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Chemistry

D-Index
48
Citations
9521
World Ranking
15142
National Ranking
1103

Overview

Evgenii V. Kondratenko is affiliated with the Leibniz Institute for Neurobiology in Germany. Their research primarily spans the fields of Chemical Engineering and Materials Science, with a focus on several specialized subfields, including Catalysis, Materials Chemistry, Inorganic Chemistry, Mechanical Engineering, and Organic Chemistry.

The scientist's main topics of work include catalytic processes in materials science, catalysis and oxidation reactions, catalysts for methane reforming, zeolite catalysis and synthesis, catalysis and hydrodesulfurization studies, carbon dioxide utilization in catalysis, and nanomaterials for catalytic reactions.

Evgenii V. Kondratenko has authored numerous publications in notable venues, with frequent contributions to:

  • ACS Catalysis
  • ChemCatChem
  • Angewandte Chemie International Edition
  • Angewandte Chemie
  • Journal of Catalysis

Their recent papers cover various aspects of catalytic science, including:

  • Current status and perspectives in oxidative, non-oxidative and CO2-mediated dehydrogenation of propane and isobutane over metal oxide catalysts (2020, Chemical Society Reviews)
  • In situ formation of ZnOx species for efficient propane dehydrogenation (2021, Nature)
  • Elucidating the Nature of Active Sites and Fundamentals for their Creation in Zn-Containing ZrO2-Based Catalysts for Nonoxidative Propane Dehydrogenation (2020, ACS Catalysis)
  • Performance descriptors of nanostructured metal catalysts for acetylene hydrochlorination (2022, Nature Nanotechnology)
  • Identifying Performance Descriptors in CO2 Hydrogenation over Iron-Based Catalysts Promoted with Alkali Metals (2022, Angewandte Chemie International Edition)

Frequent coauthors who have collaborated extensively with Evgenii V. Kondratenko include Vita A. Kondratenko, Guiyuan Jiang, Henrik Lund, Stephan Bartling, and Tatiana Otroshchenko.

Best Publications

  • Status and perspectives of CO2 conversion into fuels and chemicals by catalytic, photocatalytic and electrocatalytic processes

    Evgenii V. Kondratenko;Guido Mul;Jonas Baltrusaitis;Gastón O. Larrazábal

  • In situ formation of ZnOx species for efficient propane dehydrogenation.

    Dan Zhao;Dan Zhao;Xinxin Tian;Xinxin Tian;Dmitry E. Doronkin;Shanlei Han;Shanlei Han

  • Current status and perspectives in oxidative, non-oxidative and CO2-mediated dehydrogenation of propane and isobutane over metal oxide catalysts.

    Tatiana Otroshchenko;Guiyuan Jiang;Vita A Kondratenko;Uwe Rodemerck

  • Methane conversion into different hydrocarbons or oxygenates: current status and future perspectives in catalyst development and reactor operation

    Evgenii V. Kondratenko;Tim Peppel;Dominik Seeburg;Vita A. Kondratenko

  • ZrO2‐Based Alternatives to Conventional Propane Dehydrogenation Catalysts: Active Sites, Design, and Performance

    Tatyana Otroshchenko;Sergey Sokolov;Mariana Stoyanova;Vita A. Kondratenko

  • Stable low-temperature dry reforming of methane over mesoporous La2O3-ZrO2 supported Ni catalyst

    Sergey Sokolov;Evgenii V. Kondratenko;Marga-Martina Pohl;Axel Barkschat

  • Control of coordinatively unsaturated Zr sites in ZrO 2 for efficient C–H bond activation

    Yaoyuan Zhang;Yun Zhao;Tatiana Otroshchenko;Henrik Lund

  • Unexpectedly efficient CO2 hydrogenation to higher hydrocarbons over non-doped Fe2O3

    Matthias Albrecht;Uwe Rodemerck;Matthias Schneider;Martin Bröring

  • Comparative study of propane dehydrogenation over V-, Cr-, and Pt-based catalysts: Time on-stream behavior and origins of deactivation

    Sergey Sokolov;Mariana Stoyanova;Uwe Rodemerck;David Linke

  • Evolution, achievements, and perspectives of the TAP technique

    Javier Pérez-Ramírez;Evgenii V. Kondratenko

  • Influence of the kind of VOx structures in VOx/MCM-41 on activity, selectivity and stability in dehydrogenation of propane and isobutane

    Uwe Rodemerck;Mariana Stoyanova;Evgenii V. Kondratenko;David Linke

  • ZrO2-based unconventional catalysts for non-oxidative propane dehydrogenation: Factors determining catalytic activity

    Tatyana Otroshchenko;Vita A. Kondratenko;Uwe Rodemerck;David Linke

  • Synergy effect between Zr and Cr active sites in binary CrZrO x or supported CrO x /LaZrO x : Consequences for catalyst activity, selectivity and durability in non-oxidative propane dehydrogenation

    Tatiana P. Otroshchenko;Uwe Rodemerck;David Linke;Evgenii V. Kondratenko

  • Improving Selectivity and Activity of CO2 Reduction Photocatalysts with Oxygen

    Stefanie Kreft;Roland Schoch;Jacob Schneidewind;Jabor Rabeah

  • Oxidative dehydrogenation of propane: Differences between N2O and O2 in the reoxidation of reduced vanadia sites and consequences for selectivity

    Xavier Rozanska;Evgenii V. Kondratenko;Joachim Sauer

  • The effect of phase composition and crystallite size on activity and selectivity of ZrO2 in non-oxidative propane dehydrogenation

    Yaoyuan Zhang;Yaoyuan Zhang;Yun Zhao;Tatiana Otroshchenko;Shanlei Han;Shanlei Han

  • Developing catalytic materials for the oxidative coupling of methane through statistical analysis of literature data

    Evgenii V. Kondratenko;Michael Schlüter;Manfred Baerns;David Linke

  • Partial Oxidation of Methane to Syngas Over γ-Al2O3-Supported Rh Nanoparticles: Kinetic and Mechanistic Origins of Size Effect on Selectivity and Activity

    Vita A. Kondratenko;Claudia Berger-Karin;Evgenii V. Kondratenko

  • Improved catalytic methane combustion of Pd/CeO2 catalysts via porous glass integration

    Martina Hoffmann;Stefanie Kreft;Gabriele Georgi;Gerhard Fulda

  • Elucidating the Nature of Active Sites and Fundamentals for their Creation in Zn-Containing ZrO2–Based Catalysts for Nonoxidative Propane Dehydrogenation

    Shanlei Han;Shanlei Han;Dan Zhao;Dan Zhao;Tatiana Otroshchenko;Henrik Lund

  • Controlling the speciation and reactivity of carbon-supported gold nanostructures for catalysed acetylene hydrochlorination

    Selina K. Kaiser;Ronghe Lin;Sharon Mitchell;Edvin Fako

  • Non-oxidative dehydrogenation of propane, n-butane, and isobutane over bulk ZrO2-based catalysts: effect of dopant on the active site and pathways of product formation

    Tatiana P. Otroshchenko;Vita A. Kondratenko;Uwe Rodemerck;David Linke

Frequent Co-Authors

Guiyuan Jiang
Guiyuan Jiang China University of Petroleum, Beijing
Angelika Brückner
Angelika Brückner University of Rostock
Jörg Radnik
Jörg Radnik Federal Institute For Materials Research and Testing
Núria López
Núria López University of Barcelona
Peter Claus
Peter Claus Technical University of Darmstadt
Reinhard Schomäcker
Reinhard Schomäcker Technical University of Berlin
Jan-Dierk Grunwaldt
Jan-Dierk Grunwaldt Karlsruhe Institute of Technology
Haihui Wang
Haihui Wang Tsinghua University
Frank Krumeich
Frank Krumeich ETH Zurich

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