An Experimental and Theoretical Insight into I2/Br2 Oxidation of Bis(pyridin‐2‐yl)Diselane and Ditellane

Author:

Aragoni M. Carla1ORCID,Podda Enrico12ORCID,Chaudhary Savita3,Bhasin Aman K. K.4ORCID,Bhasin Kuldip K.3ORCID,Coles Simon J.5ORCID,Orton James B.5,Isaia Francesco1ORCID,Lippolis Vito1ORCID,Pintus Anna1ORCID,Slawin Alexandra M. Z.6ORCID,Woollins J. Derek67ORCID,Arca Massimiliano1ORCID

Affiliation:

1. Dipartimento di Scienze Chimiche e Geologiche Università degli Studi di Cagliari S.S. 554 bivio per Sestu 09042 Monserrato (Cagliari) Italy

2. Centro Servizi di Ateneo per la Ricerca (CeSAR) Università degli Studi di Cagliari S.S. 554 bivio Sestu 09042 Monserrato (Cagliari) Italy

3. Department of Chemistry Centre for Advanced Studies in Chemistry Panjab University Chandigarh 160014 India

4. Department of Chemistry Amity University Sector 82 A Mohali Punjab-140306 India

5. UK National Crystallography Service School of Chemistry Faculty of Engineering and Physical Sciences University of Southampton Southampton SO17 1BJ UK

6. EaStCHEM School of Chemistry University of St. Andrews North Haugh, St. Andrews Fife KY16 9ST UK

7. Department of Chemistry Khalifa University Abu Dhabi 127788 United Arab Emirates

Abstract

AbstractThe reactivity between bis(pyridin‐2‐yl)diselane oPy2Se2 and ditellane oPy2Te2 (L1 and L2, respectively; oPy=pyridyn‐2‐yl) and I2/Br2 is discussed. Single‐crystal structure analysis revealed that the reaction of L1 with I2 yielded [(HL1+)(I)⋅5/2I2] (1) in which monoprotonated cations HL1+ template a self‐assembled infinite pseudo‐cubic polyiodide 3D‐network, while the reaction with Br2 yielded the dibromide HoPySeIIBr2 (2). The oxidation of L2 with I2 and Br2 yielded the compounds HoPyTeIII2 (3) and HoPyTeIVBr4 (6), respectively, whose structures were elucidated by X‐ray diffraction analysis. FT‐Raman spectroscopy measurements are consistent with a 3c–4e description of all the X−Ch−X three‐body systems (Ch=Se, Te; X=Br, I) in compounds 2, 3, HoPyTeIIBr2 (5), and 6. The structural and spectroscopic observations are supported by extensive theoretical calculations carried out at the DFT level that were employed to study the electronic structure of the investigated compounds, the thermodynamic aspects of their formation, and the role of noncovalent σ‐hole halogen and chalcogen bonds in the X⋅⋅⋅X, X⋅⋅⋅Ch and Ch⋅⋅⋅Ch interactions evidenced structurally.

Publisher

Wiley

Subject

General Chemistry,Biochemistry,Organic Chemistry

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