Zhang Liwen, Shi Xiaobing, Zhang Zhiheng, Kuchel Rhiannon P, Namivandi-Zangeneh Rashin, Corrigan Nathaniel, Jung Kenward, Liang Kang, Boyer Cyrille
Australian Centre for NanoMedicine, Centre for Advanced Macromolecular Design, School of Chemical Engineering, The University of New South Wales, Sydney, New South, Wales, 2052, Australia.
Electron Microscope Unit, Mark Wainwright Analytical Centre, The University of New South Wales, Sydney, New South Wales, 2052, Australia.
Angew Chem Int Ed Engl. 2021 Mar 1;60(10):5489-5496. doi: 10.1002/anie.202014208. Epub 2021 Jan 15.
In this study, porphyrinic zirconium (Zr) MOFs were investigated as heterogeneous photocatalysts for photoinduced electron transfer-reversible addition-fragmentation chain transfer (PET-RAFT) polymerization of various monomers under a broad range of wavelengths, producing polymers with high monomer conversions, narrow molecular weight distributions, low dispersity and good chain-end fidelity. Screening of various porphyrinic Zr-MOFs (Zn) containing Zn-metalled porphyrinic ligands demonstrated that MOF-525 (Zn) with the smallest size had the best photocatalytic activity in PET-RAFT polymerization, due to enhanced dispersion and light penetration. Oxygen tolerance and temporal control were also demonstrated during MOF catalysed PET-RAFT. Results suggested that the polymerization rates were significantly affected by changing the size and surface area of MOFs, and the heterogeneous MOF photocatalysts could be easily separated and recycled for up to five independent PET-RAFT polymerizations without an obvious decrease in efficiency. Finally, the MOF photocatalysts were utilized to create three-dimensional polymeric objects with high resolution via visible light mediated stereolithography in an open-air environment.
在本研究中,卟啉基锆(Zr)金属有机框架材料被作为多相光催化剂进行研究,用于在宽波长范围内对各种单体进行光致电子转移-可逆加成-断裂链转移(PET-RAFT)聚合反应,从而制备出具有高单体转化率、窄分子量分布、低分散度和良好链端保真度的聚合物。对各种含有锌金属化卟啉配体的卟啉基Zr-MOFs(Zn)进行筛选表明,尺寸最小的MOF-525(Zn)在PET-RAFT聚合反应中具有最佳的光催化活性,这归因于其增强的分散性和光穿透性。在MOF催化的PET-RAFT过程中还展示了氧气耐受性和时间控制。结果表明,改变MOFs的尺寸和表面积会显著影响聚合速率,并且这种多相MOF光催化剂可以很容易地分离和循环使用,用于多达五次独立的PET-RAFT聚合反应,而效率没有明显下降。最后,通过在露天环境中可见光介导的立体光刻技术,利用MOF光催化剂制备出了具有高分辨率的三维聚合物物体。