Abstract
Fullerene (C60) is a widely used electron transport layer in inverted perovskite solar cells, yet it faces a critical challenge: optically and thermally induced agglomeration that causes electrical losses in devices. Herein, we develop a corrugated polycarbolong interlocking (CPI) strategy to stabilize the perovskite/C60 interface. The bidirectional coordination motifs of polycarbolong promote uniform C60 deposition and enhance resistance to environmental stress. Its acceptor-π-acceptor-donor framework features triphenylphosphine-based “claws” that strongly anchor C60, while terminal substituents passivate undercoordinated lead-ion sites. Leveraging the CPI strategy, the devices attain a high power conversion efficiency (PCE) of 27.43% and demonstrate remarkable stability under standardized protocols. Unencapsulated devices retain 94.8% and 95.6% of their initial PCEs after 2,200 h under continuous 85°C heating and 1-sun illumination, respectively. Furthermore, the encapsulated devices maintain 92.1% of their original PCE after 1,000 h of damp-heat testing.
| Original language | English |
|---|---|
| Article number | 102589 |
| Journal | Joule |
| DOIs | |
| State | Accepted/In press - 2026 |
Keywords
- corrugated interlocking
- interface engineering
- perovskite solar cells
- polycarbolong
- stress-relieving
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