Matches in SemOpenAlex for { <https://semopenalex.org/work/W2004774748> ?p ?o ?g. }
- W2004774748 endingPage "89" @default.
- W2004774748 startingPage "76" @default.
- W2004774748 abstract "Interactions between metals and natural organic matter (NOM) are of great environmental importance and one of the key factors influencing hydrolysis, solubility, and speciation of the metals. However, studying geochemically relevant metals like Al, Fe, and Cu is sometimes associated with analytical problems; for example Fe and Cu are both redox active. Gallium (Ga) is a non-redox active metal that usually occurs at very low concentrations in environmental samples and therefore a wide concentration range of metal(III)–NOM species can be explored by adding Ga(III) to such samples. This makes Ga(III) a good probe and analogue for other metal ions, in particular Al. In addition, due to the increased usage of Ga in society, a better understanding of how Ga interacts with NOM is of importance but such studies are scarce. In this work, Ga(III) interactions with two different organic materials (Suwannee River natural organic matter and Suwannee River fulvic acid) were studied using infrared (IR) and extended X-ray absorption fine structure (EXAFS) spectroscopy in a large experimental range (101–84,076 μg Ga g−1 dry weight; pH 3–8). Our IR spectroscopic results showed that Ga(III) is bonded mainly to carboxylic functional groups and suggested that only a fraction of the total number of carboxylic sites in the samples was actively involved in the bonding. Modeling of the EXAFS data revealed that Ga(III) formed mononuclear chelate complexes with NOM that strongly suppressed the hydrolysis and polymerization of Ga(III). At low Ga(III) concentrations (1675–16,649 μg g−1) organic complexes, consisting of 1–3 chelate ring structures, were the dominating species in the entire pH range while at higher concentrations (67,673–84,076 μg g−1, pH 3.0–7.0) we detected mixtures of mononuclear organic Ga(III) complexes, Ga(III) (hydr)oxide, and free Ga(III) (here defined as the hydrated Ga(III) ion and its soluble hydrolysis products). Moreover, the EXAFS results showed significantly higher contribution from second-shell C atoms (9–11) for the Ga(III)–organic complexes at the lowest concentration (101–125 μg g−1, pH 4.9–5.1), indicating formation of cage-like structures similar to Ga(III)–EDTA. Our combined results showed that Ga(III)–NOM interactions can be of importance for the solubility and speciation of Ga in environmental systems. Furthermore, the similarities between Ga(III) and previous Fe(III) results demonstrate that Ga(III) can be utilized as a probe for metal(III)–NOM interactions over an extended experimental range (e.g., pH and metal concentration) and thereby improve our knowledge about these interactions in general." @default.
- W2004774748 created "2016-06-24" @default.
- W2004774748 creator A5032749299 @default.
- W2004774748 creator A5035787036 @default.
- W2004774748 creator A5080203230 @default.
- W2004774748 date "2014-12-01" @default.
- W2004774748 modified "2023-10-04" @default.
- W2004774748 title "Spectroscopic characterization of the coordination chemistry and hydrolysis of gallium(III) in the presence of aquatic organic matter" @default.
- W2004774748 cites W1970037992 @default.
- W2004774748 cites W1978289453 @default.
- W2004774748 cites W1978340334 @default.
- W2004774748 cites W1983487980 @default.
- W2004774748 cites W1986239215 @default.
- W2004774748 cites W1991800912 @default.
- W2004774748 cites W1993596116 @default.
- W2004774748 cites W1994334762 @default.
- W2004774748 cites W1996768948 @default.
- W2004774748 cites W2000718064 @default.
- W2004774748 cites W2005246095 @default.
- W2004774748 cites W2007464021 @default.
- W2004774748 cites W2008249328 @default.
- W2004774748 cites W2020322048 @default.
- W2004774748 cites W2023692073 @default.
- W2004774748 cites W2024102349 @default.
- W2004774748 cites W2030675197 @default.
- W2004774748 cites W2032269296 @default.
- W2004774748 cites W2033179720 @default.
- W2004774748 cites W2038597673 @default.
- W2004774748 cites W2044791144 @default.
- W2004774748 cites W2048957078 @default.
- W2004774748 cites W2065040615 @default.
- W2004774748 cites W2072587957 @default.
- W2004774748 cites W2072941007 @default.
- W2004774748 cites W2114772421 @default.
- W2004774748 cites W2115333379 @default.
- W2004774748 cites W2117986498 @default.
- W2004774748 cites W2136949760 @default.
- W2004774748 cites W2142544373 @default.
- W2004774748 cites W2151733502 @default.
- W2004774748 cites W2157732685 @default.
- W2004774748 cites W2333177028 @default.
- W2004774748 cites W4230376348 @default.
- W2004774748 doi "https://doi.org/10.1016/j.gca.2014.10.006" @default.
- W2004774748 hasPublicationYear "2014" @default.
- W2004774748 type Work @default.
- W2004774748 sameAs 2004774748 @default.
- W2004774748 citedByCount "15" @default.
- W2004774748 countsByYear W20047747482014 @default.
- W2004774748 countsByYear W20047747482015 @default.
- W2004774748 countsByYear W20047747482016 @default.
- W2004774748 countsByYear W20047747482017 @default.
- W2004774748 countsByYear W20047747482018 @default.
- W2004774748 countsByYear W20047747482019 @default.
- W2004774748 countsByYear W20047747482020 @default.
- W2004774748 countsByYear W20047747482022 @default.
- W2004774748 crossrefType "journal-article" @default.
- W2004774748 hasAuthorship W2004774748A5032749299 @default.
- W2004774748 hasAuthorship W2004774748A5035787036 @default.
- W2004774748 hasAuthorship W2004774748A5080203230 @default.
- W2004774748 hasBestOaLocation W20047747481 @default.
- W2004774748 hasConcept C107861141 @default.
- W2004774748 hasConcept C107872376 @default.
- W2004774748 hasConcept C119824511 @default.
- W2004774748 hasConcept C121332964 @default.
- W2004774748 hasConcept C155574463 @default.
- W2004774748 hasConcept C178790620 @default.
- W2004774748 hasConcept C179104552 @default.
- W2004774748 hasConcept C185592680 @default.
- W2004774748 hasConcept C197404232 @default.
- W2004774748 hasConcept C199164860 @default.
- W2004774748 hasConcept C48743137 @default.
- W2004774748 hasConcept C544153396 @default.
- W2004774748 hasConcept C550372918 @default.
- W2004774748 hasConcept C55904794 @default.
- W2004774748 hasConcept C62520636 @default.
- W2004774748 hasConcept C68913812 @default.
- W2004774748 hasConcept C94412978 @default.
- W2004774748 hasConceptScore W2004774748C107861141 @default.
- W2004774748 hasConceptScore W2004774748C107872376 @default.
- W2004774748 hasConceptScore W2004774748C119824511 @default.
- W2004774748 hasConceptScore W2004774748C121332964 @default.
- W2004774748 hasConceptScore W2004774748C155574463 @default.
- W2004774748 hasConceptScore W2004774748C178790620 @default.
- W2004774748 hasConceptScore W2004774748C179104552 @default.
- W2004774748 hasConceptScore W2004774748C185592680 @default.
- W2004774748 hasConceptScore W2004774748C197404232 @default.
- W2004774748 hasConceptScore W2004774748C199164860 @default.
- W2004774748 hasConceptScore W2004774748C48743137 @default.
- W2004774748 hasConceptScore W2004774748C544153396 @default.
- W2004774748 hasConceptScore W2004774748C550372918 @default.
- W2004774748 hasConceptScore W2004774748C55904794 @default.
- W2004774748 hasConceptScore W2004774748C62520636 @default.
- W2004774748 hasConceptScore W2004774748C68913812 @default.
- W2004774748 hasConceptScore W2004774748C94412978 @default.
- W2004774748 hasFunder F4320322327 @default.
- W2004774748 hasFunder F4320337354 @default.
- W2004774748 hasFunder F4320337509 @default.
- W2004774748 hasLocation W20047747481 @default.