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Molecular dynamics simulation on surface modification of quantum scaled CuO nano-clusters to support their experimental studies.
Loya, Adil; Stair, Jacqueline L; Uddin, Farid; Ren, Guogang.
  • Loya A; Department of Mechanical Engineering, National University of Sciences and Technology, H-12, Islamabad, Pakistan. adil.loya@pnec.nust.edu.pk.
  • Stair JL; School of Life and Medical Sciences, University of Hertfordshire, Hatfield, AL10 9AB, UK.
  • Uddin F; School of Life and Medical Sciences, University of Hertfordshire, Hatfield, AL10 9AB, UK.
  • Ren G; College Lane, School of Engineering and Technology, University of Hertfordshire, Hatfield, AL10 9AB, UK. g.g.ren@herts.ac.uk.
Sci Rep ; 12(1): 16657, 2022 10 05.
Article in English | MEDLINE | ID: covidwho-2050478
ABSTRACT
Interest in nanoparticle modification using functional chemicals has increased rapidly, as it allows more freedom of physiochemical tuning of the nanoparticle's surface into biomedically oriented and designated properties. However, the observation and detection of the thin molecular layers on the nanoparticle surface are very challenging under current analytical facilities. The focus of this research is to demonstrate fundamental interactions between the surface treated nanoparticles and their host liquid media using lab-based experimentation and simulation. In this research, investigation has been carried out on analyzing the surface compatibility and the diffusivity of modified CuO nanoparticles (CuONPs) with short-chain carboxylate-terminated molecules in biofluids. Moreover, during the current Covid-19 pandemic, the Cu/CuONPs have proved effective in killing SARS-CoV1/2 and other airborne viruses. This research was conducted at the molecular level with joint consideration of experimental and simulation studies for characterization of variables. Experimental tests conducted using Fourier Transform Infrared (FTIRspectroscopy demonstrated several spectral ranges of interest, specifically, detection of three major carboxylate attachments (i.e., 1667-1609 cm-1, 1668-1557 cm-1, etc.) were found. From simulation, similar attachment styles were observed by the LAMMPS simulation package that mimicked similar agglomerations with a predicted diffusion coefficient as recorded to be 2.28E-9 m2/s. Viscosities of modified nanofluids were also compared with unmodified nanofluids for defining aggregation kinetics.
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Full text: Available Collection: International databases Database: MEDLINE Main subject: Molecular Dynamics Simulation / COVID-19 Type of study: Observational study / Prognostic study Limits: Humans Language: English Journal: Sci Rep Year: 2022 Document Type: Article Affiliation country: S41598-022-16751-w

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Full text: Available Collection: International databases Database: MEDLINE Main subject: Molecular Dynamics Simulation / COVID-19 Type of study: Observational study / Prognostic study Limits: Humans Language: English Journal: Sci Rep Year: 2022 Document Type: Article Affiliation country: S41598-022-16751-w