School of Materials Science and Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai, 200237, China.
Macromol Rapid Commun. 2022 Jun;43(11):e2200122. doi: 10.1002/marc.202200122. Epub 2022 Apr 21.
Near-infrared (NIR) light plays an increasingly important role in the field of photoinduced electron/energy transfer-reversible addition-fragmentation chain transfer (PET-RAFT) polymerization due to its unique properties. Yet, the NIR photocatalyst with good stability for PET-RAFT polymerization remains promising. Here, a strategy of NIR PET-RAFT polymerization of semifluorinated monomers using fluorophenyl bacteriochlorin as a photocatalyst with strong absorption at the NIR light region (710-780 nm) is reported. In which, the F atoms are used to modify reduced tetraphenylporphyrin structure with enhanced photostability of photocatalyst. Under the irradiation of NIR light (λ = 740 nm), the PET-RAFT polymerization of semifluorinated methylacrylic monomers presents living/control characteristics and temporal modulation. By the PET-RAFT polymerization-induced self-assembly (PISA) strategy, stable fluorine-containing micelles are constructed in various solvents. In addition, the fluorinated hydrophobic surface is fabricated via a surface-initiated PET-RAFT (SI-PET-RAFT) polymerization using silicon wafer bearing RAFT agents with tunable surface hydrophobicity. This strategy not only enlightens the application of further modified compounds based on porphyrin structure in photopolymerization, but also shows promising potential for the construction of well-defined functional fluoropolymers.
近红外(NIR)光由于其独特的性质,在光诱导电子/能量转移-可逆加成-断裂链转移(PET-RAFT)聚合领域中起着越来越重要的作用。然而,对于 PET-RAFT 聚合具有良好稳定性的 NIR 光催化剂仍然很有前景。在这里,报道了一种使用氟苯基细菌叶绿素作为光催化剂的半氟化单体的 NIR PET-RAFT 聚合的策略,该光催化剂在近红外光区域(710-780nm)具有强吸收。其中,F 原子用于修饰还原的四苯基卟啉结构,以提高光催化剂的光稳定性。在近红外光(λ=740nm)的照射下,半氟化甲基丙烯酸酯单体的 PET-RAFT 聚合呈现出活性质控特征和时间调节。通过 PET-RAFT 聚合诱导自组装(PISA)策略,在各种溶剂中构建了稳定的含氟胶束。此外,通过带有 RAFT 试剂的硅片进行表面引发的 PET-RAFT(SI-PET-RAFT)聚合,制造了具有可调表面疏水性的氟化疏水面。该策略不仅为进一步修饰基于卟啉结构的化合物在光聚合中的应用提供了启示,而且为构建具有良好定义的功能性氟聚合物展示了有前途的潜力。