February 2026

Researchers demonstrate in situ detection and accurate repair of defects in printed flexible perovskite photovoltaics

A team of researchers from China has developed a new strategy that tackles crystallographic defects and impurities that cause non-radiative recombination, a key limiting factor for large-area, flexible perovskite photovoltaics. The team demonstrated in situ defect detection and laser-based repair to improve film quality across large areas.

In the new approach, regions with high densities of crystallographic defects and impurities were identified and visually depicted through photoluminescence quantum yield and Urbach energy measurements. A 450 nm laser was then used to precisely and rapidly repair these defective regions, leading to a significant reduction in defect content compared with pristine perovskite films.

Read the full story Posted: Feb 28,2026

New crystal-seeding method boosts the efficiency and scalability of perovskite solar cells

Researchers from the Chinese Academy of Sciences (CAS), The Hong Kong University of Science and Technology and Harbin Engineering University have developed a crystal-solvate (CSV) pre-seeding strategy that significantly boosts both the efficiency and scalability of inverted perovskite solar cells (PSCs). The study demonstrates a new approach for regulating buried interfacial structures in solution-processed perovskite films - recognized as a major obstacle to stability and efficiency improvement.

Inverted PSCs, which reverse the conventional layer sequence by placing the hole-transport layer beneath the perovskite absorber, offer superior compatibility with scalable solution-processing methods. However, their performance has been limited by uncontrolled microstructure and electronic defects at the buried interface between the perovskite and the self-assembled monolayer (SAM). The new CSV pre-seeding method directly tackles this issue by introducing pre-deposited low-dimensional halide crystal-solvate (CSV) seeds - with the representative composition PDPbI₄·DMSO - onto SAM-modified substrates before perovskite deposition.

Read the full story Posted: Feb 27,2026

New approach promotes fully solvent‑free perovskite solar cell technology

Researchers from the University of Oxford, The Hong Kong University of Science and Technology (HKUST), RISE Research Institutes of Sweden, HZB and Université Grenoble Alpes (CEA) have developed a multi-source co-evaporation strategy that enhances the crystal quality of vacuum-deposited perovskite films. The team stated that this advance brings all vacuum-deposited single-junction perovskite cells as well as perovskite-on-silicon tandem solar cells closer to scalable production. 

Schematic of device architecture for all-vacuum-deposited WBG PSCs. Image from: Nature Materials

Many perovskite solar cells use solution “inks" in their design, while many industrial thin-film products (from OLED displays to optical coatings) are produced by vacuum deposition - a clean, solvent-free process that can coat large areas very uniformly. However, when perovskites are fabricated entirely by vacuum deposition, the crystals can form in less-than-ideal ways, leaving the films more defect-prone and significantly unstable.

Read the full story Posted: Feb 26,2026

Water-resistant perovskite solar cells harvest energy from both the sun and rain

Researchers from Spain's Materials Science Institute of Seville (CSIC-US) and the University of Seville recently developed a multifunctional fluorinated polymer (CFₓ) thin film deposited via plasma technology, enabling hybrid perovskite solar cells (PSCs) to harvest energy from both sunlight and raindrops while boosting environmental durability.

This room-temperature, solvent-free plasma process coats PSCs conformally up to 400 nm thick, delivering over 90% optical transparency that preserves champion power conversion efficiency (PCE) at 17.9%. The film's fluorine-rich groups (optimized to 36.4% CF₂ + CF₃ species) repel moisture, allowing cells to retain over 50% initial PCE after 10 days of high humidity-temperature stress and enabling compatibility with commercial UV-curable resins for 15-minute water immersion tolerance. As a triboelectric layer atop an FTO electrode, it converts raindrop kinetic energy via contact electrification and electrostatic induction in a drop-driven TENG (D-TENG) setup.

Read the full story Posted: Feb 26,2026

Researchers develop bicarbazole-based SAM to enhance PSC interface stability

Researchers from China's Southern University of Science and Technology, Xi’an Jiaotong University, City University of Hong Kong, Eastern Institute of Technology and Shenzhen Polytechnic University have developed a new molecular engineering strategy that overcomes a known bottleneck in perovskite solar cell (PSC) interfaces - self-aggregation of hole-selective self-assembled monolayers (SAMs) leading to poor interfacial contact and energy loss.

While perovskite solar technology made great strides in recent years, fine control of interfacial chemistry remains one of the key challenges limiting long-term stability and reproducibility. Conventional hole-transport SAMs often suffer from excessive intermolecular interactions, causing aggregation and misaligned energy levels that degrade charge extraction.

Read the full story Posted: Feb 26,2026

Hefei Puskai New Energy announces production of perovskite curved automotive photovoltaic glass

According to reports, China-based Hefei Puskey New Energy Technology, in cooperation with a leading domestic automaker, successfully developed the first 300mm×300mm integrated perovskite curved automotive photovoltaic glass (CIPV). This marks a key advance in perovskite automotive photovoltaic technology in terms of integrated curved molding, large-area preparation and vehicle adaptability, providing a new solution for energy self-sufficiency in new energy vehicles.

Hefey Puskai company logo image

The curved automotive perovskite photovoltaic glass utilizes the company's independently developed patented perovskite CVD dry process technology and integrated molding process for curved automotive glass. While maintaining a standard 300mm×300mm pilot-scale size, it achieves stable matching with the curvature of the vehicle body. Compared to other automotive photovoltaic systems, the curved perovskite photovoltaic glass, molded integrally with glass, boasts high light transmittance, high weather resistance, and high power generation efficiency. It can be directly integrated into curved areas such as roofs, sunroofs, and hoods, significantly improving adaptability. This adresses industrialization pain points such as uneven bonding of flexible perovskite films to glass, bubbling and wrinkling, poor adhesion, and excessive thickness affecting aesthetics. It can provide vehicles with a range extension of over 20 kilometers, driving a CIPV market scale of over 10GW.

Read the full story Posted: Feb 25,2026

First Solar and Oxford PV enter into patent licensing agreement for US markets

First Solar has announced a patent licensing agreement that gives it access to existing issued patents and currently pending patent applications of Oxford Photovoltaics (“Oxford PV”).

The non-exclusive license paves the way for First Solar, a giant in the solar field and the world’s largest producer of thin film solar technology, to continue advancing its development of photovoltaic (PV) solar devices employing a perovskite semiconductor for potential applications in the US utility-scale, commercial and industrial and residential markets. The scope of the license covers the potential manufacturing and distribution of such products in the US and excludes crystalline silicon semiconductors. Other terms were not disclosed.

Read the full story Posted: Feb 25,2026

Researchers tune p-type conductivity in CsPbBr₃ for improved perovskite solar cells

Researchers from China's Beihua University have developed a heterovalent doping approach to achieve controllable p-type behavior in lead halide perovskites, offering a promising route toward more efficient perovskite-based solar cells. Their work focuses on the systematic substitution of group-IB metal ions - gold (Au⁺), silver (Ag⁺), and copper (Cu⁺) - into the B-site of the all-inorganic perovskite CsPbBr₃ lattice.

The motivation behind the study lies in a well-known hurdle for perovskite optoelectronics: while intrinsic CsPbBr₃ exhibits excellent light absorption and stability, it lacks effective p-type conductivity control, which is essential for forming high-performance p–n junctions in solar devices. To overcome this, the Beihua team applied first-principles density functional theory (DFT) to model how different dopant ions and concentrations influence the material’s structure, electronic configuration, and optical response.

Read the full story Posted: Feb 25,2026

Speaker Callout: Perovskite Connect 2026

Following a highly successful edition last year, Perovskite Connect returns to Berlin in 2026 - bringing together researchers, industry leaders, and innovators advancing the perovskite ecosystem.

Perovskite Connect 2025 banner

With the program rapidly taking shape, limited speaking opportunities remain. We are now inviting contributions on topics such as:

  • Recent progress in perovskite materials and device performance
  • Pathways toward commercialization and scalability
  • Stability, reliability, and manufacturing challenges
  • Applications beyond photovoltaics

If you’re driving progress in perovskite science or technology, we’d be delighted to have you share your perspective with our global community. Perovskite Connect will take place in Berlin, Germany, on October 21-22. 

Join us in building on last year’s momentum and shaping the conversation around the next phase of perovskite innovation. Contact us for any questions or details!

Read the full story Posted: Feb 24,2026

Researchers develop electroluminescent perovskite QD synapses for energy-efficient multitasking neural networks

Researchers from Korea University and the Korea Institute of Science and Technology have developed a mixed-dimensional perovskite quantum dot–based synaptic array that utilizes the unique optoelectronic properties of halide perovskites for multitasking (MT) learning. The team fabricated dual-output electroluminescent synaptic devices using Cs₁₋ₓFAₓPbBr₃ (0.00 ≤ x ≤ 0.15) quantum dots, enabling the concurrent processing of postsynaptic current (PSC) and postsynaptic electroluminescence (PSEL) signals within a single device architecture.

 Cognitive-inspired MT processing with PSC and PSEL outputs. Image from: Science Advances

Halide perovskites combine high electronic conductivity with strong light emission and compositional tunability, making them suitable for applications requiring coupled electrical–optical responses. In this system, adjusting the FA⁺ concentration and input pulse parameters modulated both the electrical and optical signal ranges, allowing the devices to achieve up to 1,000 accessible synaptic states. The array exhibited stable long-term potentiation/depression, paired-pulse facilitation, and spike-rate-dependent plasticity.

Read the full story Posted: Feb 24,2026