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| "author": null, | | "author": null, |
| "author_email": null, | | "author_email": null, |
| "code": "7b.b.qb", | | "code": "7b.b.qb", |
| "contributor": "NIOZ Royal Netherlands Institute for Sea Research", | | "contributor": "NIOZ Royal Netherlands Institute for Sea Research", |
| "creator_user_id": "f9495ed6-c69a-4db0-a737-b41c60f2a31d", | | "creator_user_id": "f9495ed6-c69a-4db0-a737-b41c60f2a31d", |
| "creators": "[{\"firstname\":\"Loes | | "creators": "[{\"firstname\":\"Loes |
| J.A.\",\"lastname\":\"Gerringa\",\"affiliation\":\"Royal Netherlands | | J.A.\",\"lastname\":\"Gerringa\",\"affiliation\":\"Royal Netherlands |
| Institute for Sea | | Institute for Sea |
| stname\":\"Martha\",\"lastname\":\"Gledhill\",\"affiliation\":\"GEOMAR | | stname\":\"Martha\",\"lastname\":\"Gledhill\",\"affiliation\":\"GEOMAR |
| Helmholtz Centre for Ocean | | Helmholtz Centre for Ocean |
| laddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Luis | | laddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Luis |
| M.\",\"lastname\":\"Laglera\",\"affiliation\":\"FI-TRACE, Departamento | | M.\",\"lastname\":\"Laglera\",\"affiliation\":\"FI-TRACE, Departamento |
| de Qu??mica and ???Laboratori Interdisciplinari sobre Canvi | | de Qu??mica and ???Laboratori Interdisciplinari sobre Canvi |
| Clima??tic, Universidad de las Islas Baleares | | Clima??tic, Universidad de las Islas Baleares |
| tname\":\"Indah\",\"lastname\":\"Ardiningsih\",\"affiliation\":\"Royal | | tname\":\"Indah\",\"lastname\":\"Ardiningsih\",\"affiliation\":\"Royal |
| Netherlands Institute for Sea | | Netherlands Institute for Sea |
| stname\":\"Niels\",\"lastname\":\"Muntjewerf\",\"affiliation\":\"Royal | | stname\":\"Niels\",\"lastname\":\"Muntjewerf\",\"affiliation\":\"Royal |
| Netherlands Institute for Sea | | Netherlands Institute for Sea |
| :\"\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", | | :\"\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", |
| n | "dataset_persistent_id": "DOI:10.33591/nioz/7b.b.qb", | n | "dataset_persistent_id": "DOI:10.25850/nioz/7b.b.qb", |
| "deposit_date": "2021-03-10", | | "deposit_date": "2021-03-10", |
| "depositor": "loes gerringa", | | "depositor": "loes gerringa", |
| "distribution_date": "2021-03-10", | | "distribution_date": "2021-03-10", |
| "distributor": "Research Data Management(NIOZ Royal Netherlands | | "distributor": "Research Data Management(NIOZ Royal Netherlands |
| Institute for Sea Research)", | | Institute for Sea Research)", |
| "doi_date_published": "2021-08-10", | | "doi_date_published": "2021-08-10", |
| "funding_references": "[{\"name\":\"Indonesia endowment fund for | | "funding_references": "[{\"name\":\"Indonesia endowment fund for |
| education (LPDP, for | | education (LPDP, for |
| IA)\",\"awardnumber\":\"\",\"awardtitle\":\"\"},{\"name\":\"MICINN | | IA)\",\"awardnumber\":\"\",\"awardtitle\":\"\"},{\"name\":\"MICINN |
| (for | | (for |
| ML)\",\"awardnumber\":\"CTM2017-84763-C3-3-R\",\"awardtitle\":\"\"}]", | | ML)\",\"awardnumber\":\"CTM2017-84763-C3-3-R\",\"awardtitle\":\"\"}]", |
| "groups": [], | | "groups": [], |
| "id": "0ab943c9-25ba-4bf1-80d7-20cada0807bd", | | "id": "0ab943c9-25ba-4bf1-80d7-20cada0807bd", |
| "isopen": false, | | "isopen": false, |
| "license_title": null, | | "license_title": null, |
| "maintainer": null, | | "maintainer": null, |
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| "metadata_created": "2024-10-22T09:46:04.292696", | | "metadata_created": "2024-10-22T09:46:04.292696", |
| n | "metadata_modified": "2024-10-22T09:46:05.617928", | n | "metadata_modified": "2024-10-22T16:44:07.284771", |
| "name": "7bbqb", | | "name": "7bbqb", |
| n | "notes": "Competitive ligand exchange-adsorptive cathodic stripping | n | "notes": "Competitive ligand exchange\u2013adsorptive cathodic |
| voltammetry (CLE-AdCSV) is used to determine the conditional | | stripping voltammetry (CLE-AdCSV) is used to determine the conditional |
| concentration ([L]) and the conditional binding strength (logKcond) of | | concentration ([L]) and the conditional binding strength (logK^cond) |
| dissolved organic Fe-binding ligands, which together influence the | | of dissolved organic Fe-binding ligands, which together influence the |
| solubility of Fe in seawater. Electrochemical applications of Fe | | solubility of Fe in seawater. Electrochemical applications of Fe |
| speciation measurements vary predominantly in the choice of the added | | speciation measurements vary predominantly in the choice of the added |
| competing ligand. Although different applications show the same | | competing ligand. Although different applications show the same |
| n | trends, [L] and logKcond differ between the applications. In this | n | trends, [L] and logK^cond differ between the applications. In this |
| study, binding of two added ligands in three different common | | study, binding of two added ligands in three different common |
| applications to three known types of natural binding ligands are | | applications to three known types of natural binding ligands are |
| n | compared. The applications are: 1) Salicylaldoxime (SA) at 25 micromol | n | compared. The applications are: 1) Salicylaldoxime (SA) at 25\u00b5M |
| (SA25) and short waiting time, 2) SA at 5 micromol (SA5) and | | (SA25) and short waiting time, 2) SA at 5\u00b5M (SA5) and |
| 3)2-(2-thiazolylazo)-rho-cresol (TAC) at 10 micromol, the latter two | | 3)2-(2-thiazolylazo)-\u03c1-cresol (TAC) at 10 \u00b5M, the latter two |
| with overnight equilibration. The three applications were calibrated | | with overnight equilibration. The three applications were calibrated |
| under the same conditions, although having different pH values, | | under the same conditions, although having different pH values, |
| n | resulting in the detection window centers (D) DTAC > DSA25 >/= SA5 (as | n | resulting in the detection window centers (D) DTAC > DSA25 \u2265 SA5 |
| log D values with respect to Fe3+: 12.3>11.2>/= 11). \nFor the model | | (as log D values with respect to Fe3+: 12.3>11.2\u2265 11). \nFor the |
| ligands, there is no common trend in the results of logKcond. The | | model ligands, there is no common trend in the results of logK^cond. |
| values have a considerable spread, which indicates that the error in | | The values have a considerable spread, which indicates that the error |
| logKcond is large. The ligand concentrations of the non humic model | | in logK^cond is large. The ligand concentrations of the non humic |
| ligands are underestimated by TAC and overestimated by SA25 which we | | model ligands are underestimated by TAC and overestimated by SA25 |
| attribute to the lack of equilibrium between Fe-SA species in the SA25 | | which we attribute to the lack of equilibrium between Fe-SA species in |
| application. The application TAC more often underestimated the ligand | | the SA25 application. The application TAC more often underestimated |
| concentrations and Application the application SA5 was best in | | the ligand concentrations and Application the application SA5 was best |
| estimating over and under estimated the ligand concentration | | in estimating over and under estimated the ligand concentration |
| correctly. The trends between these model ligand concentrations were | | correctly. The trends between these model ligand concentrations were |
| similar for all three applications. The estimated ligand | | similar for all three applications. The estimated ligand |
| concentrations for the humic and fulvic acids differed approximately | | concentrations for the humic and fulvic acids differed approximately |
| by a factor 22 fold between TAC and SA5 and another factor of 2 | | by a factor 22 fold between TAC and SA5 and another factor of 2 |
| n | between SA5 and SA25.\nThe use of SA above 5 micromol suffers from the | n | between SA5 and SA25.\nThe use of SA above 5 \u00b5M suffers from the |
| formation of the species Fe(SA)x (x>1) that is not electro-active as | | formation of the species Fe(SA)x (x>1) that is not electro-active as |
| already suggested by Abualhaija and Van den Berg (2014). Moreover, we | | already suggested by Abualhaija and Van den Berg (2014). Moreover, we |
| found that the reaction between the electro-active and | | found that the reaction between the electro-active and |
| non-electro-active species is probably irreversible. This undermines | | non-electro-active species is probably irreversible. This undermines |
| the assumption of the CLE principle, causes overestimation of [L] and | | the assumption of the CLE principle, causes overestimation of [L] and |
| could result in a false distinction into more than one ligand | | could result in a false distinction into more than one ligand |
| group.\nFor future electrochemical work it is recommended to take the | | group.\nFor future electrochemical work it is recommended to take the |
| above limitations of the applications into account. Overall, the | | above limitations of the applications into account. Overall, the |
| uncertainties arising from the CLE-AdCSV approach mean we need to | | uncertainties arising from the CLE-AdCSV approach mean we need to |
| search for new ways to determine the organic complexation of Fe in | | search for new ways to determine the organic complexation of Fe in |
| n | seawater.", | n | seawater. \n", |
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| "title": "Comparing CLE-AdCSV applications using SA and TAC to | | "title": "Comparing CLE-AdCSV applications using SA and TAC to |
| determine the Fe binding characteristics of model ligands in | | determine the Fe binding characteristics of model ligands in |
| seawater", | | seawater", |
| "type": "dataset", | | "type": "dataset", |
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