Development of new methodology for the preparation of functional polymers with practical applications is a fundamental important research area in macromolecular science. In this paper, a new polymerization route for the synthesis of functional polymers is developed. The three-component polycoupling reactions of diynes [HC≡C–R–C≡CH, R = (C 6 H 5 ) 2 C═C(C 6 H 5 ) 2, (C 6 H 5 ) 4 SiC 4 (C 4 H 9 ) 2, (C 6 H 5 ) 4 SiC 4 (C 6 H 5 ) 2, C 12 H 8 (OCH 2 ) 2, (CH 2 ) 4 ], primary amines, and aldehydes are catalyzed by copper(I) chloride in toluene at 100 °C for 2 h, affording soluble and regular poly(dipropargyl amine)s (PDAs) with high molecular weights ( M w up to 43 800) in high yields (up to 89%). The polymerization reaction is insensitive to moisture. All the PDAs are thermally stable and film forming. Their thin films show good optical transparency and high refractive indices (RI = 1.8322–1.7458) with low optical dispersions ( D down to 0.0117). The tetraphenylethene or silole-containing PDAs exhibit a phenomenon of aggregation-induced emission. The PDAs are photosensitive and cross-link upon UV irradiation, generating negative photoresist fluorescent patterns. The polymer aggregates can function as sensitive fluorescent chemosensors for detecting explosives, such as picric acid, 2,4-dinitrotoluene, and 4-nitrobenzoyl chloride, with large quenching constants of up to 2.7 × 10 5 L/mol.
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Liu et al. (2014) studied this question.
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