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Verified CAS / Academic Author2 Decoded Studies

Prof. SUN Chunlong

Tianjin University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3628-3

Regulating Solution Aggregation and Entanglement for Efficient Self-Powered All-Polymer Photodiodes in Water Quality Monitoring

The solution aggregation structures of conjugated polymers are pivotal in determining their film morphology and optoelectronic properties, yet the relationship between solution aggregation and device performance remains elusive in organic photodiode (OPD) systems. Herein, we introduce the first examination of solution aggregation structures of all-polymer OPD blends, with a focus on how molecular entanglement modulates aggregation behavior and subsequent photodiode performance of low-cost poly(3-pentylthiophene). Using small-angle neutron scattering and freeze-dried imaging, we provide a comprehensive analysis of the solution-state aggregation behavior of poly(3-pentylthiophene) and its evolution in the blend, revealing profound impacts on film morphology and device performance. With finely optimized aggregation, the resulting all-polymer OPD achieves a record-high specific detectivity of ~4×10^13 Jones at zero bias, outperforming all bulk heterojunction (BHJ)-type self-powered OPDs reported to date. This device also demonstrates remarkable thermal stability, with negligible performance degradation after over 800 h of thermal annealing at 85 °C. Furthermore, the self-powered OPD exhibits excellent performance across a broad spectral range, enabling its application in both water quality monitoring and biosensing. This work offers new insights into the solution aggregation behavior of conjugated polymers in OPDs and highlights the importance of resolving solution aggregation in optimizing device function.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3406-2

Unlocking Intrinsic Stretchability in PM6-Based Materials for Next-Generation Solar Cells: Challenges and Innovations

Intrinsically stretchable organic solar cells (IS-OSCs) are critical for wearable and portable power, yet state-of-the-art PM6-based active layers exhibit fracture strains below 8% and high elastic modulus due to rigid conjugated backbones. This tutorial review systematically examines strategies to enhance mechanical resilience while preserving photovoltaic performance. We analyze third-component incorporation—guest polymer donors/acceptors and insulating polymers—as a primary route to improve stretchability, with specific examples achieving crack-onset strain (COS) exceeding 40% via flexible spacer-block multi-component copolymerized donors (Energy Environ Sci, 2024, 17: 9359–9374). Structural design of PM6 aimed at reducing backbone rigidity is discussed, including non-covalent interactions with polyvinyl chloride that yield excellent mechanical properties and stability (Angew Chem Int Ed, 2023, 62: e202312357). Predictive models for mechanical properties are summarized, encompassing modulus, COS, and fracture strain. Recent advances report mechanically robust OSCs with 19% efficiency (Adv Mater, 2024, 36: 2312805) and certified flexible organic photovoltaics beyond 19% via synergistic multimodal energy dissipation (Adv Mater, 2025, 37: 2411989). Insulating polymer-mediated stability and performance are shown to depend on molecular weight (Adv Funct Mater, 2024, 34: 2408340). The review concludes with future challenges and perspectives for stretchy OSCs, emphasizing the trade-off between efficiency and mechanical robustness.