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Institute of Chemical Reaction EngineeringFriedrich-Alexander-Universität Institute of Chemical Reaction Engineering
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Friedrich-Alexander-Universität
Erlangen-Nürnberg
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  • Featured image for Complex Catalyst Systems and Continuous Processes
    Complex Catalyst Systems and Continuous Processes
    • Performance and Synthesis of Ionic Liquid
    • Hydrogen and Energy
    • Catalytic Systems for Chemical Energy Storage
  • Featured image for Hybrid Materials (HyMat) for Catalysis and Purification
    Hybrid Materials (HyMat) for Catalysis and Purification
  • Featured image for Catalytic and Electrocatalytic Systems and Processes
    Catalytic and Electrocatalytic Systems and Processes

Institute of Chemical Reaction Engineering

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Friedrich-Alexander-Universität
Erlangen-Nürnberg
Egerlandstr. 3
91058 Erlangen
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Friedrich-Alexander-Universität
Erlangen-Nürnberg

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FAU is the most innovative university in Germany, and second across Europe. Established in 1743, it is one of the largest universities in Germany, with approximately 40,000 students, over 600 professors and around 16,000 members of staff.

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  1. Friedrich-Alexander University
  2. Faculty of Engineering
  3. Department of Chemical and Biological Engineering
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    • Contact and directions
    • People
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    • Southern German Catalysis Teaching Network
      • SCALMS - ERC Advanced Investigator Project: Supported Catalytically Active Liquid Metal Alloys
          • Development and application of heterogeneous POM-based catalysts
          • Dynamic Methanation of Electrolysis-Hydrogen
          • Dynamic Methanation of Electrolysis-Hydrogen
          • E2Fuels-Development of a single-stage reaction concept for methanol-synthesis from CO2 and renewable hydrogen via in-situ sorption
          • Fractionation and selective oxidation of lignocellulosic biomass to formic acid and high-grade cellulose
          • Increased value added from biogenic raw materials by selective hydrogenation of biobased platform chemicals
          • Influence of N- and O-containing heteroatoms on the continuous oxidative desulfurization of liquid fuels
          • Optimization of catalysts for a dynamic methanol synthesis process
          • OxFA-process- Oxidative conversion of biomass to formic acid
          • Oxidative-extractive desulfurization of liquid fuels with polyoxometalate catalysts
          • Selective catalytic oxidation of biogenic resources to organic acids using multiphasic reaction system including in-situ product isolation (SelkatOx)
          • Selective catalytic oxidation of biogenic resources to organic acids using multiphasic reaction system including in-situ product isolation (SelkatOx)
          • Selective electron beam melting of catalytic active materials
          • Selective hydrogenation of biomass derived compounds to biofuels using polyoxometalate Catalysts
          • Sustainable production of acrylic acid
          • Sustainable production of acrylic acid
          • Sustainable production of acrylic acid
          • Sustainable use of electrical excess energy gained from renewable resources
          • Reaction monitoring
          • Reactor design
          • SCALMS catalysis
          • SCILL catalysis
          • SILP gas purification
          • SLP catalysis
        • Hydrogen and Energy
        • Performance and Synthesis of Ionic Liquid
        • Supported Ionic Liquid Phase (SILP) Catalysis
        • Heterogeneous Catalysis
        • Porous Materials and Hierarchical Systems

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