Development of a miniaturised EPR spectrometer

© Benedikt Schlecker

The "EPR on a Chip" project did start on June 3. 2019 with a kick off meeting in Berlin at HZB.

The "EPR on a Chip" project did start on June 3. 2019 with a kick off meeting in Berlin at HZB. © HZB

Several research institutions are developing a miniaturized electron paramagnetic resonance (EPR) device with industrial partner Bruker to investigate semiconductor materials, solar cells, catalysts and electrodes for fuel cells and batteries. The Federal Ministry of Education and Research (BMBF) is funding the "EPR-on-a-Chip" or EPRoC project with 6.7 million euros. On June 3, 2019, the kick-off meeting took place at the Helmholtz-Zentrum Berlin.

Electron paramagnetic resonance (EPR) provides detailed information about the material's inner structure, down to the atomic level, via the excitation of electron spin in the material. EPR spectroscopy is an important instrument in biophysics, chemistry and medical diagnostics, but is also used in research on energy materials such as catalysts, battery electrodes and solar cell components.

However, EPR spectrometers are usually large and expensive devices that can only be found in particularly well-equipped research laboratories. In addition, it is very difficult to perform investigations under real process conditions (operando measurement) with conventional EPR instruments.

But there is another way: The first demo version of a miniaturized EPR spectrometer was presented in 2017. As part of the BMBF project "EPRoC", a chip-based electron paramagnetic resonance spectroscopy (EPRoC) is to be developed under the direction of Prof. Dr. Klaus Lips and in close cooperation with the University of Stuttgart, the Max Planck Institute for Chemical Energy Conversion, the Karlsruhe Institute of Technology and the Bruker company.

The EPR spectrometer is miniaturized to chip size so that it can even be inserted inside the sample. The aim is to use EPRoC to directly analyze growth processes of thin films for photovoltaics and to investigate and improve catalytic processes during the production of solar hydrogen. This would allow to elucidate how structure formation on the nanoscale is related to the functionality of processes and materials.

During the three-year term of the project, the partners will explore the potential of the technology by further improving the efficiency of the processes and components and reducing costs. In addition, they aim to use EPRoC technology to dramatically improve the sensitivity of nuclear magnetic resonance (NMR) spectrometers. This could also have a long-term impact on magnetic resonance imaging used in medicine.

The findings should ensure that EPRoC technology can be developed to market maturity within the next ten years. The miniaturisation of EPR will open up new fields of application and can lead to faster progress in energy materials research, sensor technology, medicine, environmental technology, as well as food and analytical chemistry.

Partners:
- Helmholtz-Zentrum Berlin, Institute for Nanospectroscopy (HZB), Coordination Prof. Dr. Klaus Lips
- University of Stuttgart
- Karlsruhe Institute of Technology, Institute for Microstructure Technology (KIT)
- Max Planck Institute for Chemical Energy Conversion (MPICEC)
- Bruker Biospin GmbH

arö

  • Copy link

You might also be interested in

  • Ultrafast dissociation of molecules studied at BESSY II
    Science Highlight
    02.12.2024
    Ultrafast dissociation of molecules studied at BESSY II
    For the first time, an international team has tracked at BESSY II how heavy molecules – in this case bromochloromethane – disintegrate into smaller fragments when they absorb X-ray light. Using a newly developed analytical method, they were able to visualise the ultrafast dynamics of this process. In this process, the X-ray photons trigger a "molecular catapult effect": light atomic groups are ejected first, similar to projectiles fired from a catapult, while the heavier atoms - bromine and chlorine - separate more slowly.
  • Protons against cancer: New research beamline for innovative radiotherapies
    News
    27.11.2024
    Protons against cancer: New research beamline for innovative radiotherapies
    Together with the University of the Bundeswehr Munich, the HZB has set up a new beamline for preclinical research. It will enable experiments on biological samples on innovative radiation therapies with protons.
  • Battery research with the HZB X-ray microscope
    Science Highlight
    18.11.2024
    Battery research with the HZB X-ray microscope
    New cathode materials are being developed to further increase the capacity of lithium batteries. Multilayer lithium-rich transition metal oxides (LRTMOs) offer particularly high energy density. However, their capacity decreases with each charging cycle due to structural and chemical changes. Using X-ray methods at BESSY II, teams from several Chinese research institutions have now investigated these changes for the first time with highest precision: at the unique X-ray microscope, they were able to observe morphological and structural developments on the nanometre scale and also clarify chemical changes.