Ping, C.-L. Potential DOC production from size-fractionated Arctic tundra soils. Cold Reg. Sci. Technol. 55, 141–150 (2009).

    Article  Google Scholar 

  78. 78.

    Brodie, C. R. et al. Evidence for bias in C and N concentrations and δ13C composition of terrestrial and aquatic organic materials due to pre-analysis acid preparation methods. Chem. Geol. 282, 67–83 (2011).

    ADS  CAS  Article  Google Scholar 

  79. 79.

    Synal, H.-A., Stocker, M. & Suter, M. MICADAS: a new compact radiocarbon AMS system. Nucl. Instrum. Meth. B 259, 7–13 (2007).

    ADS  CAS  Article  Google Scholar 

  80. 80.

    Wacker, L. et al. MICADAS: routine and high-precision radiocarbon dating. Radiocarbon 52, 252–252 (2010).

    CAS  Article  Google Scholar 

  81. 81.

    Soulet, G., Skinner, L. C., Beaupré, S. R. & Galy, V. A note on reporting of reservoir 14C disequilibria and age offsets. Radiocarbon 58, 205–211 (2016).

    CAS  Article  Google Scholar 

  82. 82.

    Stuiver, M., Reimer, P. & Reimer, R. CALIB 7.1, program. Queens Univ., Belfast, UK. Available at (2017).

  83. 83.

    Freeman, E., Skinner, L., Waelbroeck, C. & Hodell, D. Radiocarbon evidence for enhanced respired carbon storage in the Atlantic at the Last Glacial Maximum. Nat. Commun. 7, 11998 (2016).

    ADS  CAS  Article  Google Scholar 

  84. 84.

    Rogerson, M., Rohling, E. J., Weaver, P. P. E. & Murray, J. W. Glacial to interglacial changes in the settling depth of the Mediterranean Outflow plume. Paleoceanography 20, PA3007 (2005).

    Article  Google Scholar 

  85. 85.

    Clark, P. U. et al. The last glacial maximum. Science 325, 710–714 (2009).

    ADS  CAS  Article  Google Scholar 

  86. 86.

    Stanford, J. D. et al. Sea-level probability for the last deglaciation: a statistical analysis of far-field records. Glob. Planet. Change 79, 193–203 (2011).

    ADS  Article  Google Scholar 

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We wish to thank Daniel Montluçon and Negar Haghipour for assistance with organic radiocarbon analyses, and Simon Crowhurst for down-core sediment XRF data. This work was made possible by a Marie Curie Actions postdoctoral fellowship to C.R.M and NERC support for cruise JC089 (NE/J00653X/1) to D.A.H. and L.S.

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C.R.M. and T.I.E. conceptualized the project. L.S., D.A.H. and T.I.E. were among the principal investigators on cruise JC089. C.R.M., B.A., A.M.-G., G.H.H. and T.I.E. supervised and interpreted the radiocarbon analyses conducted by P.W. and C.M. D.A.H. and W.K. supervised X-ray fluorescence and lead-210 analyses, respectively. C.R.M., P.W., and B.A. wrote the manuscript with substantial contributions from C.M., L.S., D.A.H. and T.I.E. All authors reviewed the manuscript before submission.

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Correspondence to Clayton R. Magill.

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Magill, C.R., Ausín, B., Wenk, P. et al. Transient hydrodynamic effects influence organic carbon signatures in marine sediments. Nat Commun 9, 4690 (2018).

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