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Verified CAS / Academic Author2 Decoded Studies

Prof. HAN Lijuan

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SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3877-7

Molecular Design and Supramolecular Engineering of Chiral Organic Materials for Circularly Polarized Photodetection

Circularly polarized (CP) photodetectors are pivotal for optical communication, polarization imaging, and target recognition. Chiral organic materials offer structural tunability, solution processability, and compatibility with flexible substrates, yet their development is hindered by synthetic challenges, enantiomeric separation difficulties, and intrinsically weak chiroptical responses. Recent advances in molecular design and solid-state assembly have markedly enhanced device performance. This review summarizes developments in chiral organic materials for CP photodetection, focusing on molecular design and supramolecular engineering. It highlights strategies such as chiral non-fullerene acceptors, cooperative supramolecular polymerization, and chiral 2D supramolecular organization in single crystals, which amplify dissymmetry factors and enable high-performance detection across UV to near-infrared regions. Potential applications in spin-encoded communication, biological sensing, and quantum computing are discussed. The review aims to deepen understanding and foster interdisciplinary research in this emerging field.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3422-1

Vesicle-like polymer/silver composite microspheres with excellent toughness for surface-enhanced Raman scattering

Hollow noble metal microspheres are constrained by intrinsic brittleness, which limits their practical deployment in catalysis, electronics, and chemical detection. This study reports a scalable fabrication route to vesicle-like polystyrene-silver (SPS@Ag) composite microspheres with enhanced toughness. Uniform polystyrene (PS) microspheres of approximately 1.5 μm diameter were synthesized via dispersion polymerization, sulfonated to introduce surface sulfonate groups, and sensitized with Sn2+ ions to facilitate electrostatic adsorption. Subsequent in situ chemical reduction of [Ag(NH3)2]+ yielded well-defined core-shell SPS/Ag composite microspheres with tunable shell thickness controlled by the number of reduction cycles. Removal of the PS core using DMF produced hollow vesicle-like SPS@Ag microspheres. The incorporation of SPS within the silver membrane confers exceptional toughness, mitigating the collapse typically observed during template removal. Surface-enhanced Raman scattering (SERS) performance was evaluated using rhodamine 6G (R6G) as a probe molecule. The vesicle-like SPS@Ag microspheres exhibited a significant increase in Raman enhancement factor compared to their core-shell counterparts, demonstrating their potential as highly efficient SERS substrates for analytical chemistry, sensing technologies, and catalytic processes.