Benzoselenadiazole‐Functionalized H‐Bonded Arylamide Foldamers: Solvent‐Responsive Properties and Helix Self‐Assembly Directed by Chalcogen Bonding in Solid State

Author:

Liu Chuan‐Zhi1ORCID,Zhang Chi1,Li Chang‐Gen1,Chen Hui‐Bin1,Yang Wen1,Li Zhong‐Yi1,Hu Zhi‐Yuan1,Xu Liang2,Zhai Bin1,Li Zhan‐Ting3

Affiliation:

1. Engineering Research Centre for Optoelectronic Functional Materials of Henan Province College of Chemistry and Chemical Engineering Shangqiu Normal University 55 Pingyuan middle Road Shangqiu Henan 476000 China

2. School of Chemistry and Chemical Engineering/State Key Laboratory Incubation Base for Green Processing of Chemical Engineering Shihezi University 221 Beisi Road Shihezi 832003 China

3. Key Laboratory of Synthetic and Self-Assembly Chemistry for Organic Functional Molecules Shanghai Institute of Organic Chemistry Chinese Academy of Sciences 345 Lingling Road Shanghai 200032 China

Abstract

AbstractIn this study, a series of H‐bonded arylamide foldamers bearing benzoselenadiazole ends with solvent‐responsive properties have been synthesized. In dichloromethane or dimethyl sulfoxide solvents, the molecules exhibit meniscus or linear structures, respectively, which can be attributed to the unique intramolecular hydrogen bonding behavior evidenced by 1D 1H NMR and 2D NOESY spectra. UV‐vis spectroscopy experiments show that the absorption wavelength of H‐bonded arylamide foldamers are significantly red‐shifted due to the presence of benzoselenadiazole group. In addition, the crystal structures reveal that effective intermolecular dual Se ⋅ ⋅ ⋅ N interactions between benzoselenadiazole groups induce further assembly of the monomers. Remarkably, supramolecular linear and double helices structures are constructed under the synergistic induction of intramolecular hydrogen bonding and intermolecular chalcogen bonding. Additionally, 2D DOSY diffusion spectra and theoretical modelling based on density functional theory (DFT) are performed to explore the persistence of intermolecular Se ⋅ ⋅ ⋅ N interactions beyond the crystalline state.

Funder

Natural Science Foundation of Henan Province

Publisher

Wiley

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