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Quantitative Contribution of Oxygen Vacancy Defects to Arsenate Immobilization on Hematite

Juan Liu, Yongjin Xiang, Yi‐Wen Chen, Hongjun Zhang, Bangjiao Ye, Lu Ren, Wenfeng Tan, Andreas Kappler, Jingtao Hou

2023Environmental Science & Technology81 citationsDOI

Abstract

Hematite is a common iron oxide in natural environments, which has been observed to influence the transport and fate of arsenate by its association with hematite. Although oxygen vacancies were demonstrated to exist in hematite, their contributions to the arsenate immobilization have not been quantified. In this study, hematite samples with tunable oxygen vacancy defect (OVD) concentrations were synthesized by treating defect-free hematite using different NaBH 4 solutions. The vacancy defects were characterized by positron annihilation lifetime spectroscopy, Doppler broadening of annihilation radiation, extended X-ray absorption fine structure (EXAFS), thermogravimetric mass spectrometry (TG-MS), electron paramagnetic resonance (EPR), and X-ray photoelectron spectroscopy (XPS). The results revealed that oxygen vacancy was the primary defect type existing on the hematite surface. TG-MS combined with EPR analysis allowed quantification of OVD concentrations in hematite. Batch experiments revealed that OVDs had a positive effect on arsenate adsorption, which could be quantitatively described by a linear relationship between the OVD concentration ( C def, mmol m –2 ) and the enhanced arsenate adsorption amount caused by defects (Δ Q m, μmol m –2 ) (Δ Q m = 20.94 C def, R 2 = 0.9813). NH 3 -diffuse reflectance infrared Fourier transform (NH 3 -DRIFT) analysis and density functional theory (DFT) calculations demonstrated that OVDs in hematite were beneficial to the improvement in adsorption strength of surface-active sites, thus considerably promoting the immobilization of arsenate.

Topics & Concepts

HematiteArsenateChemistryVacancy defectX-ray photoelectron spectroscopyAdsorptionAnalytical Chemistry (journal)Electron paramagnetic resonanceExtended X-ray absorption fine structureInorganic chemistryArsenicNuclear magnetic resonanceAbsorption spectroscopyCrystallographyMineralogyPhysical chemistryEnvironmental chemistryOrganic chemistryPhysicsQuantum mechanicsArsenic contamination and mitigationIron oxide chemistry and applicationsClay minerals and soil interactions