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Bio-inspired multiscale design for perovskite solar cells

  • Tianwei Duan
  • , Peijun Guo
  • , Sascha Feldmann
  • , Carolin M. Sutter-Fella
  • , Yuanyuan Zhou*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Metal halide perovskite semiconductors have attractive light-harvesting and charge-carrier transport properties for photovoltaics. Perovskite solar cells (PSCs) and modules have demonstrated their commercial promise with high power conversion efficiencies, but still face stability challenges. In this Review, we explore how biomaterials offer design inspiration for the development of durable and efficient PSCs at three different scales. At the molecular level, bio-inspired molecular interactions are harnessed towards crystallization control and degradation prevention, which offers an enhancement in long-term maximum-power-point tracking stability. At the microstructural level, self-healing and strength-enhancing strategies, utilizing dynamic bonds and interfacial reinforcement, can help PSCs to recover from physical damage and maintain high performance. At the device level, macroscopic functionalities, such as moth-eye-inspired structures tailored to different layers, can collectively enable antireflection, radiative cooling and self-cleaning to optimize light management, heat dissipation and encapsulation in PSCs. Bio-inspired PSC research can combine improved efficiency and lifetime, with abundant, biocompatible alternatives to conventional stabilizers. Future efforts should focus on screening bioinspired molecules to optimize film crystallization and stability, developing self-healing mechanisms triggered by operational stress, designing cost-efficient biomicrostructures, and integrating multifunctional encapsulation to enhance the efficiency and lifespan of PSCs.
Original languageEnglish
Pages (from-to)638-655
JournalNature Reviews Clean Technology
Volume1
Issue number9
Online published15 Jul 2025
DOIs
Publication statusPublished - Sept 2025
Externally publishedYes

Funding

The authors acknowledge funding support from the National Natural Science Foundation of China (NSFC) Excellent Young Scientists Fund (grant 52222318), the NSFC — Hong Kong Research Grant Council (RGC) Collaborative Research Scheme (grant CRS_HKUST203/23), the RGC Collaborative Research Fund (grant C2001-23Y), the RGC General Research Fund (grant 12300923) and a startup grant from HKUST. Y.Z. also acknowledges support from the China Merchants Group, particularly China Merchants Testing Certification International Co. Ltd and the China Merchants Research Institute of Advanced Technology Co. Ltd for translating fundamental research into future technology innovation. The support from the Otto Poon Centre for Climate Resilience and Sustainability at HKUST is also acknowledged. Work at Yale University was supported by the National Science Foundation under grant CHE-2305138. C.M.S.-F. acknowledges support through the Molecular Foundry, Office of Science, Office of Basic Energy Sciences, of the US Department of Energy under contract number DE-AC02- 05CH11231. The authors thank K. Zhu and J. Berry for their contributions to this paper.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

RGC Funding Information

  • RGC-funded

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