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Structure and molecular-level transformation for oxidation of effluent organic matters by manganese oxides. | LitMetric

Structure and molecular-level transformation for oxidation of effluent organic matters by manganese oxides.

Water Res

Beijing Key Lab for Source Control Technology of Water Pollution, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China; Engineering Research Center for Water Pollution Source Control & Eco-remediation, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China. Electronic address:

Published: September 2024

As important organic components in water environments, effluent organic matters (EfOMs) from wastewater treatment plants are widely present in Mn-rich environments or engineered treatment systems. The redox interaction between manganese oxides (MnO) and EfOMs can lead to their structural changes, which are crucial for ensuring the safety of water environments. Herein, the reactivities of MnO with EfOMs were evaluated, and it was found that MnO with high specific surface area, active high-valent manganese content and lattice oxygen content (i.e., amorphous MnO) possessed stronger oxidizing ability towards EfOMs. Accompanying by EfOMs oxidation, Mn(IV) and Mn(III) were reduced into Mn(II), with Mn(III) as the significant active species. Through molecular-level transformation analysis by ultrahigh mass spectrometry (FT-ICR MS), the highly reactive compounds in EfOMs were clearly determined to be that with more aromatic and unsaturated structures, especially lignin-like compounds (the highest content in EfOMs (over 60 %)). EfOMs were oxidized by amorphous MnO into products with lower humification index (0.60 vs. 0.46), smaller apparent molecular weight (386.94 Da vs. 368.68 Da), and higher biodegradability (BOD/COD: 0.12 vs. 0.78). This finding suggested that redox reactions between MnO and EfOMs might alter their abiotic and biotic behaviors in receiving water environments.

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http://dx.doi.org/10.1016/j.watres.2024.122082DOI Listing

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