Benzimidazolium quaternary ammonium salts: synthesis, single crystal and Hirshfeld surface exploration supported by theoretical analysis

Author:

Jamil Sajid1,Gondal Humaira Yasmeen1,Ali Akbar2ORCID,Hussain Ajaz3,Akram Nadia2,Nisar Muhammad1,Tahir Muhammad Nawaz4,Ashfaq Muhammad4,Raza Abdul Rauf1,Muhammad Shabbir5,Cheema Zain M.1ORCID,Mustafai Aleena3,Sameeh Manal Y.6

Affiliation:

1. Institute of Chemistry, University of Sargodha, Sargodha, 40100, Pakistan

2. Department of Chemistry, Government College University Faisalabad, 38000 Faisalabad Pakistan

3. Institute of Chemical Sciences, Bahauddin Zakariya University Multan, 60800, Multan, Pakistan

4. Department of Physics, University of Sargodha, Sargodha, 40100 Pakistan

5. Department of Chemistry, College of Science, King Khalid University, Abha 61413, PO Box 9004, Saudi Arabia

6. Chemistry Department, Faculty of Applied Sciences, Al-Leith University College, Umm Al-Qura University, Makkah 24831, Saudi Arabia

Abstract

Owing to the broad applications of quaternary ammonium salts (QAS), we present the synthesis of benzimidazolium-based analogues with variation in the alkyl and alkoxy group at N-1 and N-3 positions. All the compounds were characterized by spectroscopic techniques and found stable to air and moisture both in the solid and solution state. Moreover, molecular structures were established through single-crystal X-ray diffraction studies. The crystal packing of the compounds was stabilized by numerous intermolecular interactions explored by Hirshfeld surface analysis. The enrichment ratio was calculated for the pairs of chemical species to acquire the highest propensity to form contacts. Void analysis was carried out to check the mechanical response of the compounds. Furthermore, theoretical investigations were also performed to explore the optoelectronic properties of compounds. Natural population analysis (NPA) has been conducted to evaluate the distribution of charges on the synthesized compounds, whereas high band gaps of the synthesized compounds by frontier molecular orbital (FMO) analysis indicated their stability. Nonlinear optical (NLO) analysis revealed that the synthesized QAS demonstrates significantly improved NLO behaviour than the standard urea.

Funder

Research Project

King Khalid University

Publisher

The Royal Society

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