Ladder-like Organostannoxane: Synthesis and Crystal Structure of the Second Polymorph {[(C6H5)2Sn]2[(C6H5)2ClSn]2(μ3-O)2(μ2-OH)2}∙[DMF]2
-
Published:2023-11-21
Issue:
Volume:
Page:83-103
-
ISSN:2581-9003
-
Container-title:Earthline Journal of Chemical Sciences
-
language:en
-
Short-container-title:EJCS
Author:
Sarr Modou1, Diop Mouhamadou Birame1, Boye Mouhamadou Sembene1, Diassé-Sarr Aminata1, Diop Libasse1, Oliver Allen G.2
Affiliation:
1. Laboratoire de Chimie Minérale et Analytique, Département de Chimie, Faculté des Sciences et Techniques, Université Cheikh Anta Diop, Dakar, Sénégal 2. Department of Chemistry and Biochemistry, University of Notre Dame, Nieuwland, Science Hall, Notre Dame, USA
Abstract
A ladder-like organostannoxane identified as a polymorph of bis-[chloro-(m2-hydroxo)-(m3-oxo)-tetraphenyl-di-tin] dimethylformamide solvate, {[(C6H5)2Sn]2[(C6H5)2ClSn]2(μ3-O)2(μ2-OH)2}[DMF]2 (1), has been synthesized and structurally characterized by means of single-crystal X-ray diffraction analysis. Compound 1 crystallizes in the monoclinic space group P21/c with a = 23.4137(12) Å, b = 11.2525(6) Å, c = 20.2719(11) Å, β = 100.461(2)°, V = 5252.1(5) Å3, Z = 4 and Z’ = 1. The XRD discloses that the polymorph reported in this work is the full molecule which does not crystallize about any inversion center. Complex 1 exhibits a tetranuclear organotin(IV) ladder-like structure containing two external chlorides. The tetranuclear structure is comprised of a three-rung-staircase Sn4O4 cluster which consists of a ladder of four Sn2O2 units. The central Sn2O2 core forms dihedral angles of 4.00(7)° and 1.62(8)° with its two fused four-membered rings, describing a slightly bent ladder. This folding is further noticed with the dihedral angle between the two external Sn2O2 cores of 4.65(8)°. In the structure, two types of distorted trigonal bipyramid geometry at tin centers like-arrangement are disclosed. The most Sn–O bridges bond lengths describe a static trans effect affording dissymmetrical bonds. The dimethylformamide solvate molecules form a dihedral angle of 74.5(2)° and are interlinked to the tetranuclear organotin(IV) ladder via O–H···O hydrogen bond patterns. Additional inner C–H···Cl and C–H···O hydrogen bonds as well the C–H···O interactions are present. Moreover, the intermolecular C–H···O hydrogen bonds do not contribute to direct the crystal structure framework; they do not play an important function in forming a supramolecular architecture.
Publisher
Earthline Publishers
Reference47 articles.
1. Hoti, N., Zhu, D.E., Song, Z., Wu, Z., Tabassum, S., & Wu, M. (2004). P53-dependent apoptotic mechanism of a new designer bimetallic compound tri-phenyl tin benzimidazolethiol copper chloride (TPT-CuCl2): In vivo studies in Wistar rats as well as in vitro studies in human cervical cancer cells. Journal of Pharmacology and Experimental Therapeutics, 311, 22-33.https://doi.org/10.1124/jpet.104.069104 2. Wang, S., Li, Q.-L., Zhang, R.-F., Du, J.-Y., Li, Y.-X., & Ma, C.-L. (2019). Novel organotin(IV) complexes derived from 4-carboxybenzenesulfonamide: Synthesis, structure and in vitro cytostatic activity evaluation. Polyhedron, 158, 15-24. https://doi.org/10.1016/j.poly.2018.10.048 3. Person, R.J., & Whalen, M.M. (2010). Effects of butyltin exposures on MAP kinase-dependent transcription regulators in human natural killer cells. Toxicology Mechanisms and Methods, 20, 227-233. https://doi.org/10.3109/15376511003746034 4. Carraher, C., Roner, M., Lynch, M., Moric-Johnson, A., Miller, L., Slawek, P., Mosca, F., & Frank, J. (2018). Organotinpoly(ester ethers) from salicylic acid and their ability to inhibit human cancer cell lines. Journal of Clinical Research in Oncology, 1(1), 1-11. https://doi.org/10.33309/2639-8230.010103 5. Syed Annuar, S.N., Kamaludin, N.F., Awang, N., & Chan, K.M. (2021). Cellular basis of organotin(IV) derivatives as anticancer metallodrugs: a review. Frontiers in Chemistry, 9, 657599. https://doi.org/10.3389/fchem.2021.657599
|
|