TY - JOUR
T1 - AIE/CPL dual-functional poly(aryl isocyanide)s synthesized using (S,S)-bis(oxazolinylphenyl)amido-ligated palladium phenylethynyl complexes
T2 - high-security anti-counterfeiting and targeted cellular imaging
AU - Yu, Beiming
AU - Jia, Shuling
AU - Zhu, Xuanren
AU - Li, Jiaojiao
AU - Sun, Changguo
AU - Ma, Chao
AU - Ma, Shuangshuang
AU - Wu, Minjian
AU - Hu, Zhiyuan
AU - Wu, Xiaolu
AU - Gao, Guangpeng
AU - Li, Xiaofang
N1 - Publisher Copyright:
This journal is © The Royal Society of Chemistry, 2026.
PY - 2026
Y1 - 2026
N2 - Poly(aryl isocyanide)s (PAIs) with dual aggregation-induced emission (AIE) and circularly polarized luminescence (CPL) activities have emerged as promising candidates for advanced functional materials due to their unique helical conformations, structural adjustability, and excellent optical properties. Herein, various AIE/CPL dual-functional PAIs are successfully synthesized via coordination (co)polymerization of functional aryl isocyanides catalysed by a series of air-stable (S,S)-bis(oxazolinylphenyl)amido-ligated palladium(ii) phenylethynyl complexes (R2-(S,S)-BOPA)PdCCC6H5 (1a–1d). AIE-active moieties, chiral d/l-menthyl-ester and d/l-amino acid groups, and oligo(ethylene glycol) (OEG) segments are rationally integrated into the side chains of PAIs to endow AIE activity, CPL performance, biocompatibility, and processability. These properties of PAIs are investigated in detail. The results show that their optimal fluorescence quantum yield (ΦFL) reaches 24.1%, and the maximum absolute value of luminescence dissymmetry factor (|glum|) is 1.4 × 10−3. In anti-counterfeiting applications, PAI-based inks and films achieve “invisible under natural light–visible under UV irradiation” luminescence switching and unique CPL chiral signals, showing excellent anti-counterfeiting security and stability. In cellular imaging, OEG-modified PAIs realize precise subcellular targeting imaging, accompanied by low cytotoxicity and good in vivo biocompatibility. This work provides a facile synthetic strategy for AIE/CPL dual-functional PAIs, clarifies the structure–property–application relationship, and expands their practical applications in high-security anti-counterfeiting and biological imaging.
AB - Poly(aryl isocyanide)s (PAIs) with dual aggregation-induced emission (AIE) and circularly polarized luminescence (CPL) activities have emerged as promising candidates for advanced functional materials due to their unique helical conformations, structural adjustability, and excellent optical properties. Herein, various AIE/CPL dual-functional PAIs are successfully synthesized via coordination (co)polymerization of functional aryl isocyanides catalysed by a series of air-stable (S,S)-bis(oxazolinylphenyl)amido-ligated palladium(ii) phenylethynyl complexes (R2-(S,S)-BOPA)PdCCC6H5 (1a–1d). AIE-active moieties, chiral d/l-menthyl-ester and d/l-amino acid groups, and oligo(ethylene glycol) (OEG) segments are rationally integrated into the side chains of PAIs to endow AIE activity, CPL performance, biocompatibility, and processability. These properties of PAIs are investigated in detail. The results show that their optimal fluorescence quantum yield (ΦFL) reaches 24.1%, and the maximum absolute value of luminescence dissymmetry factor (|glum|) is 1.4 × 10−3. In anti-counterfeiting applications, PAI-based inks and films achieve “invisible under natural light–visible under UV irradiation” luminescence switching and unique CPL chiral signals, showing excellent anti-counterfeiting security and stability. In cellular imaging, OEG-modified PAIs realize precise subcellular targeting imaging, accompanied by low cytotoxicity and good in vivo biocompatibility. This work provides a facile synthetic strategy for AIE/CPL dual-functional PAIs, clarifies the structure–property–application relationship, and expands their practical applications in high-security anti-counterfeiting and biological imaging.
UR - https://www.scopus.com/pages/publications/105038023640
U2 - 10.1039/d6py00246c
DO - 10.1039/d6py00246c
M3 - Article
AN - SCOPUS:105038023640
SN - 1759-9954
JO - Polymer Chemistry
JF - Polymer Chemistry
ER -