Nanodiamonds can be activated as photocatalysts with sunlight

The illustration shows two variants of nanodiamond materials with different surfaces: C<sub>230</sub>H<sub>106</sub> on the left, C<sub>286</sub>H<sub>68</sub> on the right. Sp3 C atoms (diamond) black, sp3x C atoms (fullerene-like) brown, H atoms: Light grey. When the surface is partially covered by hydrogen atoms, nanodiamonds can absorb light&nbsp; in the visible range and emit electrons into solution.

The illustration shows two variants of nanodiamond materials with different surfaces: C230H106 on the left, C286H68 on the right. Sp3 C atoms (diamond) black, sp3x C atoms (fullerene-like) brown, H atoms: Light grey. When the surface is partially covered by hydrogen atoms, nanodiamonds can absorb light  in the visible range and emit electrons into solution. © T. Kirschbaum / HZB

Nanodiamond materials have potential as low-cost photocatalysts. But until now, such carbon nanoparticles required high-energy UV light to become active. The DIACAT consortium has therefore produced and analysed variations of nanodiamond materials. The work shows: If the surface of the nanoparticles is occupied by sufficient hydrogen atoms, even the weaker energy of blue sunlight is sufficient for excitation. Future photocatalysts based on nanodiamonds might be able to convert CO2 or N2 into hydrocarbons or ammonia with sunlight.

 

Nanodiamond materials have great potential as catalysts. Inexpensive nanoparticles made of carbon provide very large surfaces compared to their volume. However, to catalytically accelerate chemical reactions in an aqueous medium, electrons from the catalyst need to go into solvation and this requires in pure diamond materials high-energy UV light for excitation. On the other hand, the extremely small sizes of the nanoparticles allow new molecular states on the surfaces of nanodiamonds that also absorb visible light. 

Different surfaces

As part of the DIACAT project, a team at HZB has now investigated different variants of nanodiamond materials during excitation with light and analysed the processes with extremely high time resolution. Nanodiamond samples with different surface chemistries were produced by the group of Dr. Jean-Charles Arnault, CEA, France and Prof. Anke Krueger, now at the University of Stuttgart. The nanoparticles differed in their surfaces, which contained different amounts of hydrogen or oxygen atoms.

Hydrogen helps - and fullerene-like carbon too

"The hydrogen on the surfaces makes electron emission much easier," explains Dr Tristan Petit, nanodiamond expert at HZB. "Among the many variants, we discovered that a certain combination of hydrogen as well as fullerene-like carbon on the surfaces of the nanoparticles is ideal," he says.

Ultrafast laser excitations

In the ULLAS femtosecond laser facility at HZB they studied aqueous nanodiamond dispersions with different surface terminations such as hydrogen, -OH or -COOH after exciting them with ultrafast laser pulses. “We were able to experimentally measure exactly how the absorption profile behaves with different excitation wavelengths in the UV range at 225 nm and with blue light in the visible range at 400 nm”, explains Dr Christoph Merschjann, HZB.

Picoseconds after the excitation

"We wanted to find out what happens in the first crucial picoseconds after excitation with light, because that is the time when an electron leaves the surface and goes into the water," says Merschjann. The theory team led by Dr Annika Bande contributed modelling with density functional theory to interpret the spectra. The data showed, as expected, that UV light brings electrons into solution in all samples, but for those samples that had fullerene-like carbon on their surfaces, this was also achieved with visible light.

Blue light can work

"In this work we show - to the best of our knowledge for the first time - that the emission of solvated electrons from nanodiamonds in water is possible with visible light!", Petit summarises the results. This is a decisive step towards opening up nanodiamond materials as photocatalysts. These inexpensive and metal-free materials could be a key to further processing CO2 into valuable hydrocarbons with sunlight in the future, or even to convert N2 into ammonia.

Note: DIACAT has received funding from the European Union's Horizon 2020 Research and Innovation Programme under Grant Agreement no 665085.

arö

  • Copy link

You might also be interested in

  • 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.
  • New method shows how molecular switches are influenced by their neighbors
    Science Highlight
    11.09.2026
    New method shows how molecular switches are influenced by their neighbors
    Researchers at Friedrich Schiller University Jena and the Helmholtz Centre Berlin (HZB) have, for the first time, been able to directly observe how the environment surrounding a molecular switch influences its electronic structure. Molecular switches are molecules that can be switched between two states by external influences such as changes in temperature—similar to a switch with the positions »On« and »Off«. Such molecules are being investigated as potential building blocks for future data storage devices or sensor materials. Using magnetic-field-dependent terahertz spectroscopy, the researchers have now, for the first time, been able to distinguish whether neighbouring molecules in a material are in the same or different states. The results have been published in the journal »Angewandte Chemie International Edition«.
  • SEAlab accelerator project completed: Achievements and outlook
    Interview
    10.09.2026
    SEAlab accelerator project completed: Achievements and outlook
    The SEAlab accelerator project successfully completed its final measurement campaign in summer 2026. The facility is now being dismantled, with many components set to be reused. The two accelerator physicists, Axel Neumann and Thorsten Kamps, explain what the project has achieved and provide an outlook for the future.