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Researchers achieve efficient and stable perovskite solar cells through molecular bridge regulation of buried interface

03.11.26 | Dalian Institute of Chemical Physics, Chinese Academy Sciences

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In a study published in Advanced Materials , a research team led by Prof. YANG Dong from the Dalian Institute of Chemical Physics (DICP) of the Chinese Academy of Sciences, in collaboration with Prof. WU Congcong's team from Hubei University, proposed a novel strategy to regulate the buried interface through multifunctional molecular bridges, enabling efficient defect passivation and improved energy-level alignment.

Perovskite materials are regarded as promising candidates for next-generation solar cells owing to their excellent optoelectronic properties. However, during the fabrication of perovskite polycrystalline films, defect formation, lattice mismatch, and energy-level misalignment often arise at the buried interface, which increases non-radiative recombination and accelerates photothermal degradation, limiting the efficiency and long-term stability of perovskite solar cells.

In this study. the researchers employed 4-aminobutylphosphonic acid (4-ABPA) to modify the interface between the SnO 2 electron transport layer and the perovskite layer. The phosphonic acid group anchored onto the SnO 2 surface via covalent P-O-Sn bonding, while the amino group coordinated with Pb 2+ and I - ions in the perovskite lattice, forming a stable molecular bridge. This molecular interlayer provided heterogeneous nucleation sites, facilitated phase transformation, reduced interfacial pinholes, improved crystal orientation and crystallinity, and alleviated residual stress in the perovskite film.

Moreover, the researchers found that 4-ABPA modification enhanced photoluminescence intensity and carrier lifetime while optimizing energy-level alignment between the electron transport layer and the perovskite layer. The voltage loss was reduced to 31 mV, enabling power conversion efficiencies of 25.56% in n-i-p devices with negligible hysteresis and 26.45% in p-i-n architectures. The modified devices showed good long-term stability, retaining 83.91% of their performance after 1,440 hours of continuous operation and 91.59% after 2,600 hours of storage under ambient conditions.

"We develop a systematic buried-interface engineering strategy that improves both the efficiency and stability, offering new insights into the scalable development of perovskite solar cells," said Prof. YANG.

Advanced Materials

10.1002/adma.202519267

Molecular Bridge Regulation of Buried Interface in Perovskite Solar Cells

22-Feb-2026

Keywords

Article Information

Contact Information

Jean Wang
Dalian Institute of Chemical Physics, Chinese Academy Sciences
wangyj@dicp.ac.cn

How to Cite This Article

APA:
Dalian Institute of Chemical Physics, Chinese Academy Sciences. (2026, March 11). Researchers achieve efficient and stable perovskite solar cells through molecular bridge regulation of buried interface. Brightsurf News. https://www.brightsurf.com/news/LQ4063G8/researchers-achieve-efficient-and-stable-perovskite-solar-cells-through-molecular-bridge-regulation-of-buried-interface.html
MLA:
"Researchers achieve efficient and stable perovskite solar cells through molecular bridge regulation of buried interface." Brightsurf News, Mar. 11 2026, https://www.brightsurf.com/news/LQ4063G8/researchers-achieve-efficient-and-stable-perovskite-solar-cells-through-molecular-bridge-regulation-of-buried-interface.html.