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The use of iron-manganese oxide (FMO) as a promising amendment for remediating arsenic (As) contamination in soils has gained attention, but its application is limited owing to agglomeration issues. This study aims to address agglomeration using surfactant-modified FMO and investigate their stabilization behavior towards As and resulting environmental changes upon amendments. The results confirmed the efficacy of surfactants and demonstrated that cetyltrimethylammonium-bromide-modified FMO significantly reduced the leaching concentration of As by 92.5 % and effectively suppressed the uptake of As by 85.8 % compared with the control groups. The ratio of the residual fraction increased from 30.5-41.6 % in unamended soil to 67.9-69.2 %. The number of active sites was through the introduction of surfactants and immobilized As via complexation, ion exchange, and redox reactions. The study also revealed that amendments and the concentration of As influenced the soil physicochemical properties and enriched bacteria associated with As and Fe reduction and changed the distribution of C, N, Fe, and As metabolism genes, which promoted the stabilization of As. The interactions among cetyltrimethylammonium bromide, FMO, and microorganisms were found to have the greatest effect on As immobilization.
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http://dx.doi.org/10.1016/j.scitotenv.2024.170526 | DOI Listing |
Ecotoxicol Environ Saf
September 2025
Key Laboratory of Environment Remediation and Ecological Health, Ministry of Education, College of Environmental & Resource Science, Zhejiang University, Hangzhou 310058, China; Zhejiang Provincial Key Laboratory of Subtropic Soil and Plant Nutrition, Zhejiang University, Hangzhou 310058, China. Ele
Seven plant growth-promoting bacteria (PGPB) were isolated from extracts of surface-sterilized Sedum alfredii Hance. Among the seven isolates, the strain SaRB5 identified as Stenotrophomonas maltophilia through 16S rDNA sequence analysis, exhibited highest levels of heavy metal resistance and plant growth-promoting traits. SaRB5 tolerated high concentrations of cadmium (Cd) (1.
View Article and Find Full Text PDFWater Res
August 2025
The Second Affiliated Hospital and Yuying Children's Hospital of Wenzhou Medical University, Wenzhou 325035, PR China. Electronic address:
Constructed wetlands (CWs) face dual challenges of arsenic contamination and greenhouse gas (GHG) emissions, particularly concerning the competing processes of As(III) immobilization and methane-dependent As(V) reduction (AOM-AsR). To address this dilemma, we developed a novel microbial-nitrate-zero valent iron/manganese synergy (MNZS) system that establishes dynamic redox gradients through Fe/Mn-mediated electron flux regulation. The MNZS mechanism leverages zero valent iron/manganese (ZVI/ZVM) oxidation to create oxygen-depleted microzones, generating bioavailable Fe(II)/Mn(II) species while initiating microbial nitrate-reducing-coupled Fe(II)/Mn(II) oxidation (NRFO/NRMO).
View Article and Find Full Text PDFJ Am Chem Soc
August 2025
New Chemistry Unit, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur, Bangalore 560064, Karnataka, India.
Iron-manganese-based layered Na-ion cathodes are appealing for building low-cost Na-ion batteries. However, their practical realization is hindered by the lower intercalation voltage (<3 V Na/Na) and limited cycle life. To tackle these issues, we utilize Li/Cu-cosubstitution into the O3-Na(FeMn)O cathode to tune the ionocovalency of Fe/Mn-O bonds, which in turn can modulate the electrochemical properties.
View Article and Find Full Text PDFToxics
August 2025
Fujian Key Laboratory of Toxicant and Drug Toxicology, Medical College, Ningde Normal University, Ningde 352100, China.
Soil co-contamination with antimony (Sb) and arsenic (As) presents significant ecological and human health risks, demanding effective stabilization solutions. This study evaluated iron-manganese-modified hydrochar (FMHC) for synergistic Sb-As stabilization in contaminated smelter soils. Through 60-day natural aging and 30 accelerated aging cycles, we assessed stabilization performance using toxicity leaching tests (acid/water/TCLP), bioavailable fraction analysis, bioaccessibility assessment, and Wenzel sequential extraction.
View Article and Find Full Text PDFMolecules
July 2025
Key Laboratory of Eco-Geochemistry, Ministry of Natural Resources of China, National Research Center for Geoanalysis, Beijing 100037, China.
Chromium slag sites pose severe environmental risks due to hexavalent chromium (Cr(VI)) contamination, characterized by high mobility and toxicity. This study focused on chromium-contaminated soil from a historical chromium slag site in North China, where long-term accumulation of chromate production residues has led to serious Cr(VI) pollution, with Cr(VI) accounting for 13-22% of total chromium and far exceeding national soil risk control standards. To elucidate Cr(VI) transformation mechanisms and elemental linkages, a combined approach of macro-scale condition experiments and micro-scale analysis was employed.
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