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Eco‐Friendly Synthesis and Computational Exploration of Ethoxy Functionalized‐Schiff's Base Derivatives as Antimicrobial Applications

N. Dinesh kumarDepartment of Chemistry Erode Sengunthar Engineering College Erode Tamilnadu 638057 IndiaP. SuppurajInstitute of General and Inorganic Chemistry of Uzbekistan Academy of Sciences Tashkent UzbekistanK. S. RajmohanDepartment of Chemical Engineering National Institute of Technology Warangal Telangana IndiaD. RajamanickamDepartment of Chemistry, Centre For Research and Development, Vinayaka Mission's Kirupananda Variyar Engineering College Vinayaka Mission's Research Foundation (DU) Salem Tamil Nadu IndiaS. BalachandranFunctional Materials and Materials Chemistry Laboratory, Department of Physiology, Saveetha Dental College and Hospitals, Saveetha Institute of Medical and Technical Sciences Saveetha University Chennai Tamil Nadu IndiaR. SivasakthikumaranNanomaterials Laboratory, Department of Chemistry Kalasalingam Academy of Research and Education Krishnankoil IndiaKrishna Prakash ArunachalamDepartamento De Ciencias de La Construcción, Facultad De Ciencias de La Construcción Ordenamiento Territorial Universidad Tecnológica Metropolitana Santiago ChileG. ThirunarayananDepartment of Chemistry Annamalai University Annamalainagar IndiaM. SwaminathanNanomaterials Laboratory, Department of Chemistry Kalasalingam Academy of Research and Education Krishnankoil India
2026en
ABI

Аннотация

ABSTRACT An efficient and sustainable strategy was developed for synthesizing ethoxy‐functionalized Schiff's bases SB(1–7) through solvent‐free microwave‐assisted condensation using recoverable sulfated titania as a solid‐acid catalyst. The methodology afforded the target compounds in 95% yield within 6 min, while the catalyst was recovered and reused for four cycles with approximately 90% yield retention. The synthesized SB(1‐7) were characterized by FT‐IR and NMR spectroscopy, with the crystal structure of SB5 confirmed by single‐crystal X‐ray diffraction and Hirshfeld surface analysis. DFT calculations provided molecular‐level insights into the electronic structure, stability, reactivity, and substituent‐dependent properties of SB(1–7) . The study further integrated in vitro antibacterial and antifungal assays with molecular docking and ADMET/drug‐likeness analyses to correlate molecular structure with biological activity. SB2 exhibited the strongest predicted binding affinity toward the 1ACX target (‐7.85 kcal mol −1 ), whereas SB6 showed the strongest antibacterial activity against Staphylococcus aureus . Several derivatives also displayed notable antifungal activity, particularly against Candida albicans . Overall, this recyclable green protocol, combined with comprehensive structural, computational, and biological evaluation, provides a sustainable platform for the development and preliminary screening of ethoxy‐functionalized Schiff bases as potential antimicrobial candidates.

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