Design of Multibranched Diketopyrrolopyrrole-Polyelectrolytes as Versatile Materials for Efficient Photocatalytic Hydrogen Evolution and Organic Solar Cells
Abstract
Organic semiconductors are attracting increasing attention for both photocatalytic applications and organic solar cells (OSCs). However, achieving highly efficient photocatalytic hydrogen evolution and high power conversion efficiencies (PCEs) in OSCs remains a significant challenge. Herein, we synthesized a series of multibranched polyelectrolytes (MBP), namely DTP, DTIP, and DTPTIP. In comparison to linear polyelectrolytes, MBP with quaternized functionalities exhibits enhanced hydrophilicity, greater dispersity, a smaller contact angle, and reduced charge transport resistance. The properties collectively contribute to improved photocatalytic hydrogen evolution (HER). Among the three MBPs, DTPTIP showed the superior performance, delivering a hydrogen production rate of 55.81 mmolg-1h-1 outperforming DTIP (39.86 mmolg-1h-1) and DTP (31.93 mmolg-1h-1). In OSC systems, MBPs function as cathode interface layers (CILs), reducing the work function of the metal electrodes and facilitating electron transport, thereby improving photovoltaic performance. Notably, DTPTIP achieved an impressive PCE of16.78% in PM6:EH-HD4F-based OSC systems. Furthermore, DTPTIP demonstrated excellent thickness insensitivity; at CIL thickness of 40 nm, the PCE stabilized at 15.52%, underscoring its feasibility for large scale OSC fabrication. Overall, this study highlights the potential of MBPs, especially DTPTIP, as versatile materials for both high efficiency photocatalysis and next generation OSCs.
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