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Insights into the Crystallinity-Dependent Photochemical Productions of Reactive Oxygen Species from Iron Minerals. | LitMetric

AI Article Synopsis

  • Iron minerals in water and soil can produce reactive oxygen species (ROS) when exposed to sunlight, which are important for processes like pollutant breakdown and microbe inactivation.
  • Research showed that different crystallinity levels in ferrihydrites affect ROS production, with less crystalline forms generating more ROS like hydrogen peroxide and hydroxyl radicals.
  • This study highlights how lower-crystallinity iron minerals, common in environments like wetlands, play a crucial role in photochemical reactions that can influence the degradation of organic pollutants.

Article Abstract

Iron minerals are widespread in earth's surface water and soil. Recent studies have revealed that under sunlight irradiation, iron minerals are photoactive on producing reactive oxygen species (ROS), a group of key species in regulating elemental cycling, microbe inactivation, and pollutant degradation. In nature, iron minerals exhibit varying crystallinity under different hydrogeological conditions. While crystallinity is a known key parameter determining the overall activity of iron minerals, the impact of iron mineral crystallinity on photochemical ROS production remains unknown. Here, we assessed the photochemical ROS production from ferrihydrites with different degrees of crystallinity. All examined ferrihydrites demonstrated photoactivity under irradiation, resulting in the generation of hydrogen peroxide (HO) and hydroxyl radical (OH). The photochemical ROS production from ferrihydrites increased with decreasing ferrihydrite crystallinity. The crystallinity-dependent photochemical OH production was primarily attributed to conduction band reduction reactions, with the reduction of O by conduction band electrons being the rate-limiting key process. Conversely, the crystallinity of iron minerals had a negligible influence on photon-to-electron conversion efficiency or surface Fenton-like activity. The difference in ROS productions led to a discrepant degradation efficiency of organic pollutants on iron mineral surfaces. Our study provides valuable insights into the crystallinity-dependent ROS productions from iron minerals in natural systems, emphasizing the significance of iron mineral photochemistry in natural sites with abundant lower-crystallinity iron minerals such as wetland water and surface soils.

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Source
http://dx.doi.org/10.1021/acs.est.4c01843DOI Listing

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