| Literature DB >> 32015816 |
Nilotpal Singha1, Basab Kanti Das1, Bapan Pramanik1, Saurav Das1, Debapratim Das1.
Abstract
Charge transfer (CT) complexes between electron donor and acceptor molecules provide unique alternate D-A arrangements. However, these arrangements cannot be fully translated into chemo-selective organic transformations as the dynamicity of CT complexes in solution results in the co-existence of D-A assemblies and free monomers during the reaction time-scale. A conceptually new strategy to exploit CT complexes toward chemo-selective products by means of seizing the dynamicity of CT complexes is reported here. Aqueous CT complexes of donor and acceptor molecules bearing reactive thiol groups were frozen instantly and cryo-desiccated to get the alternate D-A assemblies intact in the solid state. Oxidation of reactive thiols in an oxygen rich solvent in the solid state resulted in the formation of the hetero-dimer exclusively. CT complexation and appropriate molecular arrangements are the key factors behind successful execution of this novel methodology. The strategy also paves the way to prepare unsymmetrical disulfide molecules from two dissimilar thiols. This journal is © The Royal Society of Chemistry 2019.Entities:
Year: 2019 PMID: 32015816 PMCID: PMC6977459 DOI: 10.1039/c9sc03417j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1(A) Schematic presentation of the CT-complexation driven protocol to control the chemo-selectivity. (B) Chemical structures of different thiol substrates used for the study and their homo and heterodimers.
Fig. 1Energy minimized structures of different D–A pairs as obtained from DFT calculations showing the distances between the –SH groups and between π-rings of the donor and acceptor.
Fig. 2(A) UV-visible spectra of PyKC (0.1 mM) in the presence of increasing amounts of NDI-1 showing the appearance of the CT-band. (B) Emission spectra of PyKC when titrated with NDI-1 showing the quenching of the emission. Inset: the changes in emission intensity at 376 nm against the molar ratio of PyKC and NDI-1. (C) Thermogram (top) and binding isotherm (bottom) of titration of PyKC with NDI-1 at 298 K. (D) FESEM image of a freeze dried sample of an aqueous mixture of PyKC with NDI-1 (1 : 1) containing 1% TFA.
Fig. 3(A) Time dependent chromatograms showing the exclusive formation of the PyKC–NDI-1 heterodimer using the present protocol. (B) % conversion to the heterodimer with time as obtained from (A). (C) and (D) FESEM images of the freeze dried samples obtained from the combinations of NDI-1 with (C) PyK and (D) Py1KC.