Long-term stability for perovskite solar cells: a big step forward

A fluorinated compound between the perovskite and the buckyball (C<sub>60</sub>) contact layer forms an almost monomolecular film that acts as a chemical protective barrier and increases the stability of the cell.&nbsp;

A fluorinated compound between the perovskite and the buckyball (C60) contact layer forms an almost monomolecular film that acts as a chemical protective barrier and increases the stability of the cell.  © Guixiang Li/Nature Photonics 2025

Perovskite solar cells are inexpensive to produce and generate a high amount of electric power per surface area. However, they are not yet stable enough, losing efficiency more rapidly than the silicon market standard. Now, an international team led by Prof. Dr. Antonio Abate has dramatically increased their stability by applying a novel coating to the interface between the surface of the perovskite and the top contact layer. This has even boosted efficiency to almost 27%, which represents the state-of-the-art. After 1,200 hours of continuous operation under standard illumination, no decrease in efficiency was observed. The study involved research teams from China, Italy, Switzerland and Germany and has been published in Nature Photonics.

‘We used a fluorinated compound that can slide between the perovskite and the buckyball (C60) contact layer, forming an almost compact monomolecular film,’ explains Abate. These Teflon-like molecular layer chemically isolate the perovskite layer from the contact layer, resulting in fewer defects and losses. Additionally, the intermediate layer increases the structural stability of both adjacent layers, particularly the C60 layer, making it more uniform and compact. ‘It's actually like the Teflon effect,’ says Abate. ‘The intermediate layer forms a chemical barrier that prevents defects while still allowing the electric contact.’

Much of the experimental research was conducted by the first author, Guixiang Li, while he was a PhD student in Abate's team. Guixiang Li is now a professor at Southeast University in Nanjing, China, and continues the collaboration. The study also involved teams from the École Polytechnique Fédérale de Lausanne (EPFL) and Imperial College London.

High efficiency plus stability

Using this approach, perovskite solar cells can achieve a lab-scale efficiency of 27 per cent, which is slightly higher than the 26 per cent efficiency without the intermediate layer. The increase in stability is huge: even after 1,200 hours of continuous illumination by a ‘standard sun’, this high efficiency does not decrease. ‘1,200 hours correspond to one year of outdoor use,’ Abate emphasises. In the comparison cell without the ‘Teflon layer’, the efficiency dropped by 20 per cent after just 300 hours. The coating also provides exceptional thermal stability when aged for 1,800 hours at 85 °C and tested for 200 cycles between –40 °C and +85 °C. The perovskite solar cells presented here have an inverted (p-i-n) structure, which lends itself particularly well to use in tandem cells, for example in combination with silicon cells.

The idea had been germinating for years

"The idea of using such Teflon-like molecules to form an intermediate film has been on my mind since my postdoctoral days in Henry Snaith’s lab, who did pioneer research on the perovskite materials. At that time, in 2014, the efficiency was only 15 per cent, declining significantly within a few hours. We have made huge progress," says Abate. These results pave the way for the next generation of highly efficient and highly stable perovskite-based optoelectronic devices.

 

arö

  • Copy link

You might also be interested in

  • Nanosilver as an electrocatalyst for CO&#8322; 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.
  • Joint power instead of duplicate structures:
    News
    18.09.2026
    Joint power instead of duplicate structures:
    Berlin’s research community is further advancing its research excellence by establishing a high-performance, cross-institutional infrastructure for data and AI. With a joint agreement signed on 18 September 2026, the Berlin University Alliance (BUA), the Helmholtz-Zentrum Berlin (HZB) and the Zuse Institute Berlin (ZIB) are paving the way for a joint data science and AI centre in Berlin-Dahlem and Adlershof.