Department of Soil Sciences, University of Agronomical Sciences and Veterinary Medicine, 59 Mărăști Str., 011464 Bucharest, Romania.
Department of Inorganic, Organic Chemistry, Biochemistry and Catalysis, Faculty of Chemistry, University of Bucharest, 90-92 Panduri Str., 050663 Bucharest, Romania.
Molecules. 2023 Jan 23;28(3):1132. doi: 10.3390/molecules28031132.
This review considers the applications of Zn(II) carboxylate-based coordination polymers (Zn-CBCPs), such as sensors, catalysts, species with potential in infections and cancers treatment, as well as storage and drug-carrier materials. The nature of organic luminophores, especially both the rigid carboxylate and the ancillary N-donor bridging ligand, together with the alignment in Zn-CBCPs and their intermolecular interaction modulate the luminescence properties and allow the sensing of a variety of inorganic and organic pollutants. The ability of Zn(II) to act as a good Lewis acid allowed the involvement of Zn-CBCPs either in dye elimination from wastewater through photocatalysis or in pathogenic microorganism or tumor inhibition. In addition, the pores developed inside of the network provided the possibility for some species to store gaseous or liquid molecules, as well as to deliver some drugs for improved treatment.
本综述考虑了基于 Zn(II) 羧酸酯的配位聚合物 (Zn-CBCPs) 的应用,例如传感器、催化剂、在感染和癌症治疗方面有应用潜力的物质,以及存储和药物载体材料。有机发光体的性质,特别是刚性的羧酸酯和辅助的 N 供体桥联配体,以及 Zn-CBCPs 中的排列及其分子间相互作用,调节了发光性质,并允许对各种无机和有机污染物进行传感。Zn(II) 作为良好路易斯酸的能力使得 Zn-CBCPs 能够参与通过光催化从废水中去除染料,或者抑制病原微生物或肿瘤。此外,网络内部开发的孔为某些物质存储气体或液体分子提供了可能性,也为提高治疗效果而输送了一些药物。