Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials
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Study of the structure and properties of zinc silicate stabilized with L-histidine

A.A. Blinova1, M.A. Yasnaya1, D.G. Maglakelidze1, M.A. Taravanov1, V.A. Lapin1,2, P.S. Leontiev1

1 North Caucasus Federal University
2 Federal Research Centre The Southern Scientific Centre of The Russian Academy of Sciences

DOI: 10.26456/pcascnn/2022.14.763

Original article

Abstract: This paper presents the results of a study of the process of stabilization of zinc silicate nanoparticles using the amino acid L-histidine. Zinc acetate was used as a precursor, sodium silicate was used as a precipitant, and the amino acid L -histidine acted as a stabilizer. Synthesis was carried out by chemical precipitation in an aqueous medium. A simultaneous thermal analysis was carried out, as a result of which it was found that the addition of an amino acid to nanosized zinc silicate has a great influence on the crystal structure and thermal transitions for this material. Next, the X-ray phase analysis was carried out, which showed that of zinc silicate particles have an amorphous structure and are in a nanoscale state. At the next stage of the work, the process of interaction of an amino acid with a zinc silicate particle was studied by IR spectroscopy. The results of the study showed that stabilization of particles is accompanied by the formation of a chemical bond between silicon in the zinc silicate molecule and the amino group in the L -histidine molecule.

Keywords: nanosized zinc silicate, amino acids, L-histidine, zinc acetate, sodium silicate, phase composition, simultaneous thermal analysis, derivatogram, IR spectroscopy, powder diffractometry

  • Anastasiya A. Blinova – Ph. D., Assistant professor, Department of Physics and Technology of Nanostructures and Materials, Faculty of Physics and Technology, North Caucasus Federal University
  • Mariya A. Yasnaya – Ph. D., Assistant professor, Department of Physics and Technology of Nanostructures and Materials, Faculty of Physics and Technology, North Caucasus Federal University
  • David G. Maglakelidze – 4nd year student, Department of Physics and Technology of Nanostructures and Materials, Faculty of Physics and Technology, North Caucasus Federal University
  • Maxim A. Taravanov – 2nd year student, Department of Physics and Technology of Nanostructures and Materials, Faculty of Physics and Technology, North Caucasus Federal University
  • Vyacheslav A. Lapin – Researcher of the Research Laboratory of Physical and Chemical Methods of Analysis, North Caucasus Federal University, Ph. D., Researcher, Laboratory of Physics and Technology of Semiconductor Nanoheterostructures for Microwave Electronics and Photonic Federal Research Centre The Southern Scientific Centre of The Russian Academy of Sciences
  • Pavel S. Leontiev – 2nd year student, Department of Physics and Technology of Nanostructures and Materials, Faculty of Physics and Technology, North Caucasus Federal University

Reference:

Blinova, A.A. Study of the structure and properties of zinc silicate stabilized with L-histidine / A.A. Blinova, M.A. Yasnaya, D.G. Maglakelidze, M.A. Taravanov, V.A. Lapin, P.S. Leontiev // Physical and chemical aspects of the study of clusters, nanostructures and nanomaterials. — 2022. — I. 14. — P. 763-770. DOI: 10.26456/pcascnn/2022.14.763. (In Russian).

Full article (in Russian): download PDF file

References:

1. Shurygina I.A., Shurygin M.G. Perspektivy primeneniya nanochastits metallov dlya tselej regenerativnoj meditsiny [Perspectives of metal nanoparticles application for the purposes of regenerative medicine]. Sibirskoe meditsinskoe obozrenie [Siberian Medical Review], 2018, no. 4(112), pp. 31-37. DOI: 10.20333/2500136-2018-4-31-37. (In Russian).
2. Sitdikova I.D, Fadeeva S.A., Gordeeva A.V., Kamaletdinova A.A. Bioinzhenernye aspekty nanomaterialov v svete problem biologicheskoj sovmestimosti [Bioenginering aspects of nanomaterials in the light of problems of biological compatibility], Proceeding of the V International scientific and practical conference «Results of Modern Scientific Research and Development», Penza, November, 27, 2018, ed. by G.Y. Gulyaev, Penza, International Center for Scientific Cooperation «Science
and Education», 2018, pp. 21-23. (In Russian).
3. Baroyan M.A., Parshukova A.I., Ivanova S.S. Izmeneniya, proiskhodyashchie v kostnoj tkani posle ustanovki dental'nogo implanta [Changes occurring in the bone tissue after the installation of a dental implant]. Regional'nyi Vestnik [Regional Bulletin], 2020, no. 7(46), pp. 10-11. (In Russian).
4. Pavlova T.V., Zhernovoy M.G., Nesterov A.V. et al. Regenerativnye osobennosti sistemy «kost'-implant» pri primenenii nanostrukturirovannykh implantov [Application of ceramic implants for reconstruction of skull defects], Nauchnye vedomosti Belgorodskogo gosudarstvennogo universiteta. Seriya: Meditsina. Farmatsiya [Scientific Bulletin of Belgorod State University. Series: Medicine. Pharmacy], 2012, no. 22 (141), pp. 135-140. (In Russian).
5. Pavlova L.A., Krivetsky V.V., Nesterov A.V., Pavlova T.V. Kharakteristika reparativnykh protsessov pri primenenii biokompozitov, soderzhashchikh BMP-2 na osnove implantov iz nanostrukturirovannogo titana na rannikh stadiyakh regeneratsii [Characteristic the processes of reparations of at application of the biocomposites containing ВМР-2 on the basis of implants the titan with nanostructure at early stages of regeneration], Sistemnyi analiz i upravlenie v biomeditsinskikh sistemakh [System Analysis and Management in Biomedical Ssystems], 2010, vol. 9, no. 1, pp. 200-203. (In Russian).
6. Gomoll A.H., Fitz W., Scott R.D. Nanoparticulate fillers improve the mechanical strength of bone cement, Acta Orthopaedica, 2008, vol. 79, issue 3, pp. 421-7. DOI: 10.1080/17453670710015349.
7. Thakral G.K., Thakral R., Sharma N. et al. Nanosurface – the future of implants, Journal of Clinical and Diagnostic Research, 2014, vol. 8, issue 5, pp. ZE07-ZE10. DOI: 10.7860/JCDR/2014/8764.4355.
8. Tomsia A.P., Launey M.E., Lee J.S. Nanotechnology approaches for better dental implants, The International Journal of Oral & Maxillofacial Implants, 2011, vol. 26, Suppl. 2011, pp. 25-44.
9. Medkov M.A., Grischenko D.N., Rudnev V.S. Osobennosti osteoreparatsii pri ispol'zovanii biomaterialov na osnove gidroksiapatita i strontsij-zameshchennogo gidroksiapatita [Osteoreparation features using biomaterials based on hydroxyapatite and strontium-substituted hydroxya], Tikhookeanskii meditsinskii zhurnal [Pacific Medical Journal], 2015, no. 4 (62), pp. 48-52. (In Russian).
10. Mohammadi H., Sepantafar M., Ostadrahimi A. The role of bioinorganics in improving the mechanical properties of silicate ceramics as bone regenerative materials, The Journal of Ceramic Science and Technology, 2015, vol. 6, no. 1, pp. 1-8. DOI: 10.4416/JCST2014-00043.
11. Ayurova D.B. Prakticheskoe znachenie professional'noj gigieny v oblasti implantatatov [Practical importance of professional hygiene in the region of implants], Mezhdunarodnyj studencheskij nauchnyj vestnik [International Student Scientific Bulletin], 2019, no. 5-2, pp. 35. (In Russian).
12. Yu S.H., Oh T.J. Diabetes mellitus–Dental implants and periodontal disease,Diabetes Mellitus: Impact on Bone, Dental and Musculoskeletal Health, Bones, Joints, and Hormones series, ed. by MengHee Tan. London, Academic Press, 2020, chapter 7, pp. 139-158. DOI: 10.1016/B978-0-12-820605-8.00007-3.
13. Yang Y., Zhuang Y., He Y. et al. Fine tuning of the dimensionality of zinc silicate nanostructures and their application as highly efficient absorbents for toxic metal ions, Nano Research, 2010, vol. 3, issue 8, pp. 581-593. DOI: 10.1007/s12274-010-0019-3.
14. Qu J., Cao C.-Y., Hong Y.-L. New hierarchical zinc silicate nanostructures and their application in lead ion adsorption, Journal of Materials Chemistry, 2012, vol. 22, issue 8, pp. 3562-3567. DOI: 10.1039/C2JM15841H.
15. Song Y., Wu H., Gao Y. et al. Zinc silicate/nano-hydroxyapatite/collagen scaffolds promote angiogenesis and bone regeneration via the p38 MAPK pathway in activated monocytes, ACS Applied Materials & Interfaces, 2020, vol. 12, issue 14, pp. 16058-16075. DOI: 10.1021/acsami.0c00470.
16. Jindal A., Mondal T., Bhattacharya J. An in vitro evaluation of zinc silicate fortified chitosan scaffolds for bone tissue engineering, International Journal of Biological Macromolecules, 2020, vol. 164, pp. 4252-4262. DOI: 10.1016/j.ijbiomac.2020.09.018.
17. Yasnaya M.A., Blinov A.V., Golik A.B. et al. Issledovanie vliyaniya molekulyarnoj massy polietilenglikolya na termicheskie prevrashcheniya nanorazmernogo oksida medi [Influence of the polyethylene glycol molecular mass on thermal transitions of nanosized copper oxide], Fiziko-khimicheskie aspekty izucheniya klasterov, nanostruktur i nanomaterialov [Physico-chemical aspects of studying clusters, nanostructures and nanomaterials], 2021, no. 13, pp. 937-946. DOI: 10.26456/pcascnn/2021.13.937. (In Russian).

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