Researchers from the University of Oxford and the Hong Kong University of Science and Technology have developed a fully solvent-free method for producing high-performance perovskite solar cells, overcoming a long-standing materials challenge that has limited vacuum-deposited devices.

Most high-efficiency perovskite solar cells are made using solution-based “inks.” While vacuum deposition is a clean, industry-standard process used for technologies like OLED displays, perovskites made entirely this way have struggled with crystal formation, leading to instability under light and heat.

The researchers introduced lead chloride (PbCl₂) during a multi-source thermal co-evaporation process, enabling precise control over crystal growth and orientation. This adjustment produced highly ordered wide-bandgap perovskite films with improved efficiency, enhanced thermal and photostability, and certified performance of 18.35%, while perovskite-silicon tandem devices achieved efficiencies of 27.2%

The video below tours the fabrication equipment the team used to create this breakthrough.

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Researchers at The Hong Kong Polytechnic University (PolyU) have developed perovskite–organic tandem solar cells with enhanced resistance to shading-related damage.

Thin-film solar technologies can experience reverse-bias stress when partially shaded, reducing efficiency and causing permanent damage. By minimizing defects and suppressing reverse charge transport, the team created tandem devices that retained more than 90% of their initial efficiency under extreme reverse-bias conditions.

This advancement could improve the durability and reliability of thin-film solar technologies for future renewable energy applications.

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