| Literature DB >> 33126503 |
Rosita Diana1, Barbara Panunzi1.
Abstract
Tridentate ligands are simple low-cost pincers, easy to synthetize, and able to guarantee stability to the derived comEntities:
Keywords: fluorescence; tridentate ligand; zinc ion
Mesh:
Substances:
Year: 2020 PMID: 33126503 PMCID: PMC7662684 DOI: 10.3390/molecules25214984
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Schematic representation of most of the coordination cores achievable from tridentate pincers binding zinc(II) cation (in green). X, X′, and X″ can be N, O, and S atom groups.
Figure 2Tpy-type tridentate pincers causing zinc-binding fluorescence reduction/quenching.
Figure 3AIE behavior of zinc complexes from Tpy-type tridentate pincers.
Figure 4N,N,N Schiff base-type ligands with different nitrogen aromatic rings and their CHEF active complexes.
Figure 5Supramolecular architectures produced from zinc-interlocked chains. Tridentate pincers for sensing analysis of zinc cations.
Figure 6N,N,O pincers containing half-salen moiety and related complexes.
Figure 7N,N,O pincers for sensing analysis and biological applications.
Figure 8Selected examples of O,N,O ligands and zinc complexes containing the C=N moiety.
Figure 9Aroyl- and acylhydrazones N,O,N tridentate pincers with different substituents, the derived complexes, and the related zinc polymers.
Figure 10O,N,O aryl-hydrazone ligands with a cationic chain and their zinc polymers. Aroylhydrazone ligands with orto, meta, para pyridinoyl moiety.
Figure 11Selected example of N,N,S tridentate pincers and their complexes.
Figure 12Selected example of N,S,O tridentate pincers and their complexes.