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Sensing Functions of an Iron-Doped Boron Nitride Nanocone Towards Acetaminophen and Its Thio/Thiol Analogs: A Dft Outlook Publisher



Saadh MJ1, 2 ; Amin AH3, 4 ; Farhadiyan S5 ; Sadeghi MS6 ; Shahrtash SA7 ; Saimmai Hanaf A9 ; Abedi Kiasari B10 ; Dai M11 ; Mirzaei M12 ; Akhavansigari R13, 14
Authors
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Authors Affiliations
  1. 1. Faculty of Pharmacy, Middle East University, Amman, 11831, Jordan
  2. 2. Applied Science Research Center, Applied Science Private University, Amman, Jordan
  3. 3. Deanship of Scientific Research, Umm Al-Qura University, Makkah, 21955, Saudi Arabia
  4. 4. Zoology Department, Faculty of Science, Mansoura University, Mansoura, 35516, Egypt
  5. 5. Chemistry Department, Faculty of Science, Payame Noor University, Tehran, Iran
  6. 6. Department of Pharmaceutics, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran
  7. 7. Department of Pharmaceutical Engineering, Alborz Campus, University of Tehran, Tehran, Iran
  8. 8. College of Engineering, Southern Luzon State University, Quezon, Lucban, Philippines
  9. 9. Abdul Hamid Abusulayman Kulliyyah of Islamic Revealed Knowledge and Human Sciences, International Islamic University Malaysia, Kuala Lumpur, 50728, Malaysia
  10. 10. Virology Department, Faculty of Veterinary Medicine, University of Tehran, Tehran, Iran
  11. 11. Faculty of Pharmacy, Universitas Muhammadiyah Surakarta, Surakarta, Indonesia
  12. 12. Isfahan University of Medical Sciences, Isfahan, Iran
  13. 13. Department of Neurosurgery, University Medical Center Tuebingen, Germany
  14. 14. Department of Health Care Management and Clinical Research, Collegium Humanum Warsaw Management University, Warsaw, Poland

Source: Diamond and Related Materials Published:2023


Abstract

Sensing functions of an iron (Fe)-doped boron nitride nanocone (FBN) were investigated towards acetaminophen (ACM) and its thio/thiol analogs by performing density functional theory (DFT) calculations. Formations of FBN-ACM complexes were found through keto/thio and enol/thiol interacting pathways with the Fe-doped region of FBN. The existence of Fe⋯O, Fe⋯S, and a type of N⋯H hydrogen bond interactions were observed in the models. A higher strength of Fe⋯O in comparison with that of Fe⋯S was found, in which the keto/thio pathway was found better than the enol/thiol pathway. The estimated duration of recovery time was assessed by the adsorption energies. The conductance was assessed by the energy gaps. Accordingly, meaningful variations of electronic conductance and recovery time were found to provide a suitable situation of sensing function. Consequently, the FBN substance was found as a sensor of ACM and its analogs besides working as an additional proposed role of a drug carrier. © 2023 Elsevier B.V.