A simpler way to inorganic perovskite solar cells

Under the scanning electron microscope, the CsPbI<sub>3</sub> layer (large blocks in the upper part of the image) on the FTO substrate looks almost exactly the same after annealing in ambient air as after annealing under controlled conditions.

Under the scanning electron microscope, the CsPbI3 layer (large blocks in the upper part of the image) on the FTO substrate looks almost exactly the same after annealing in ambient air as after annealing under controlled conditions. © HZB

Die Box-Chart-Statistik zeigt Wirkungsgrade von Solarzellen, die unter kontrollierten Bedingungen hergestellt wurden im Vergleich mit Solarzellen, die in Umgebungsluft gegl&uuml;ht wurden. &nbsp;

Die Box-Chart-Statistik zeigt Wirkungsgrade von Solarzellen, die unter kontrollierten Bedingungen hergestellt wurden im Vergleich mit Solarzellen, die in Umgebungsluft geglüht wurden.   © HZB

Inorganic perovskite solar cells made of CsPbI3 are stable over the long term and achieve good efficiencies. A team led by Prof. Antonio Abate has now analysed surfaces and interfaces of CsPbI3 films, produced under different conditions, at BESSY II. The results show that annealing in ambient air does not have an adverse effect on the optoelectronic properties of the semiconductor film, but actually results in fewer defects. This could further simplify the mass production of inorganic perovskite solar cells.

Metal halide perovskites have optoelectronic properties that are ideally suited for photovoltaics and optoelectronics. When they were discovered in 2009, halide perovskites in solar cells achieved an efficiency of 3.9 per cent, which then increased extremely fast. Today, the best perovskite solar cells achieve efficiencies of more than 26 per cent. However, the best perovskite semiconductors contain organic cations such as methylammonium, which cannot tolerate high temperatures and humidity, so their long-term stability is still a challenge. However, methylammonium can be replaced by inorganic cations such as Cesium (Cs). Inorganic halide perovskites with the molecular formula CsPbX3 (where X stands for a halide such as chloride, bromide and iodide) remain stable even at temperatures above 300 °C. CsPbI3 has the best optical properties for photovoltaics (band gap ∼1.7 eV).

Production in glove boxes

Perovskite semiconductors are produced by spin coating or printing from a solution onto a substrate and are typically processed in glove boxes under a controlled atmosphere: There, the solvent is evaporated by heating, after which a thin layer of perovskite crystallizes. This 'controlled environment' significantly increases the cost and complexity of production.

...or ambient conditions

In fact, CsPbI3 layers can also be annealed under ambient conditions without loss or even with an increase in efficiency of up to 19.8 per cent, which is even better than samples annealed under controlled conditions.

What happens at the interfaces?

"We investigated the interfaces between CsPbI3 and the adjacent material in detail using a range of methods, from scanning electron microscopy to photoluminescence techniques and photoemission spectroscopy at BESSY II," says Dr. Zafar Iqbal, first author and postdoctoral researcher in Antonio Abate's team.

BESSY II unveils a surface modification

At BESSY II, the team of Prof. Marcus Bär used hard X-ray photoelectron spectroscopy (HAXPES) to analyse the chemical and electronic structure of the differently annealed CsPbI3 and perovskite/hole transport layer interfaces. "In the samples that were annealed in ambient air, we observed a surface modification that improves the mobility of the charge carriers at the interface," explains Iqbal. Optical spectroscopy showed that annealing in air resulted in fewer defects.

Upscaling might become simpler

"Our study explains why the annealing of CsPbI3 films in ambient air works well," says Iqbal. This could be particularly interesting for upscaling processes for potential mass production.

Note: Zafar Iqbal was financed by a fellowship by Deutscher Akademischer Austauschdienst (DAAD) during his PhD in the Abate Group.

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.
  • 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.