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Uncertainties still existed for evaluating greenhouse gases fluxes (GHGs), including carbon dioxide (CO2), methane (CH4) and nitrous oxide (N2O) at the regional scale for desert ecosystem because available GHGs data about biological soil crusts (BSCs) was very scarce. In 2011 and 2012, soil ecosystem covered by various types of BSCs and BSCs at different succession stages in an artificial sand-fixing vegetation region established in various periods at southeast of the Shapotou area in Tengger Desert was selected to measure fluxes of CO2, CH4 and N2O using static chamber and gas chromatography. The results showed that curst type, recovery time and their interactions with sampling date significantly affected CO2 flux. Recovery time and interaction of crust type and sampling date significantly affected CH4 flux. Sampling date significantly affected the fluxes of CO2, CH4 and N2O. The mean annual flux of CO2 for moss crust (105.1 mg x m(-2) x h(-1)) was significantly higher than that of algae crust (37.7 mg x m(-2) x h(-1)) at the same succession stage. Annual mean CH4 and N2O consumption was 19.9 and 3.4 microg x m(-2) x h(-1), respectively. Mean annual consumption of CH4 and N2O for algae crust was slightly higher than that of moss crust, however, significant difference was not found. Ecosystem respiration (Re) of desert soil covered by BSCs increased with the recovery process of desert ecosystem, in contrast, consumption of CH4 and N2O decreased. Re of moss crust was more sensitive to temperature and moisture variation than algae crust and Re sensitivity of temperature and moisture gradually increased with the development and succession of BSCs. Both soil temperature and moisture were not the main factor to determine CH4 and N2O fluxes of BSCs-soil in desert ecosystem.
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Bioresour Technol
September 2025
Key Laboratory of the Three Gorges Reservoir Region's Eco-Environment, Ministry of Education, Chongqing University, Chongqing 400045, China; College of Environment and Ecology, Chongqing University, Chongqing 400045, China. Electronic address:
Bioclogging from organic accumulation significantly limits efficiency and longevity of constructed wetlands (CWs). In this study, hematite was introduced to enhance the oxidation of organics by dissimilatory iron reduction (DIR). Compared to gravel CWs (G-CWs), hematite CWs (H-CWs) enhanced the removal of COD, ammonium, and phosphate by 12 %, 46 %, and 72 %, while reducing CH and NO emissions by 69 % and 36 %.
View Article and Find Full Text PDFJ Environ Manage
September 2025
School of Hydraulic and Environmental Engineering, Changsha University of Science and Technology, Changsha, 410114, China. Electronic address:
Microbial agents represent a valuable class of additives that can enhance the value and effectiveness of compost products. This paper provides a comprehensive review of the mechanisms and applications of microorganisms in regulating lignocellulose degradation, controlling gas emissions, and managing typical pollutants during the composting of organic solid wastes. Inoculation with microbial agents can significantly improve the degradation efficiency, quality, and environmental friendliness of compost.
View Article and Find Full Text PDFSci Total Environ
September 2025
Department of Animal Sciences and Aquatic Ecology, Ghent University, Gent, Belgium.
Wetlands play a crucial role in global greenhouse gas (GHG) dynamics, yet their response to climate change is not yet fully understood. Here, we investigate how increasing temperature and oxygen availability interact to regulate wetland GHG emissions through combined analysis of biogeochemical and functional gene measurements. We found distinct temperature-dependent shifts in carbon emission pathways, with CO emissions unexpectedly declining as temperature rose from 15 to 25 °C, while increasing consistently at higher temperatures (25-35 °C), reflecting a transition to more thermally-driven processes.
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 PDFWater Res
August 2025
Key Laboratory of SFGA (SPA) on Conservation Ecology in the Northeast Tiger and Leopard National park & Jilin Provincial Key Laboratory of Wetland Ecological Functions and Ecological Security, College of Geography and Ocean Sciences, Yanbian University, Yanji, 133300, China.
Snowpack variations in cold regions exert profound influences on the ecological functioning of constructed wetlands (CWs), particularly with respect to GHG emissions and nutrient removal. However, the underlying mechanisms have yet to be clarified. This study established pilot-scale vertical subsurface flow CWs in Northeast China, with Phragmites australis and Iris sibirica, and applied doubled snowpack (DS) and natural snow cover (CK) during winter.
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