X-ray analysis of carbon nanostructures helps material design

Schematic view of carbon structures with pores.

Schematic view of carbon structures with pores. © HZB

</p> <p>The intensity of the single peak increases as the chlorination temperature increases and carbons show increased order.

The intensity of the single peak increases as the chlorination temperature increases and carbons show increased order. © HZB

Nanostructures made of carbon are extremely versatile: they can absorb ions in batteries and supercapacitors, store gases, and desalinate water. How well they cope with the task at hand depends largely on the structural features of the nanopores. A new study from the HZB has now shown that structural changes that occur due to morphology transition with increasing temperature of the synthesis can also be measured directly – using small-angle X-ray scattering. The results have now been published in the journal Carbon.

Optimized nanoporous carbons can serve as electrodes for fast electron and ion transport or improve the performance of energy storage and conversion devices. Thus the tunability of the size, shape, and distribution of pores is highly required. The team at the HZB Institute for Soft Matter and Functional Materials collaborated with a group at the University of Tartu, Estonia, to inquire the nanoarchitecture, inner surface, size, form and distribution of nanopores in dependence of the synthesis conditions.

From 600 to 1000 degrees

Colleagues in Estonia produced a series of nanoporous carbons by reacting a powder of molybdenum carbide (Mo2C) with gaseous chlorine at 600, 700, 800, 900, and 1000 degrees Celsius. Depending on the synthesis conditions chosen, the nanoporous carbon exhibit different properties such as surface area, porosity, electronic and ionic conductivity, hydrophilicity and electrocatalytic activity.

Small Angle X-ray Scattering SAXS

Surface structures were analysed by transmission electron microscopy at the HZB. The interior surface area of nanocarbon materials is usually investigated by adsorption of gas. However, this method is not only comparatively inaccurate, it also contains no information about the shape and size of the pores. For deeper insights, Dr. Eneli Härk and her colleagues at HZB worked with small-angle X-ray scattering, a technique permitting to obtain information on various structural features on the nanometer scale including the mean pore size.

All about nanopores

Small-angle X-ray scattering not only provides information on the precise inner surface area and the average pore size, but also on their angularity, i.e., sharp edges of formed pores, which play a major role for the functionalization of the materials. “The SAXS analysis summarizes over an enormous amount of micropores omitting misleading assumptions thereby directly relating the nanostructural architecture of the material to macroscopic technical parameters under investigation in engineering” Härk explains. 

The main aim was to understand structural formation, and electrochemical characteristics of carbon as a function of the synthesis temperature. “For optimal function, not only the high inner surface area is crucial, but the pores should have exactly the right shape, size and distribution”, says Härk.

 

The study is published in "Carbon" (2019): Carbide Derived Carbons Investigated by Small Angle X-ray Scattering: Inner Surface and Porosity vs. Graphitization; Eneli Härk, Albrecht Petzold, Günter Goerigk, Sebastian Risse, Indrek Tallo, Riinu Härmas, Enn Lust and Matthias Ballauff.

DOI: 10.1016/j.carbon.2019.01.076

 

arö

  • Copy link

You might also be interested in

  • New technique could make MRI more precise
    Science Highlight
    17.09.2026
    New technique could make MRI more precise
    A team of researchers at the University of Stuttgart and HZB has developed a new method that could make MRI even more precise by eliminating “dead time,” a key limiting factor in the measurement process, thereby enabling the detection of signals that are lost using conventional methods. This method opens up new possibilities for medical diagnostics and non-destructive materials testing. The research team presents the new approach in Science Advances. 
  • Marcel Risch has been appointed Professor at the Freie Universität Berlin
    News
    17.09.2026
    Marcel Risch has been appointed Professor at the Freie Universität Berlin
    Marcel Risch was appointed to a W2-S professorship in the Department of Physics at Freie Universität Berlin in August 2026. His research group has been transformed into the department 'Mechanisms of Sustainable Electrocatalysis'. Risch investigates the fundamental mechanisms of electrocatalytic reactions and, on this basis, develops knowledge- and data-driven strategies to improve electrocatalysts for the sustainable production of hydrogen, fuels and chemicals.
  • BESSY II: High-resolution insights into individual biomolecules and catalysts
    Science Highlight
    15.09.2026
    BESSY II: High-resolution insights into individual biomolecules and catalysts
    Very small biological samples and even individual biomolecules can now be examined under near-physiological conditions with high confidence at the BESSY II infrared beamline with a newly validated and improved technique: The nanoscale infrared spectroscopy (s-SNOM) with ultra-thin silicon-based membranes. An international team demonstrated after an initial proof of concept, that high-resolution (a few tens of nanometres) nano-IR measurements reliably match expected far-field IR spectra in an aqueous environment. This methodological advance provides a solid foundation for studying biomaterials or observing catalytic processes in a liquid environment.