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Updated: Jul 4, 2026

Flash Infrared Annealing for Perovskite Solar Cell Processing
Published on: February 3, 2021
Unlocking 27.3% Perovskite Solar Cells and Ultra-Stable Flexible Modules via Multidentate Molecular-Mediated
Bojun Li1, Jike Ding1, Zuolin Zhang1
1State Key Laboratory of Smart Power Distribution Equipment and System, School of Materials Science and Engineering, Hebei University of Technology, Tianjin, P. R. China.
Abstract:
This study presents a groundbreaking strategy for overcoming critical limitations in inverted perovskite solar cells (PSCs) by introducing multidentate molecular-mediated buried-interface reconstruction. Focusing on the persistent challenges of chemical and electronic disorder at the NiOx/self-assembled monolayer (SAM) interface, we utilize a bisphosphonate molecular mediator to orchestrate a coherent interfacial framework. This strategy simultaneously passivates NiOx defects, regulates SAM assembly, and coordinates with undercoordinated Pb2+ at the perovskite interface. The resulting multidentate interaction not only homogenizes the interfacial energetics but also suppresses nonradiative recombination, thereby stabilizing carrier dynamics and enhancing device performance. With this approach, we achieve champion-certified efficiencies of 27.31% for small-area rigid PSCs, 24.52% for flexible devices, and 17.11% for large-area flexible modules (684.75 cm2). Remarkably, the engineered interface also demonstrates exceptional durability, with flexible modules retaining over 94% of their initial power output after 3250 h of operation. This work establishes a scalable and versatile paradigm for buried-interface engineering in PSCs, offering a path toward the development of high-performance, ultra-stable flexible photovoltaics with broad application potential.
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