3 results match your criteria: "Environmental Engineering Institute IIE-ENAC[Affiliation]"

Effects of CO and H limitations on .

Microbiol Spectr

September 2025

Environmental Engineering Institute IIE-ENAC, Laboratory MICROBE, Ecole Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

Hydrogenotrophic methanogens play a key role in anaerobic ecosystems by catalyzing the bioconversion of hydrogen (H) and carbon dioxide (CO) into methane (CH) and water. This metabolic process is the basis of biological power-to-methane (PtM) technology, a promising solution for the long-term storage of surplus renewable energy as CH. Its successful application can be improved through a deeper understanding of methanogen physiology, particularly the metabolic response to intermittent substrate supply of H or CO.

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Resilience of aerobic methanotrophs in soils; spotlight on the methane sink under agriculture.

FEMS Microbiol Ecol

February 2024

Nestlè Research, Route du Jorat 57, CH 1000 Lausanne 26, Switzerland.

Aerobic methanotrophs are a specialized microbial group, catalyzing the oxidation of methane. Disturbance-induced loss of methanotroph diversity/abundance, thus results in the loss of this biological methane sink. Here, we synthesized and conceptualized the resilience of the methanotrophs to sporadic, recurring, and compounded disturbances in soils.

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Mercury Isotope Fractionation during Dark Abiotic Reduction of Hg(II) by Dissolved, Surface-Bound, and Structural Fe(II).

Environ Sci Technol

October 2023

Department of Environmental Geosciences, Centre for Microbiology and Environmental Systems Science, University of Vienna, Josef-Holaubek-Platz 2, 1090 Vienna, Austria.

Stable mercury (Hg) isotope ratios are an emerging tracer for biogeochemical transformations in environmental systems, but their application requires knowledge of isotopic enrichment factors for individual processes. We investigated Hg isotope fractionation during dark, abiotic reduction of Hg(II) by dissolved iron(Fe)(II), magnetite, and Fe(II) sorbed to boehmite or goethite by analyzing both the reactants and products of laboratory experiments. For homogeneous reduction of Hg(II) by dissolved Fe(II) in continuously purged reactors, the results followed a Rayleigh distillation model with enrichment factors of -2.

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