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Jørgen Skibsted


Keywords

  • Solid-State NMR
  • Portland Cement
  • CO2 Emission
  • Heterogeneous Catalysis
  • Materials Research

Head of Solid-State NMR Spectroscopy Group

Professor Jørgen Skibsted
PhD in Chemistry

From order to disorder

A principal goal of our research is to explore structure and reactivity of cementitious materials, mainly by solid-state nucleic magnetic resonance (NMR) techniques, and to utilize this information in the development of the next generation of sustainable cement-based materials. The reactivity can often be significantly increased by introducing structural disorder in the materials.

Our research focuses on the application of solid-state NMR spectroscopy in inorganic materials research. The main areas are cement-based materials, heterogeneous catalysts, inorganic framework structures, glasses, and new materials for hydrogen storage. Our principal field is cement-based materials. In this field, academia and industry face the global challenge of developing more sustainable cement production, since today’s production is responsible for roughly 5% of the total anthropogenic CO2 emissions. We contribute to this task by the development of new cement binders based on alkali-activated systems and new supplementary cementitious materials (SCMs) which can partly replace the CO2-intensive Portland clinkers in cement blends. A main advantage of solid-state NMR is the equal detection of crystalline and amorphous materials. This is utilized to study disorder in the SCMs introduced either by guest-ion incorporation or thermal treatment procedures.

Our current research in both cementitious materials and heterogeneous catalysts involve collaborations with national and international industrial and academic partners.

Recent publications

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Pistidda, C., Karimi, F., Garroni, S., Rzeszutek, A., Bonatto Minella, C., Milanese, C., Le, T. T., Rude, L. H., Skibsted, J., Jensen, T. R., Horstmann, C., Gundlach, C., Tolkiehn, M., Pranzas, P. K., Schreyer, A., Klassen, T. & Dornheim, M. (2014). Effect of the Partial Replacement of CaH2 with CaF2 in the Mixed System CaH2 + MgB2. The Journal of Physical Chemistry Part C, 118(49), 28409-28417. https://doi.org/10.1021/jp508780b