Dual Chalcogen‐Bonding Interactions for the Conformational Control of Urea**

Author:

Inoue Takumi1,Ota Moe1,Amijima Yui1,Takahashi Haru1,Hamada Shohei1,Nakamura Seikou2,Kobayashi Yusuke1,Sasamori Takahiro3,Furuta Takumi1ORCID

Affiliation:

1. Department of Pharmaceutical Chemistry Kyoto Pharmaceutical University Yamashina-ku Kyoto 607-8414 Japan

2. Department of Pharmacognosy Kyoto Pharmaceutical University Yamashina-ku Kyoto 607–8414 Japan

3. Department of Chemistry Faculty of Pure and Applied Sciences University of Tsukuba Tsukuba Ibaraki 305-8571 Japan

Abstract

AbstractDual chalcogen‐bonding interactions is proposed as a novel means for the conformational control of urea derivatives. The formation of a chalcogen‐bonding interaction at both sides of the urea carbonyl group was unambiguously confirmed by X‐ray diffraction as well as computational studies including non‐covalent interaction (NCI) plot index analysis, quantum theory of atoms in molecules (QTAIM) analysis, and natural bond orbital (NBO) analysis via DFT calculations. By virtue of this dual interaction, urea derivatives that bear chalcogen atoms (X=S and Se) adopt a planar structure via the carbonyl oxygen (O) with an X⋅⋅⋅O⋅⋅⋅X arrangement on the same side of the molecule. The rigidity of the conformational lock was evaluated using the molecular arrangement in the crystal and the rotational barrier of benzochalcogenophene ring, which indicated a stronger conformational lock in benzoselenophene than in benzothiophene urea derivatives. Furthermore, the acidity of the urea derivatives increases according to the Lewis‐acidic properties of the chalcogen‐bonding interactions, whereby benzoselenophene urea is more acidic than benzothiophene urea. Tweezer‐shaped urea derivatives were prepared, and their stereostructure proved the viability of the conformational control for defining the location of the substituents on the urea framework.

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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