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Zwitterionic BioinspiredAcceptor–Acceptor(A<sub>1</sub>–A<sub>2</sub>) Type Interlayers for OrganicSolar Cells

2026-06-01 · Figshare

One-line summary

A solar energy research paper on Zwitterionic BioinspiredAcceptor–Acceptor(A<sub>1</sub>–A<sub>2</sub>) Type Interlayers for OrganicSolar Cells.

Engineering notes

Engineering notes will be added by the Power for Solar editorial team.

Chinese explanation / 中文解读

中文解读待补充:本站会优先为光伏效率、钙钛矿太阳能电池、储能技术、太阳能热利用、BIPV、并网技术等高价值论文补充中文说明。

Original abstract

The design of interlayer materials featuring precisely matched electronic properties with the active layer materials and robust thickness tolerance is crucial for advancing organic solar cell (OSC) performance and commercialization. Zwitterionic polymers have been investigated extensively as interlayer materials in organic electronics. However, sulfobetaine (SB) has been the most widely adopted zwitterionic chains, while other cation–anion combinations remain largely unexplored, and the contribution of the anionic groups in zwitterions is still a mystery. Here, we explored a bioinspired zwitterionic interlayer material, engineered through the synergistic integration of fluorinated phosphatidylcholine-based polar side chains and an acceptor–acceptor (A<sub>1</sub>–A<sub>2</sub>) conjugated backbone. Such a synchronous side chain/backbone “surgery” simultaneously achieves deep frontier molecular orbital energy levels aligned with state-of-the-art electron acceptors, suppressed parasitic absorption, highly ordered molecular packing, and reduced hydrophilicity. The resulting interlayer material, PDITz-PC, demonstrates strong work function modification, superior electrical properties, and excellent interfacial contact. In OSCs, PDITz-PC enables impressive power conversion efficiencies (PCEs) for both small area (0.04 cm<sup>2</sup>) and large area (0.6 cm<sup>2</sup>) devices across various active layer systems, accompanied by significantly improved operational device stability, attributed to enhanced exciton dissociation, improved charge transport, and suppressed charge recombination. Notably, PDITz-PC exhibits good thickness tolerance, solar cells retaining 92% of the peak PCE even at an interlayer thickness of 115 nm. This work highlights the critical need to synchronize interlayer design with advancements in active-layer materials via the harmonized engineering of side chains and backbones, offering a strategic route to achieving high-performance, durable, and scalable organic photovoltaics.

5.0Engineering value
7.0Research novelty
4.0Business relevance

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