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Featured researches published by Katharina Mette.


Chemcatchem | 2012

Nanostructured Manganese Oxide Supported on Carbon Nanotubes for Electrocatalytic Water Splitting

Katharina Mette; Arno Bergmann; Jean-Philippe Tessonnier; Michael Hävecker; Lide Yao; Thorsten Ressler; Robert Schlögl; Peter Strasser; Malte Behrens

Incipient wetness impregnation and a novel deposition symproportionation precipitation were used for the preparation of MnOx/CNT electrocatalysts for efficient water splitting. Nanostructured manganese oxides have been dispersed on commercial carbon nanotubes as a result of both preparation methods. A strong influence of the preparation history on the electrocatalytic performance was observed. The as‐prepared state of a 6.5 wt. % MnOx/CNT sample could be comprehensively characterized by comparison to an unsupported MnOx reference sample. Various characterization techniques revealed distinct differences in the oxidation state of the Mn centers in the as‐prepared samples as a result of the two different preparation methods. As expected, the oxidation state is higher and near +4 for the symproportionated MnOx compared to the impregnated sample, where +2 was found. In both cases an easy adjustability of the oxidation state of Mn by post‐treatment of the catalysts was observed as a function of oxygen partial pressure and temperature. Similar adjustments of the oxidation state are also expected to happen under water splitting conditions. In particular, the 5 wt. % MnO/CNT sample obtained by conventional impregnation was identified as a promising catalytic anode material for water electrolysis at neutral pH showing high activity and stability. Importantly, this catalytic material is comparable to state‐of‐art MnOx catalyst operating in strongly alkaline solutions and, therefore, offers advantages for hydrogen production from waste and sea water under neutral, hence, environmentally benign conditions.


Chemcatchem | 2014

Stable Performance of Ni-Catalysts in Dry Reforming of Methane at High Temperatures for an Efficient CO2-Conversion into Syngas

Katharina Mette; Stefanie Kühl; Hendrik Düdder; Kevin Kähler; Andrey Tarasov; Martin Muhler; Malte Behrens

The catalytic performance of a Ni/MgAlOx catalyst was investigated in the high temperature CO2 reforming of CH4. The catalyst was developed using a Ni, Mg, Al hydrotalcite‐like precursor obtained by co‐precipitation. Despite the high Ni loading of 55 wt%, the synthesized Ni/MgAlOx catalyst possessed a thermally stable microstructure up to 900 °C with Ni nanoparticles of 9 nm. This stability is attributed to the embedding nature of the oxide matrix, and allows increasing the reaction temperature without losing active Ni surface area. To evaluate the effect of the reaction temperature on the reforming performance and the coking behavior, two different reaction temperatures (800 and 900 °C) were investigated. At both temperatures the prepared catalyst showed high rates of CH4 consumption. The higher temperature promotes the stability of the catalyst performance due to mitigation of the carbon formation.


Chemical Communications | 2011

Knowledge-based development of a nitrate-free synthesis route for Cu/ZnO methanol synthesis catalysts via formate precursors

Malte Behrens; Stefan Kißner; Frank Girgsdies; Igor Kasatkin; Felix Hermerschmidt; Katharina Mette; Holger Ruland; Martin Muhler; Robert Schlögl


Catalysis Science & Technology | 2014

Correction: The role of carbonaceous deposits in the activity and stability of Ni-based catalysts applied in the dry reforming of methane

Hendrik Düdder; Kevin Kähler; Bastian Krause; Katharina Mette; Stefanie Kühl; Malte Behrens; Viktor Scherer; Martin Muhler


Catalysis Today | 2015

Redox dynamics of Ni catalysts in CO2 reforming of methane

Katharina Mette; Stefanie Kühl; Andrey Tarasov; Hendrik Düdder; Kevin Kähler; Martin Muhler; Robert Schlögl; Malte Behrens


ACS Catalysis | 2013

Dimensionally Stable Ru/Ir/TiO2-Anodes with Tailored Mesoporosity for Efficient Electrochemical Chlorine Evolution

Nadine Menzel; Erik Ortel; Katharina Mette; Ralph Kraehnert; Peter Strasser


Aiche Journal | 2016

Investigating dry reforming of methane with spatial reactor profiles and particle-resolved CFD simulations†

Gregor D. Wehinger; Matthias Kraume; Viktor Berg; Oliver Korup; Katharina Mette; Robert Schlögl; Malte Behrens; Raimund Horn


ACS Catalysis | 2016

High-Temperature Stable Ni Nanoparticles for the Dry Reforming of Methane

Katharina Mette; Stefanie Kühl; Andrey Tarasov; Marc Georg Willinger; Jutta Kröhnert; Sabine Wrabetz; Annette Trunschke; Michael Scherzer; Frank Girgsdies; Hendrik Düdder; Kevin Kähler; Klaus Friedel Ortega; Martin Muhler; Robert Schlögl; Malte Behrens; Thomas Lunkenbein


Archive | 2013

ELECTROLYTIC WATER SPLITTING USING A CARBON-SUPPORTED MnOx-COMPOSITE

Robert Schlögl; Katharina Mette; Malte Behrens; Jean-Philippe Tessonnier; Arno Bergmann; Peter Strasser


Chemie Ingenieur Technik | 2014

Investigation of Coking During Dry Reforming of Methane by Means of Thermogravimetry

Andrey Tarasov; Hendrik Düdder; Katharina Mette; Stefanie Kühl; Kevin Kähler; Robert Schlögl; Martin Muhler; Malte Behrens

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Malte Behrens

University of Duisburg-Essen

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Peter Strasser

Technical University of Berlin

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Arno Bergmann

Technical University of Berlin

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