High?Efficiency and Mechanically Robust All?Polymer Organic Photovoltaic Cells Enabled by Optimized Fibril Network Morphology

All?polymer organic photovoltaic (OPV) cells possessing high photovoltaic performance and mechanical robustness are promising candidates for flexible wearable devices. However, developing photoactive materials with good mechanical properties and photovoltaic performance so far remains challenging. In this work, a polymer donor PBDB?TF with a high weight?average molecular weight (Mw) was introduced to enable high?efficient all?polymer OPV cells featuring excellent mechanical reliability. By incorporating the high?Mw PBDB?TF as a third component into the PBQx?TF:PY?IT blend, the bulk heterojunction morphology is finely tuned with a more compact ?–? stacking distance, affording efficient pathways for charge transport as well as mechanical stress dissipation. Hence, all?polymer OPV cells based on the ternary blend film demonstrate a maximum power conversion efficiency (PCE) of 18.2% with an outstanding fill factor of 0.796. The flexible OPV cell delivers a decent PCE of 16.5% with high mechanical stability. Our results present a promising strategy to address the mechanical properties and boost the photovoltaic performance of all?polymer OPV cells.This article is protected by copyright. All rights reserved

» Publication Date: 19/12/2022

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This project has received funding from the European Union's Horizon 2020 research and innovation programme under grant agreement Nº 768737


                   




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