Combined Experimental and Theoretical Investigation on Ligand and Anion Controlled Complex Formation with Unprecedented Structural Features and Photoluminescence Property of Zinc(II) Complexes

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dc.contributor.author Chakraborty, Prateeti
dc.contributor.author Adhikary, Jaydeep
dc.contributor.author Samanta, Sugata
dc.contributor.author Escudero, Daniel
dc.contributor.author Castro, Abril C.
dc.contributor.author Swart , Marcel
dc.contributor.author Bauzá Riera, Antonio
dc.contributor.author Frontera Beccaria, Antonio
dc.contributor.author Ghosh, Sanjib
dc.contributor.author Zangrando, Ennio
dc.contributor.author Das, Debasis
dc.date.accessioned 2018-09-21T07:59:30Z
dc.identifier.uri http://hdl.handle.net/11201/147571
dc.description.abstract [eng] By using two potential tridentate ligands, HL1 [4- chloro-2-[(2-morpholin-4-yl-ethylimino)-methyl]-phenol] and HL2 [4-chloro-2-[(3-morpholin-4-yl-propylimino)-methyl]-phenol], which differ by one methylene group in the alkyl chain, four new ZnII complexes, namely, [Zn(L2H)2](ClO4)2 (1), [Zn(L1)(H2O)2][Zn(L1)(SCN)2] (2), [Zn(L1)(dca)]n (3), and [Zn2(L1)2(N3)2(H2O)2] (4) [where dca = dicyanamide anion] were synthesized and structurally characterized. The results indicate that the slight structural difference between the ligands, HL1 and HL2, because of the one methylene group connecting the nitrogen atoms provokes a chemical behavior completely different from what was expected. Any attempt to isolate the Zn(L2) complexes with thiocyanato, dicyanamido, and azide was unsuccessful, and perchlorate complex 1 was always obtained. In contrast, with HL1 we obtained structural diversity on varying the anions, but we failed to isolate the analogous perchlorate complex of HL1. Single-crystal X-ray analyses revealed that the morpholine nitrogen of ligand L2 is protonated and thus does not take part in coordination with ZnII in complex 1. On the other hand, the morpholine nitrogen of L1 is coordinated to ZnII in 2−4. Of these, 2 and 4 are rare examples of a cocrystallized cationic/anionic complex and of a dinuclear complex bridged by a single azide, respectively. Some of these unexpected findings and some interesting noncovalent interactions leading to the formation of dimeric entities in solid-state compound 4 were rationalized by a DFT approach. Photoluminescence properties of the complexes as well as the ligands were investigated in solution at ambient temperature and at 77 K. The very fast photoinduced electron transfer (PET) from the nitrogen lone pair to the conjugated phenolic moiety is responsible for very low quantum yield (Φ) exhibited by the ligands, whereas complexation prevents PET, thus enhancing the Φ in the complexes. The origin of the electronic and photoluminescence properties of the ligands and complexes was assessed in light of theoretical calculations.
dc.format application/pdf
dc.relation.isformatof Versió postprint del document publicat a: https://doi.org/10.1021/cg500717n
dc.relation.ispartof Crystal Growth & Design, 2014, vol. 14, p. 4111-4123
dc.subject.classification 54 - Química
dc.subject.other 54 - Chemistry. Crystallography. Mineralogy
dc.title Combined Experimental and Theoretical Investigation on Ligand and Anion Controlled Complex Formation with Unprecedented Structural Features and Photoluminescence Property of Zinc(II) Complexes
dc.type info:eu-repo/semantics/article
dc.type info:eu-repo/semantics/acceptedVersion
dc.date.updated 2018-09-21T07:59:31Z
dc.date.embargoEndDate info:eu-repo/date/embargoEnd/2075-01-01
dc.embargo 2075-01-01
dc.rights.accessRights info:eu-repo/semantics/embargoedAccess
dc.identifier.doi https://doi.org/10.1021/cg500717n


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