Shedding light on insulators: how light pulses unfreeze electrons

When nickel oxide (NiO) is excited with ultrashort UV light pulses, electron repulsions briefly become weaker, making the insulator behave more like a metal. To capture this effect, the researchers probed the material with multicolored UV pulses and measured their absorption and reflectivity. The results reveal unprecedented control over electron repulsions using light.

When nickel oxide (NiO) is excited with ultrashort UV light pulses, electron repulsions briefly become weaker, making the insulator behave more like a metal. To capture this effect, the researchers probed the material with multicolored UV pulses and measured their absorption and reflectivity. The results reveal unprecedented control over electron repulsions using light. © T. Rossi /HZB

Metal oxides are abundant in nature and central to technologies such as photocatalysis and photovoltaics. Yet, many suffer from poor electrical conduction, caused by strong repulsion between electrons in neighboring metal atoms. Researchers at HZB and partner institutions have shown that light pulses can temporarily weaken these repulsive forces, lowering the energy required for electrons mobility, inducing a metal-like behavior. This discovery offers a new way to manipulate material properties with light, with high potential to more efficient light-based devices.

In most metal oxides, electrons behave like cars stuck in traffic: strong repulsive forces prevent them from moving into neighboring sites already occupied by other electrons, effectively freezing them in place. Materials governed by these repulsions (or correlations) conduct electricity poorly and underperform in, e.g. solar energy conversion.

Researchers from HZB and partner institutions have now shown that ultrashort light pulses lasting just a few tens of femtoseconds can temporarily weaken these repulsive forces. For a brief moment, electrons are able to move at a lower energy cost, making the material behave more like a metal. Unlike conventional methods that rely on temperature, pressure, or chemical changes to alter conduction, this approach uses light to achieve the same effect at ultrashort timescales.

To capture this effect on ultrafast timescales, the HZB team joined forces with several partners. The experiment took place at the LACUS in Lausanne (Switzerland), a centre specializing in ultrafast science, while the sample characterization, data analysis, and simulations were carried out using HZB infrastructure.

The team focused on nickel oxide (NiO), a charge-transfer insulator with an electronic structure similar to high-temperature superconductors. In NiO, they achieved unprecedented control: the reduction in electron repulsion scales linearly with light intensity, persists for hundreds of picoseconds, and relaxes back to equilibrium at the same pace regardless of excitation density. Altogether, these properties open exciting new perspectives for more efficient light-based devices, and next-generation technologies combining wide dynamic ranges of operation with ultrafast switching speeds.

Other contributors

  • Max Planck Institute for the Structure and the Dynamics of Matter (Germany)
  • Helmholtz Center for Materials and Energy (Germany)
  • Elettra Synchrotron Trieste (Italy)
  • Paul Scherrer Institute (Switzerland)
  • University of Basel (Switzerland)
  • University of California Davis (USA)
  • Simons Foundation Flatiron Institute (USA)

Text: Thomas Rossi

  • Copy link

You might also be interested in

  • 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.
  • 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. 
  • 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.