B032-0003
ASSESSING THE ROLE OF WEATHERING IN CO-CYCLING OF VANADIUM, IRON, AND MANGANESE WITHIN OREGON COAST RANGE SOILS

Wednesday, 9 December 2020
Poster
Fatai Balogun, University of Oregon, Eugene, OR, United States, Owen Duckworth, North Carolina State Universit, Raleigh, NC, United States and Matthew Polizzotto, University of Oregon, Department of Earth Sciences, Eugene, OR, United States
Abstract:
Vanadium (V) is a possible carcinogen, depending on its speciation, and weathering of parent rock has been posited as an important driver of V in soil systems. Soil mineral weathering can also concomitantly enhance the formation and transformation of secondary mineral phases such as Fe-oxides and Mn-oxides, which are unevenly distributed in soil profiles and are important drivers of V speciation and mobility. The heterogeneity in chemistry and distribution of secondary oxides creates challenges in quantifying spatial profiles of redox-sensitive elements such as Fe, Mn, and V in weathering systems.

The objective of this study is to improve our mechanistic understanding of co-cycling of redox-sensitive metals in soils. To achieve this objective, a suite of field, wet-chemistry, spectroscopic and data-analysis techniques are being used. Soil, saprolite and bedrock samples have been collected along four soil profiles in the coast range of Oregon. X-ray absorption spectroscopy (XAS) and acid digestions have been conducted to quantify the speciation and concentrations of Fe, Mn, and V. Data from both analytical techniques will allow for the quantification of concentration profiles of Fe, Mn, and V as a function of parent material and secondary mineral oxides across depth.

Preliminary results from acid digestions have revealed a strong correlation (r = 0.76) between V and Fe. However, a very weak correlation (r = 0.07) was obtained between V and Mn across all sites. This suggests Mn may not directly influence V sorption in soil but may however be responsible for its oxidation. The good correlation between Fe and V indicates Fe is directly involved in V retention in these soils. This finding agrees with the mechanistic understanding of V mobility. Ongoing work is seeking to quantify proportions and speciation of Fe, Mn, and V from parent material and secondary oxides through different depth profiles.

Overall, this study will help improve our understanding of pedogenic-driven transformation and fluxes of Fe, Mn, and V within active weathering soil systems. These results can be used for developing more robust predictive models of controls on availability of V and its deleterious species in active weathering systems.