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            <gmx:Anchor xlink:href="http://lod.bco-dmo.org/id/dataset/772645.rdf" xlink:actuate="onRequest">Dissolved Ba, Cd, Cu, Ga, Mn, Ni, and V concentrations and Ba isotope concentrations from the US GEOTRACES Arctic Expedition (GN01, HLY1502) from August to October 2015</gmx:Anchor>
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            <gco:CharacterString>Cite this dataset as: Shiller, A. M., Horner, T. J. (2021) Dissolved Ba, Cd, Cu, Ga, Mn, Ni, and V concentrations and Ba isotope concentrations from the US GEOTRACES Arctic Expedition (GN01, HLY1502) from August to October 2015. Biological and Chemical Oceanography Data Management Office (BCO-DMO). (Version 3) Version Date 2021-07-01 [if applicable, indicate subset used]. doi:10.26008/1912/bco-dmo.772645.3 [access date]</gco:CharacterString>
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        <gco:CharacterString>Dissolved Ba, Cd, Cu, Ga, Mn, Ni, and V concentration data and Ba isotopes from the US GEOTRACES Arctic Expedition (GN01, HLY1502), August - October, 2015 Dataset Description: &amp;lt;p&amp;gt;This dataset includes dissolved Ba, Cd, Cu, Ga, Mn, Ni, and V concentration data from the US GEOTRACES Arctic Expedition (GN01, HLY1502)/ This dataset also includes selected stable Ba isotope analyses. Note Co-PI Tristan Horner and related award,&amp;amp;nbsp;OCE-1736949, supported the Ba isotope&amp;amp;nbsp;analyses only.&amp;amp;nbsp;&amp;lt;/p&amp;gt; Methods and Sampling: &amp;lt;p&amp;gt;Clean seawater samples were collected using a GEOTRACES CTD referred to as GT-C/12L GoFlo. For more information, see the cruise report. Additional near surface samples were collected using either a small boat or through the ice using Teflon coated Tygon tubing and a trace metal clean pump (IWAKI, model WMD-30LFY-115).&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;Water samples were filtered through pre-cleaned, 0.2 µm Pall Acropak Supor filter capsules as described elsewhere (e.g., Cutter et al., 2012; Hatta et al., 2015). Filtered water was collected in 125 mL HDPE bottles (Nalgene) that had been precleaned by soaking in hot 1.2 M HCl (reagent grade) for at least 8 h with subsequent thorough rinsing with ultrapure distilled deionized water (Barnstead E-pure). Small boat and under-ice samples were first collected into large acid-washed carboys and subsampled into 125 mL bottles.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved Ga&amp;lt;/strong&amp;gt; was determined by isotope dilution ICP-MS using a ThermoFisher Element 2 operated in low resolution. Samples were concentrated using Mg(OH)₂ co-precipitation (e.g., Shiller &amp;amp;amp; Bairamadgi, 2006; Zurbrick et al., 2012). Briefly, in this technique, a small addition (~70 µL) of clean aqueous ammonia is added to the acidified seawater sample (~7.5 mL) which precipitates a fraction of the dissolved magnesium as the hydroxide, which in turn, scavenges the gallium from solution. An enriched isotope spike of known concentration was prepared using purified enriched ⁷¹Ga (99.8%), obtained from Oak Ridge National Laboratories.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;Because there is a significant interference of doubly charged ¹³⁸Ba with ⁶⁹Ga, the precipitate was washed three times with a solution of high purity 0.1% NH₄OH to minimize residual Ba. The precipitate was then dissolved in 550 mL ultrapure 3% HNO3 (Seastar Chemicals, Baseline) and analyzed in low resolution using a ThermoFinnigan Element 2 High Resolution Inductively Coupled Plasma Mass Spectrometer (HR-ICP-MS). Isotopes monitored on the ICP-MS were ⁶⁹Ga, ⁷¹Ga, and ¹³⁸Ba. A slight correction for residual Ba was made based on the ratio of responses at masses 69 and 138 to a Ba standard solution. Because the residual salt content varied from sample to sample, it was not possible to matrix-match the Ba correction standard. However, typically, this correction affected the final result by &amp;amp;lt; 2.5 pmol/kg; where higher Ba corrections were noted, the sample was reprecipitated and re-analyzed because of concerns about the accuracy of applying the Ba standard correction to samples of high salt content.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;The reagent blank contribution to the dissolved Ga analysis is typically 0.6 pmol/kg and the detection limit (based on 3 times the standard deviation of the blank) is 0.3 pmol/kg. Repeated runs of US GEOTRACES intercalibration samples (GS and GD), in-house reference solutions, and cast overlap samples suggest a precision of ± 4%; the limit of detection for Ga was 1.5 pmol/kg. Recovery of the method, as determined by repeated analysis of a spiked and unspiked seawater sample was 100 ± 7%.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved Ba&amp;lt;/strong&amp;gt; was measured using a ThermoFisher Element 2 Inductively Coupled Plasma Mass Spectrometer (ICP-MS) and the isotope dilution method as described by Jacquet et al. (2005). Aliquots (50 μL) of each sample were spiked with 25 μL of a ¹³⁵Ba-enriched solution (~170 nM) and then diluted 30-fold with 0.2 μm ultrapure filtered water. A sample of ~93% enriched ¹³⁵Ba was obtained from Oak Ridge National Laboratories for use as the enriched isotope spike. The ICP-MS was operated in low resolution and both ¹³⁵Ba and ¹³⁸Ba were determined. The samples were bracketed every 10 samples with a blank and the spike ¹³⁵Ba solution. The volumes of the spikes, samples and dilution water were accurately assessed by calibrating each pipette by weight. The reproducibility error of this method was estimated by comparing samples collected at the same depths on different casts at the same station. For 12 pairs of these replicate samples, the average absolute deviation of 0.7 nmol/kg or typically 1.5%. Repeated runs of runs of US GEOTRACES intercalibration samples and in-house reference solutions suggest a similar precision; the limit of detection for barium was 0.7 nmol/kg. Our precision is similar to that reported by other labs for Ba (e.g., Jacquet et al., 2005).&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved δ138Ba (Ba isotopes) &amp;lt;/strong&amp;gt;were measured at WHOI (Woods Hole Oceanographic Institution) using a ThermoFinnigan Neptune multicollector ICP-MS. Five mL aliquots were prepared by first spiking with a known quantity of 135Ba–136Ba double spike to achieve a spike:sample ratio of between 1-2. Following equilibration with the spike, samples were co-precipitated with CaCO₃ by dropwise addition of 350 μL of 1 M Na₂CO₃ solution. The precipitate was dissolved and reconstituted in 2 M HCl for ion-exchange chromatography. Chromatography protocols are detailed in Horner et al. (2015). Following purification, samples were again reconstituted in 2 % nitric acid and analyzed for δ138Ba at the WHOI Plasma Facility. Samples were aspirated at 140 μL/min, desolvated using an Aridus II, and introduced into the instrument using 1 L/min Ar carrier gas containing 2-5 mL/min admixed nitrogen. Samples are measured in low-resolution mode relative to concentration- and spike:sample-matched aliquots of NIST SRM 3108 (≡0 ‰), measured after every fourth sample. Samples are themselves analyzed between 2-4 times, and Ba-isotopic compositions calculated using an iterative, geometric-based deconvolution of spike-sample mixtures.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved V, Ni, Cu, Cd, and Mn&amp;lt;/strong&amp;gt; were determined using 14 mL of sample that was spiked with a mixture of isotopically-enriched Ni-62, Cu-65, Cd-111, and V-50 (Oak Ridge Nat’l. Labs). Each spike was &amp;amp;gt;90% enriched in the listed isotopes, except for V-50 (0.25% natural abundance) which was 44.3% enriched. The sample/spike ratio was chosen so as to have the analytical isotope ratios approximately the geometric mean of the natural and enriched spike isotope ratios. Samples were then extracted/pre-concentrated using a SeaFAST system (Elemental Scientific, Inc.) operated in offline mode. A 10-mL sample loop was employed and the elution volume was 750 µL. A similar online SeaFAST extraction procedure is described by Hathorne et al. (2012) for rare earth elements. The extracted samples were subsequently analyzed using a Thermo-Fisher high resolution ICP-MS with an Apex-FAST high efficiency sample introduction system with Spiro desolvator (Elemental Scientific, Inc.). All elements were determined in medium resolution, except Cd which was determined in low resolution. For Mn-55 the V, Ni, and Cu spikes served as internal standards. Calibration was checked by analysis of a large-volume composite North Atlantic surface seawater sample. Spiked (with a natural isotopic abundance elemental spike) and unspiked aliquots of this sample were analyzed twice in each analytical run. Ti-47 and Cr-52 were monitored to correct for any Ti-50 or Cr-50 isobaric interference on V-50; the correction was generally &amp;amp;lt;1%. Likewise, Mo-98 was monitored to correct for MoO⁺ interference on Cd isotopes.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;The reproducibility error of this method was estimated by comparing samples collected at the same depths on different casts at the same station as well as by repeated measurement of GEOTRACES reference waters and an in-house standard. Recovery of the method was determined by repeated analysis of a spiked and unspiked seawater. The recoveries, precisions, and comparisons to reference waters are shown in Table 1 (see Supplemental Files).&amp;lt;/p&amp;gt;</gco:CharacterString>
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        <gmx:Anchor xlink:href="http://lod.bco-dmo.org/id/award/770289.rdf" xlink:title="OCE-1736949" xlink:actuate="onRequest">Funding provided by NSF Division of Ocean Sciences (NSF OCE) Award Number: OCE-1736949 Award URL: https://www.nsf.gov/awardsearch/show-award?AWD_ID=1736949</gmx:Anchor>
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        <gmx:Anchor xlink:href="http://lod.bco-dmo.org/id/award/772640.rdf" xlink:title="OCE-1436312" xlink:actuate="onRequest">Funding provided by NSF Division of Ocean Sciences (NSF OCE) Award Number: OCE-1436312 Award URL: https://www.nsf.gov/awardsearch/show-award?AWD_ID=1436312</gmx:Anchor>
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In pursuit of its goal &quot;to identify processes and quantify fluxes that control the distributions of key trace elements and isotopes in the ocean, and to establish the sensitivity of these distributions to changing environmental conditions&quot;, in 2015 the International GEOTRACES Program will embark on several years of research in the Arctic Ocean. In a region where climate warming and general environmental change are occurring at amazing speed, research such as this is important for understanding the current state of Arctic Ocean geochemistry and for developing predictive capability as the regional ecosystem continues to warm and influence global oceanic and climatic conditions. The three investigators funded on this award, will manage a large team of U.S.scientists who will compete through the regular NSF proposal process to contribute their own unique expertise in marine trace metal, isotopic, and carbon cycle geochemistry to the U.S. effort. The three managers will be responsible for arranging and overseeing at-sea technical services such as hydrographic measurements, nutrient analyses, and around-the-clock management of on-deck sampling activites upon which all participants depend, and for organizing all pre- and post-cruise technical support and scientific meetings. The management team will also lead educational outreach activities for the general public in Nome and Barrow, Alaska, to explain the significance of the study to these communities and to learn from residents' insights on observed changes in the marine system. The project itself will provide for the support and training of a number of pre-doctoral students and post-doctoral researchers. Inasmuch as the Arctic Ocean is an epicenter of global climate change, findings of this study are expected to advance present capability to forecast changes in regional and globlal ecosystem and climate system functioning.&lt;/p&gt;
&lt;p&gt;As the United States' contribution to the International GEOTRACES Arctic Ocean initiative, this project will be part of an ongoing multi-national effort to further scientific knowledge about trace elements and isotopes in the world ocean. This U.S. expedition will focus on the western Arctic Ocean in the boreal summer of 2015. The scientific team will consist of the management team funded through this award plus a team of scientists from U.S. academic institutions who will have successfully competed for and received NSF funds for specific science projects in time to participate in the final stages of cruise planning. The cruise track segments will include the Bering Strait, Chukchi shelf, and the deep Canada Basin. Several stations will be designated as so-called super stations for intense study of atmospheric aerosols, sea ice, and sediment chemistry as well as water-column processes. In total, the set of coordinated international expeditions will involve the deployment of ice-capable research ships from 6 nations (US, Canada, Germany, Sweden, UK, and Russia) across different parts of the Arctic Ocean, and application of state-of-the-art methods to unravel the complex dynamics of trace metals and isotopes that are important as oceanographic and biogeochemical tracers in the sea.&lt;/p&gt;</gco:CharacterString>
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                  <gmx:Anchor xlink:href="http://lod.bco-dmo.org/id/project/772641.rdf" xlink:title="Project" xlink:actuate="onRequest">GEOTRACES Arctic Section: Methane, vanadium, barium, and gallium as process indicators in the Arctic Ocean</gmx:Anchor>
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                            <gco:CharacterString>&lt;p&gt;&lt;em&gt;NSF Award Abstract:&lt;/em&gt;&lt;br /&gt;
In this project, an investigator participating in the 2015 U.S. GEOTRACES Arctic expedition will make measurements of methane, a dissolved trace gas, as well as the dissolved trace elements of gallium, barium, and vanadium in the Arctic Ocean. In common with other multinational initiatives in the International GEOTRACES Program, the goals of the U.S. Arctic expedition are to identify processes and quantify fluxes that control the distributions of key trace elements and isotopes in the ocean, and to establish the sensitivity of these distributions to changing environmental conditions. Some trace elements are essential to life, others are known biological toxins, and still others are important because they can be used as tracers of a variety of physical, chemical, and biological processes in the sea. The trace elements and gas measured as part of this project will be used as tracers for a variety of processes such as river and atmospheric inputs to the Arctic Ocean, as well as circulation in the region. The knowledge and experience gained from this project will be incorporated into courses in oceanography and marine chemistry, as well as be shared through public outreach activities. The project will support the scientific training of a graduate student.&lt;/p&gt;
&lt;p&gt;The tracers to be measured as part of this study, methane, gallium, barium, and vanadium, will provide important information about oceanic circulation and water inputs to the Arctic. Gallium is likely to prove a sensitive tracer for Atlantic versus Pacific water components in the western Arctic Ocean, an issue of interest in circulation studies and also relevant to projections of the stability of methane hydrates on the Arctic shelves. Barium is of interest because it has been shown to be an indicator of fluvial inputs and contributions to the halocline. This is pertinent to understanding upper ocean circulation in the Arctic as well as to freshwater contributions to the Atlantic Meridional Overturning Circulation. For vanadium, the large proportion of shelf area in the Arctic makes this an ideal region to examine whether shelf sediment uptake determines surface ocean vanadium depletion. For methane, Arctic waters are a significant source of this Greenhouse Gas to the atmosphere and global change is likely exacerbating its release. Determination of the methane distribution will therefore be of interest in and of itself, although it is also a potentially valuable indicator of interactions with the shelf as well as of river inputs. Overall, results from this study will lead to an increased understanding of key ocean biogeochemical and physical processes including cross margin exchange of materials, sources of water in the Arctic Ocean, and fluxes of methane to the atmosphere.&lt;/p&gt;</gco:CharacterString>
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                <gco:Decimal>-179.8082</gco:Decimal>
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                <gco:Decimal>179.5926</gco:Decimal>
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                <gco:Decimal>60.165</gco:Decimal>
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	Name: Station_ID
	Units: unitless
	Description: &lt;p&gt;Station number&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833732.rdf
	Name: Start_Date_UTC
	Units: unitless
	Description: &lt;p&gt;Start date (UTC); format: DD/MM/YYYY&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833733.rdf
	Name: Start_Time_UTC
	Units: unitless
	Description: &lt;p&gt;Start time (UTC); format: hhmm&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833734.rdf
	Name: Start_ISO_DateTime_UTC
	Units: unitless
	Description: &lt;p&gt;Date and time (UTC) at start of event; format: YYYY-MM-DDThh:mmZ&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833735.rdf
	Name: End_Date_UTC
	Units: unitless
	Description: &lt;p&gt;End date (UTC); format: DD/MM/YYYY&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833736.rdf
	Name: End_Time_UTC
	Units: unitless
	Description: &lt;p&gt;End time (UTC); format: hhmm&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833737.rdf
	Name: Start_Latitude
	Units: degrees North
	Description: &lt;p&gt;Latitude at start of sample collection&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833738.rdf
	Name: Start_Longitude
	Units: degrees East
	Description: &lt;p&gt;Longitude at start of sample collection&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833739.rdf
	Name: End_Latitude
	Units: degrees North
	Description: &lt;p&gt;Latitude at end of sample collection&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833740.rdf
	Name: End_Longitude
	Units: degrees East
	Description: &lt;p&gt;Longitude at end of sample collection&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833741.rdf
	Name: Event_ID
	Units: unitless
	Description: &lt;p&gt;Event number&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833743.rdf
	Name: Sample_ID
	Units: unitless
	Description: &lt;p&gt;GEOTRACES sample number&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833744.rdf
	Name: Sample_Depth
	Units: meters (m)
	Description: &lt;p&gt;Sample depth&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833745.rdf
	Name: Ba_138_134_D_DELTA_BOTTLE_gorel8
	Units: per mil
	Description: &lt;p&gt;Atom ratio of dissolved Ba isotopes expressed in conventional DELTA notation referenced to {NIST 3104a}; from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833746.rdf
	Name: SD1_Ba_138_134_D_DELTA_BOTTLE_gorel8
	Units: per mil
	Description: &lt;p&gt;One standard deviaton of Ba_138_134_D_DELTA_BOTTLE_gorel8&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833747.rdf
	Name: Flag_Ba_138_134_D_DELTA_BOTTLE_gorel8
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ba_138_134_D_DELTA_BOTTLE_gorel8&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833748.rdf
	Name: Ba_138_134_D_DELTA_BOAT_PUMP_qgmo1e
	Units: per mil
	Description: &lt;p&gt;Atom ratio of dissolved Ba isotopes expressed in conventional DELTA notation referenced to {NIST 3104a}; from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833749.rdf
	Name: SD1_Ba_138_134_D_DELTA_BOAT_PUMP_qgmo1e
	Units: per mil
	Description: &lt;p&gt;One standard deviaton of Ba_138_134_D_DELTA_BOAT_PUMP_qgmo1e&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833750.rdf
	Name: Flag_Ba_138_134_D_DELTA_BOAT_PUMP_qgmo1e
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ba_138_134_D_DELTA_BOAT_PUMP_qgmo1e&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833751.rdf
	Name: Ba_138_134_D_DELTA_SUBICE_PUMP_xjmpgx
	Units: per mil
	Description: &lt;p&gt;Atom ratio of dissolved Ba isotopes expressed in conventional DELTA notation referenced to {NIST 3104a}; from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833752.rdf
	Name: SD1_Ba_138_134_D_DELTA_SUBICE_PUMP_xjmpgx
	Units: per mil
	Description: &lt;p&gt;One standard deviaton of Ba_138_134_D_DELTA_SUBICE_PUMP_xjmpgx&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833753.rdf
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	Description: &lt;p&gt;Quality flag for Ba_138_134_D_DELTA_SUBICE_PUMP_xjmpgx&lt;/p&gt; 
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	Name: Ba_D_CONC_BOTTLE_gaggba
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved barium concentration from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833755.rdf
	Name: SD1_Ba_D_CONC_BOTTLE_gaggba
	Units: nanomoles per kilogram (nmol/kg)
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	Name: Ba_D_CONC_BOAT_PUMP_s9e7xv
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved barium concentration from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833758.rdf
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	Units: nanomoles per kilogram (nmol/kg)
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	Description: &lt;p&gt;Quality flag for Ba_D_CONC_BOAT_PUMP_s9e7xv&lt;/p&gt; 
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	Name: Ba_D_CONC_SUBICE_PUMP_d6phfd
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved barium concentration from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833761.rdf
	Name: SD1_Ba_D_CONC_SUBICE_PUMP_d6phfd
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ba_D_CONC_SUBICE_PUMP_d6phfd&lt;/p&gt; 
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	Name: Flag_Ba_D_CONC_SUBICE_PUMP_d6phfd
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	Description: &lt;p&gt;Quality flag for Ba_D_CONC_SUBICE_PUMP_d6phfd&lt;/p&gt; 
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	Name: Cd_D_CONC_BOTTLE_wikkhy
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved cadmium from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833764.rdf
	Name: SD1_Cd_D_CONC_BOTTLE_wikkhy
	Units: nanomoles per kilogram (nmol/kg)
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	Name: Flag_Cd_D_CONC_BOTTLE_wikkhy
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cd_D_CONC_BOTTLE_wikkhy&lt;/p&gt; 
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	Name: Cd_D_CONC_BOAT_PUMP_jz0rob
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved cadmium from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833767.rdf
	Name: SD1_Cd_D_CONC_BOAT_PUMP_jz0rob
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Cd_D_CONC_BOAT_PUMP_jz0rob&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833768.rdf
	Name: Flag_Cd_D_CONC_BOAT_PUMP_jz0rob
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cd_D_CONC_BOAT_PUMP_jz0rob&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833769.rdf
	Name: Cd_D_CONC_SUBICE_PUMP_gorkxq
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved cadmium from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833770.rdf
	Name: SD1_Cd_D_CONC_SUBICE_PUMP_gorkxq
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Cd_D_CONC_SUBICE_PUMP_gorkxq&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833771.rdf
	Name: Flag_Cd_D_CONC_SUBICE_PUMP_gorkxq
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cd_D_CONC_SUBICE_PUMP_gorkxq&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833772.rdf
	Name: Cu_D_CONC_BOTTLE_tq3sck
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved copper from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833773.rdf
	Name: SD1_Cu_D_CONC_BOTTLE_tq3sck
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Cu_D_CONC_BOTTLE_tq3sck&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833774.rdf
	Name: Flag_Cu_D_CONC_BOTTLE_tq3sck
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cu_D_CONC_BOTTLE_tq3sck&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833775.rdf
	Name: Cu_D_CONC_SUBICE_PUMP_detas0
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved copper from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833776.rdf
	Name: Cu_D_CONC_BOAT_PUMP_6crw16
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved copper from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833777.rdf
	Name: SD1_Cu_D_CONC_SUBICE_PUMP_detas0
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviation of Cu_D_CONC_SUBICE_PUMP_detas0&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833778.rdf
	Name: SD1_Cu_D_CONC_BOAT_PUMP_6crw16
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviation of Cu_D_CONC_BOAT_PUMP_6crw16&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833779.rdf
	Name: Flag_Cu_D_CONC_SUBICE_PUMP_detas0
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cu_D_CONC_SUBICE_PUMP_detas0&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833780.rdf
	Name: Flag_Cu_D_CONC_BOAT_PUMP_6crw16
	Units: unitless
	Description: &lt;p&gt;Quality flag for Cu_D_CONC_BOAT_PUMP_6crw16&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833781.rdf
	Name: Ga_D_CONC_BOTTLE_1mgxwx
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;Dissolved gallium concentration from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833782.rdf
	Name: SD1_Ga_D_CONC_BOTTLE_1mgxwx
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ga_D_CONC_BOTTLE_1mgxwx&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833783.rdf
	Name: Flag_Ga_D_CONC_BOTTLE_1mgxwx
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ga_D_CONC_BOTTLE_1mgxwx&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833784.rdf
	Name: Ga_D_CONC_BOAT_PUMP_yl8lnv
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;Dissolved gallium concentration from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833785.rdf
	Name: SD1_Ga_D_CONC_BOAT_PUMP_yl8lnv
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ga_D_CONC_BOAT_PUMP_yl8lnv&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833786.rdf
	Name: Flag_Ga_D_CONC_BOAT_PUMP_yl8lnv
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ga_D_CONC_BOAT_PUMP_yl8lnv&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833787.rdf
	Name: Ga_D_CONC_SUBICE_PUMP_xsfaz3
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;Dissolved gallium concentration from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833788.rdf
	Name: SD1_Ga_D_CONC_SUBICE_PUMP_xsfaz3
	Units: picomoles per kilogram (pmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ga_D_CONC_SUBICE_PUMP_xsfaz3&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833789.rdf
	Name: Flag_Ga_D_CONC_SUBICE_PUMP_xsfaz3
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ga_D_CONC_SUBICE_PUMP_xsfaz3&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833790.rdf
	Name: Mn_D_CONC_BOTTLE_itu1qi
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved manganese from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833791.rdf
	Name: SD1_Mn_D_CONC_BOTTLE_itu1qi
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Mn_D_CONC_BOTTLE_itu1qi&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833792.rdf
	Name: Flag_Mn_D_CONC_BOTTLE_itu1qi
	Units: unitless
	Description: &lt;p&gt;Quality flag for Mn_D_CONC_BOTTLE_itu1qi&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833793.rdf
	Name: Mn_D_CONC_BOAT_PUMP_tdgkvz
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved manganese from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833794.rdf
	Name: SD1_Mn_D_CONC_BOAT_PUMP_tdgkvz
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Mn_D_CONC_BOAT_PUMP_tdgkvz&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833795.rdf
	Name: Flag_Mn_D_CONC_BOAT_PUMP_tdgkvz
	Units: unitless
	Description: &lt;p&gt;Quality flag for Mn_D_CONC_BOAT_PUMP_tdgkvz&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833796.rdf
	Name: Mn_D_CONC_SUBICE_PUMP_md5sbr
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved manganese from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833797.rdf
	Name: SD1_Mn_D_CONC_SUBICE_PUMP_md5sbr
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Mn_D_CONC_SUBICE_PUMP_md5sbr&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833798.rdf
	Name: Flag_Mn_D_CONC_SUBICE_PUMP_md5sbr
	Units: unitless
	Description: &lt;p&gt;Quality flag for Mn_D_CONC_SUBICE_PUMP_md5sbr&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833799.rdf
	Name: Ni_D_CONC_BOTTLE_tpaocv
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved nickel from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833800.rdf
	Name: SD1_Ni_D_CONC_BOTTLE_tpaocv
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ni_D_CONC_BOTTLE_tpaocv&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833801.rdf
	Name: Flag_Ni_D_CONC_BOTTLE_tpaocv
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ni_D_CONC_BOTTLE_tpaocv&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833802.rdf
	Name: Ni_D_CONC_BOAT_PUMP_jxf39e
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved nickel from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833803.rdf
	Name: SD1_Ni_D_CONC_BOAT_PUMP_jxf39e
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ni_D_CONC_BOAT_PUMP_jxf39e&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833804.rdf
	Name: Flag_Ni_D_CONC_BOAT_PUMP_jxf39e
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ni_D_CONC_BOAT_PUMP_jxf39e&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833805.rdf
	Name: Ni_D_CONC_SUBICE_PUMP_vmo4mu
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved nickel from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833806.rdf
	Name: SD1_Ni_D_CONC_SUBICE_PUMP_vmo4mu
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of Ni_D_CONC_SUBICE_PUMP_vmo4mu&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833807.rdf
	Name: Flag_Ni_D_CONC_SUBICE_PUMP_vmo4mu
	Units: unitless
	Description: &lt;p&gt;Quality flag for Ni_D_CONC_SUBICE_PUMP_vmo4mu&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833808.rdf
	Name: V_D_CONC_BOTTLE_y54tnw
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved vanadium from bottle samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833809.rdf
	Name: SD1_V_D_CONC_BOTTLE_y54tnw
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of V_D_CONC_BOTTLE_y54tnw&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833810.rdf
	Name: Flag_V_D_CONC_BOTTLE_y54tnw
	Units: unitless
	Description: &lt;p&gt;Quality flag for V_D_CONC_BOTTLE_y54tnw&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833811.rdf
	Name: V_D_CONC_BOAT_PUMP_6ejtax
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved vanadium from boat pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833812.rdf
	Name: SD1_V_D_CONC_BOAT_PUMP_6ejtax
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of V_D_CONC_BOAT_PUMP_6ejtax&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833813.rdf
	Name: Flag_V_D_CONC_BOAT_PUMP_6ejtax
	Units: unitless
	Description: &lt;p&gt;Quality flag for V_D_CONC_BOAT_PUMP_6ejtax&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833814.rdf
	Name: V_D_CONC_SUBICE_PUMP_o0swtf
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;Dissolved vanadium from sub-ice pump samples&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833815.rdf
	Name: SD1_V_D_CONC_SUBICE_PUMP_o0swtf
	Units: nanomoles per kilogram (nmol/kg)
	Description: &lt;p&gt;One standard deviaton of V_D_CONC_SUBICE_PUMP_o0swtf&lt;/p&gt; 
http://lod.bco-dmo.org/id/dataset-parameter/833816.rdf
	Name: Flag_V_D_CONC_SUBICE_PUMP_o0swtf
	Units: unitless
	Description: &lt;p&gt;Quality flag for V_D_CONC_SUBICE_PUMP_o0swtf&lt;/p&gt; 
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&amp;lt;p&amp;gt;Water samples were filtered through pre-cleaned, 0.2 µm Pall Acropak Supor filter capsules as described elsewhere (e.g., Cutter et al., 2012; Hatta et al., 2015). Filtered water was collected in 125 mL HDPE bottles (Nalgene) that had been precleaned by soaking in hot 1.2 M HCl (reagent grade) for at least 8 h with subsequent thorough rinsing with ultrapure distilled deionized water (Barnstead E-pure). Small boat and under-ice samples were first collected into large acid-washed carboys and subsampled into 125 mL bottles.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved Ga&amp;lt;/strong&amp;gt; was determined by isotope dilution ICP-MS using a ThermoFisher Element 2 operated in low resolution. Samples were concentrated using Mg(OH)₂ co-precipitation (e.g., Shiller &amp;amp;amp; Bairamadgi, 2006; Zurbrick et al., 2012). Briefly, in this technique, a small addition (~70 µL) of clean aqueous ammonia is added to the acidified seawater sample (~7.5 mL) which precipitates a fraction of the dissolved magnesium as the hydroxide, which in turn, scavenges the gallium from solution. An enriched isotope spike of known concentration was prepared using purified enriched ⁷¹Ga (99.8%), obtained from Oak Ridge National Laboratories.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;Because there is a significant interference of doubly charged ¹³⁸Ba with ⁶⁹Ga, the precipitate was washed three times with a solution of high purity 0.1% NH₄OH to minimize residual Ba. The precipitate was then dissolved in 550 mL ultrapure 3% HNO3 (Seastar Chemicals, Baseline) and analyzed in low resolution using a ThermoFinnigan Element 2 High Resolution Inductively Coupled Plasma Mass Spectrometer (HR-ICP-MS). Isotopes monitored on the ICP-MS were ⁶⁹Ga, ⁷¹Ga, and ¹³⁸Ba. A slight correction for residual Ba was made based on the ratio of responses at masses 69 and 138 to a Ba standard solution. Because the residual salt content varied from sample to sample, it was not possible to matrix-match the Ba correction standard. However, typically, this correction affected the final result by &amp;amp;lt; 2.5 pmol/kg; where higher Ba corrections were noted, the sample was reprecipitated and re-analyzed because of concerns about the accuracy of applying the Ba standard correction to samples of high salt content.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;The reagent blank contribution to the dissolved Ga analysis is typically 0.6 pmol/kg and the detection limit (based on 3 times the standard deviation of the blank) is 0.3 pmol/kg. Repeated runs of US GEOTRACES intercalibration samples (GS and GD), in-house reference solutions, and cast overlap samples suggest a precision of ± 4%; the limit of detection for Ga was 1.5 pmol/kg. Recovery of the method, as determined by repeated analysis of a spiked and unspiked seawater sample was 100 ± 7%.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved Ba&amp;lt;/strong&amp;gt; was measured using a ThermoFisher Element 2 Inductively Coupled Plasma Mass Spectrometer (ICP-MS) and the isotope dilution method as described by Jacquet et al. (2005). Aliquots (50 μL) of each sample were spiked with 25 μL of a ¹³⁵Ba-enriched solution (~170 nM) and then diluted 30-fold with 0.2 μm ultrapure filtered water. A sample of ~93% enriched ¹³⁵Ba was obtained from Oak Ridge National Laboratories for use as the enriched isotope spike. The ICP-MS was operated in low resolution and both ¹³⁵Ba and ¹³⁸Ba were determined. The samples were bracketed every 10 samples with a blank and the spike ¹³⁵Ba solution. The volumes of the spikes, samples and dilution water were accurately assessed by calibrating each pipette by weight. The reproducibility error of this method was estimated by comparing samples collected at the same depths on different casts at the same station. For 12 pairs of these replicate samples, the average absolute deviation of 0.7 nmol/kg or typically 1.5%. Repeated runs of runs of US GEOTRACES intercalibration samples and in-house reference solutions suggest a similar precision; the limit of detection for barium was 0.7 nmol/kg. Our precision is similar to that reported by other labs for Ba (e.g., Jacquet et al., 2005).&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved δ138Ba (Ba isotopes) &amp;lt;/strong&amp;gt;were measured at WHOI (Woods Hole Oceanographic Institution) using a ThermoFinnigan Neptune multicollector ICP-MS. Five mL aliquots were prepared by first spiking with a known quantity of 135Ba–136Ba double spike to achieve a spike:sample ratio of between 1-2. Following equilibration with the spike, samples were co-precipitated with CaCO₃ by dropwise addition of 350 μL of 1 M Na₂CO₃ solution. The precipitate was dissolved and reconstituted in 2 M HCl for ion-exchange chromatography. Chromatography protocols are detailed in Horner et al. (2015). Following purification, samples were again reconstituted in 2 % nitric acid and analyzed for δ138Ba at the WHOI Plasma Facility. Samples were aspirated at 140 μL/min, desolvated using an Aridus II, and introduced into the instrument using 1 L/min Ar carrier gas containing 2-5 mL/min admixed nitrogen. Samples are measured in low-resolution mode relative to concentration- and spike:sample-matched aliquots of NIST SRM 3108 (≡0 ‰), measured after every fourth sample. Samples are themselves analyzed between 2-4 times, and Ba-isotopic compositions calculated using an iterative, geometric-based deconvolution of spike-sample mixtures.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;&amp;lt;strong&amp;gt;Dissolved V, Ni, Cu, Cd, and Mn&amp;lt;/strong&amp;gt; were determined using 14 mL of sample that was spiked with a mixture of isotopically-enriched Ni-62, Cu-65, Cd-111, and V-50 (Oak Ridge Nat’l. Labs). Each spike was &amp;amp;gt;90% enriched in the listed isotopes, except for V-50 (0.25% natural abundance) which was 44.3% enriched. The sample/spike ratio was chosen so as to have the analytical isotope ratios approximately the geometric mean of the natural and enriched spike isotope ratios. Samples were then extracted/pre-concentrated using a SeaFAST system (Elemental Scientific, Inc.) operated in offline mode. A 10-mL sample loop was employed and the elution volume was 750 µL. A similar online SeaFAST extraction procedure is described by Hathorne et al. (2012) for rare earth elements. The extracted samples were subsequently analyzed using a Thermo-Fisher high resolution ICP-MS with an Apex-FAST high efficiency sample introduction system with Spiro desolvator (Elemental Scientific, Inc.). All elements were determined in medium resolution, except Cd which was determined in low resolution. For Mn-55 the V, Ni, and Cu spikes served as internal standards. Calibration was checked by analysis of a large-volume composite North Atlantic surface seawater sample. Spiked (with a natural isotopic abundance elemental spike) and unspiked aliquots of this sample were analyzed twice in each analytical run. Ti-47 and Cr-52 were monitored to correct for any Ti-50 or Cr-50 isobaric interference on V-50; the correction was generally &amp;amp;lt;1%. Likewise, Mo-98 was monitored to correct for MoO⁺ interference on Cd isotopes.&amp;lt;/p&amp;gt;

&amp;lt;p&amp;gt;The reproducibility error of this method was estimated by comparing samples collected at the same depths on different casts at the same station as well as by repeated measurement of GEOTRACES reference waters and an in-house standard. Recovery of the method was determined by repeated analysis of a spiked and unspiked seawater. The recoveries, precisions, and comparisons to reference waters are shown in Table 1 (see Supplemental Files).&amp;lt;/p&amp;gt;</gco:CharacterString>
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&amp;lt;p&amp;gt;For intercalibration procedures, refer to the dataset's&amp;amp;nbsp;&amp;lt;a href=&amp;quot;https://datadocs.bco-dmo.org/docs/302/geotraces/GEOTRACES_ARCTIC/shiller/data_docs/0000-0002-2068-7909-HLY1502-multiple-param-intercal-report.pdf&amp;quot; target=&amp;quot;_blank&amp;quot;&amp;gt;GEOTRACES Intercalibration Report&amp;lt;/a&amp;gt; (PDF).&amp;lt;/p&amp;gt;

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