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Insights into the degradation process of phenol during in-situ thermal desorption: The overlooked oxidation of hydroxyl radicals from oxygenation of reduced Fe-bearing clay minerals.

Authors :
Zhang, Wenwen
Li, Xiaodong
Shen, Jialun
Sun, Zongquan
Zhou, Xuefei
Li, Fasheng
Ma, Fujun
Gu, Qingbao
Source :
Journal of Hazardous Materials. Feb2023:Part A, Vol. 444, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

In-situ thermal desorption (ISTD) has attracted increasing attention owing to the efficient removal of organic contaminants from contaminated sites. However, it is poorly understood that whether and to what extent contamination degradation occurs upon oxygenation of reduced Fe-bearing clay minerals (RFC) in the subsurface during ISTD. In this study, we evaluated the mechanism of contaminant degradation upon oxygenation of reduced clay minerals during the ISTD. Reduced nontronite (rNAu-2) and montmorillonite (rSWy-3) were selected as RFC models. Results showed that thermal treatment during ISTD could significantly enhance phenol degradation, which increased from 25.8 % at 10 °C to 74.4 % at 70 °C in rNAu-2 and from 17.7 % at 10 °C to 49.8 % at 70 °C in rSWy-3. Correspondingly, the cumulative •OH at steady-state ([•OH] ss) increased by 3.7 and 1.5 times, respectively. The acceleration of Fe(II) oxidation with increasing temperature could be mainly responsible for [•OH] ss generation, which degrades phenol. Moreover, thermal treatment improved the fast oxidation of trioctahedral entities Fe(II)Fe(II)Fe(II) (TOF) and the slow oxidation of dioctahedral entities Fe(II)Fe(II) (DTF 1), AlFe(II) (DAF 1), and Fe(II)Fe(III) (DTF 2). Our study suggests that the overlooked degradation progress of phenol by oxygenation of RFC during ISTD, and it could be favorable for contaminant degradation during remediation. [Display omitted] • Phenol degradation upon RFC oxygenation was enhanced by 2.9-fold during the ISTD. • The acceleration of [•OH] ss increased phenol degradation with temperature. • The oxidation of structural Fe(Ⅱ) was accelerated by thermal treatment. • Thermal treatment enhanced [•OH] ss generation via one-electron transfer. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03043894
Volume :
444
Database :
Academic Search Index
Journal :
Journal of Hazardous Materials
Publication Type :
Academic Journal
Accession number :
160536843
Full Text :
https://doi.org/10.1016/j.jhazmat.2022.130401