Analysis of the calcium looping system behavior by implementing simple reactor and attrition models at a 10 kW(th) dual fluidized bed facility under continuous operation. Fuel, (169):79-86, Elsevier, 2016. [PUMA: myown]
Extended theoretical and experimental studies of the calcium looping process for carbon dioxide capture. Stuttgart, 2017. [PUMA: myown]
Investigations at a 10 kWth calcium looping dual fluidized bed facility: Limestone calcination and CO2 capture under high CO2 and water vapor atmosphere. International journal of greenhouse gas control, (33):103-112, Elsevier, 2015. [PUMA: myown]
Calcium looping cycle for hydrogen production from biomass gasification syngas - experimental investigation at a 20 kWth dual fluidized bed facility. Industrial & engineering chemistry research, (54)21:5624-5634, American Chemical Society, 2015. [PUMA: myown]
Development of the calcium looping CO2 capture technology from lab to pilot scale at IFK, University of Stuttgart. Fuel, (127):23-37, Elsevier, 2014. [PUMA: myown]
Characterization of the oxy-fired regenerator at a 10 KWth dual fluidized bed calcium looping facility. In Petros A. Pilavachi, Robert Davidson, and George Skodras (Eds.), 6th International Conference on Clean Coal Technologies CCT2013, 74, special issue:54-60, Elsevier, Amsterdam, 2015. [PUMA: myown]
Calcium looping process: experimental investigation of limestone performance regenerated under high CO2 partial pressure and validation of a carbonator model. In Tim Dixon, and Kenji Yamaji (Eds.), GHGT-11 Proceedings of the 11th International Conference on Greenhouse Gas Control Technologies, 37:190-198, Elsevier, Amsterdam, 2013. [PUMA: myown]
Spent limestone sorbent from calcium looping cycle as a raw material for the cement industry. Fuel, (118):202-205, Elsevier, 2014. [PUMA: myown]
High-resolution 3-D full-loop simulation of a CFB carbonator cold model. Chemical engineering science, (90):137-150, Elsevier, 2013. [PUMA: myown]
Experimental study of the effect of friction phenomena on actual and calculated inventory in a small-scale CFB riser. Particuology, (21):41-47, Elsevier, 2015. [PUMA: myown]
Development of the calcium looping CO2 capture technology from lab to pilot scale at IFK, University of Stuttgart. Fuel, (127):23 - 37, 2014. [PUMA: myown]
Exploring the synergistic effects of biochar and arbuscular mycorrhizal fungi on phosphorus acquisition in tomato plants by using gene expression analyses. Science of The Total Environment, (884):163506, Elsevier BV, August 2023. [PUMA: MICORIZA BIOCHAR] URL
Author Correction: Arsenic mobilization by anaerobic iron-dependent methane oxidation. Communications Earth & Environment, Dec 16, 2020. [PUMA: imported] URL
Microbial transformation of biogenic and abiogenic Fe minerals followed by in-situ incubations in an As-contaminated vs. non-contaminated aquifer. Environmental Pollution, (281):117012, Elsevier BV, July 2021. [PUMA: imported] URL
A Novel Enrichment Culture Highlights Core Features of Microbial Networks Contributing to Autotrophic Fe(II) Oxidation Coupled to Nitrate Reduction. Microbial Physiology, 2021. [PUMA: imported] URL
Draft Genome Sequence of a Strictly Anaerobic Dichloromethane-Degrading Bacterium. Genome Announcements, (4)2American Society for Microbiology, April 2016. [PUMA: imported] URL
Diverse sulfate-reducing bacteria of the Desulfosarcina/Desulfococcus clade are the key alkane degraders at marine seeps. ISME Journal, (8)10:2029-2044, 2014. [PUMA: imported]
Enhanced gene detection assays for fumarate-adding enzymes allow uncovering of anaerobic hydrocarbon degraders in terrestrial and marine systems. Applied and Environmental Microbiology, (79)2:543-552, 2013. [PUMA: imported]
The distribution of active iron-cycling bacteria in marine and freshwater sediments is decoupled from geochemical gradients. Environmental Microbiology, (20)7:2483--2499, Wiley, July 2018. [PUMA: imported] URL
Insights into Carbon Metabolism Provided by Fluorescence In Situ Hybridization-Secondary Ion Mass Spectrometry Imaging of an Autotrophic, Nitrate-Reducing, Fe(II)-Oxidizing Enrichment Culture. In Frank E. Löffler (Eds.), Applied and Environmental Microbiology, (84)9American Society for Microbiology, May 2018. [PUMA: imported] URL