Technology Transfer Prize: Tandem solar cells step closer to industrial pilot production

Congratulations! This year's HZB Technology Transfer Prize goes to Dr. Kári Sveinbjörnsson and Bor Li for developing tandem solar cells in cooperation with a leading PV manufacturer.

Congratulations! This year's HZB Technology Transfer Prize goes to Dr. Kári Sveinbjörnsson and Bor Li for developing tandem solar cells in cooperation with a leading PV manufacturer. © S. Zerbe / HZB

Stark im Technologietransfer: Zehn Teams aus dem HZB bewarben sich um den Technologietransfer-Preis – mit einer beeindruckenden Vielfalt an Projekten.

Stark im Technologietransfer: Zehn Teams aus dem HZB bewarben sich um den Technologietransfer-Preis – mit einer beeindruckenden Vielfalt an Projekten. © S. Zerbe / HZB

Tandem solar cells achieve high efficiencies: by combining two different types of solar cells, more sunlight is converted into electricity. PV manufacturer Qcells and a HZB team led by Dr. Kári Sveinbjörnsson and Bor Li have developed the technology to an extent, that Qcells invested in setting up a pilot line for the development of tandem cells in Saxony-Anhalt. For this successful transfer into industrial application, both researchers received the Technology Transfer Prize of the Helmholtz-Zentrum Berlin worth 5,000 euros, on 4. October 2023.

Tandem solar cells consist of a silicon solar cell (bottom cell) and a perovskite solar cell (top cell). The team from the HZB used a commercially produced silicon cell from the company Qcells. Since these are already available on the market, it is more attractive for PV manufacturers to invest in the innovative tandem technology and develop it further for mass production.

The cooperation with manufacturer Qcells has existed since 2018. As part of several projects, a pilot line for perovskite tandem solar cells was developed at HZB, which specifically targets the upscaling of perovskite silicon tandem solar cells. The development of tandem technology on a pilot line at Qcells in Thalheim, Germany, is being funded as part of a European funding project in which HZB is involved as a project partner. “Our collaboration has not only led to demonstrable results, but has also attracted the attention of key players in the PV industry,” says Kári Sveinbjörnsson. “We are very happy about the recognition, as there were a lot of good technology transfer projects in the running,” adds Bor Li.

The award jury, consisting of members of the HZB Industry Advisory Board, justified their decision by saying that the project demonstrates very well how technology transfer can bring research results into application more quickly. They were convinced by the fact that the project had already led to significant investments on both sides.

A total of ten competition entries were submitted by research teams from HZB to this year’s Technology Transfer Prize, demonstrating HZB’s innovative strength in a broad range of applications. Second place went to a team led by Dr. Gert Weber. It developed dyes from cyanobacteria that can be safely used in food, for example. A team led by Dr. Thomas Dittrich received third prize for a newly developed spectrometer that is suitable for photoelectric characterisation of solar cells and high-performance electronics in a wide wavelength range, thus closing a gap in the market. At the award ceremony, the jury was very impressed by the variety of the proposals. This confirmed HZB’s image as a technological think tank.

sz

  • Copy link

You might also be interested in

  • Nanosilver as an electrocatalyst for CO₂ reduction
    Science Highlight
    24.09.2026
    Nanosilver as an electrocatalyst for CO₂ reduction
    Via electrolysis, CO2 can be reduced to CO, a raw material for further chemical products such as fuels. Within the GreenQuest Project, an internation team led by HZB chemist Prashanth Menezes has now systematically investigated catalyst layers made of silver nanoparticles, varying both the size of the particles and their density. The best yield was achieved with nanoparticles with diameters of around 10 nm, which were loosely distributed. Furthermore, they demonstrated how the economic efficiency of the electrochemical cell can be enhanced by integrating an additional chemical reaction at the anode, enabling the simultaneous production of a valuable formic acid, hydrogen, and CO in one device.
  • Spin waves inside a nano-oscillator imaged for the first time
    Science Highlight
    23.09.2026
    Spin waves inside a nano-oscillator imaged for the first time
    For the first time, researchers have directly imaged the magnetisation dynamics inside a spin Hall nano-oscillator — a nanoscale device that converts direct current into tunable microwave signals and is a promising building block for energy-efficient wireless communication and brain-inspired computing. A Swedish–German team led by the University of Gothenburg and Helmholtz-Zentrum Berlin (HZB) achieved this using time-resolved scanning transmission X-ray microscopy at the MAXYMUS instrument at BESSY II. The results, now published in Advanced Materials, reveal spin-wave features that had escaped previous, indirect measurement techniques.
  • 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.