1,320
Views
1
CrossRef citations to date
0
Altmetric
Articles

Characterization and comparison of as received and clinically retrieved Bio-active™ orthodontic archwires

, , , , , , , & show all
Pages 1301-1311 | Received 21 Apr 2021, Accepted 01 Aug 2021, Published online: 31 Aug 2021

References

  • Ibe DM, Segner D. Superelastic materials displaying different force levels within one archwire. J Orofac Orthop. 1998;59(1):29–38.
  • GC Orthodontics. [accessed 2020 Mar 18]. Available from: https://www.gcorthodontics.eu/GC/us/content/Bio-active.
  • Miura F, Mogi M, Ohura Y. Japanese NiTi alloy wire: use of the direct electric resistance heat treatment method. Eur J Orthod. 1988;10(3):187–191.
  • Kauffman GB, Mayo I. The story of nitinol: the serendipitous discovery of the memory metal and its applications. Chem Educator. 1997;2(2):1–21.
  • Oguienko O. Mechanical properties of graded thermodynamic nickel titanium archwires in bending and torsion [dissertation]. Canada: Faculty of Dentistry, University of Toronto; 2017.
  • Syed M, Chopra R, Sachdev V. Allergic reactions to dental materials-a systematic review. J Clin Diagn Res. 2015;9(10):ZE04–ZE09.
  • Zigante M, Mlinaric MR, Kastelan M, et al. Symptoms of titanium and nickel allergic sensitization in orthodontic treatment. Progr Orthod. 2020;21(1):1–7.
  • Oliveira DC. Propriedades físicas e desenvolvimento de formação de biofilme em fios ortodônticos estéticos [dissertation]. Brasil: Universidade Federal de Pelotas; 2018.
  • Lombardo L, Ceci M, Mollica F, et al. Mechanical properties of multi-force vs. conventional NiTi archwires. J Orofac Orthop. 2019;80(2):57–67.
  • ETCHANT STORE of ES Laboratory, LLC. [accessed 2020 Jun 25]; Available from: https://etchantstore.com/?s=Kroll+reagent.
  • Iijima M, Brantley WA, Kawashima I, et al. Micro-X-ray diffraction observation of nickel–titanium orthodontic wires in simulated oral environment. Biomaterials. 2004;25(1):171–176.
  • Ilievska I, Petrov V, Andreeva L, et al. Structural and morphological characterization of heat-activated nickel-titanium archwires. Bulg Chem Commun. 2017;49(Special Issue A):33–39.
  • Ilievska I, Petrov V, Mihailov V, et al. Elemental composition and structural characteristics of as-received TriTaniumTM orthodontic archwire. J Phys: Conf Ser. 2018;992:1–5.
  • ImageJ. Image processing and analysis in Java; [accessed 2020 Aug 20]. Available from: https://imagej.nih.gov/ij/.
  • Daems J, Celis JP, Willems G. Morphological characterization of as-received and in vivo orthodontic stainless steel archwires. Eur J Orthod. 2009;31(3):260–265.
  • Bourauel C, Fries T, Drescher D, et al. Surface roughness of orthodontic wires via atomic force microscopy, laser specular reflectance, and profilometry. Eur J Orthod. 1998;20(1):79–92.
  • Doshi UH, Bhad-Patil WA. Static frictional force and surface roughness of various bracket and wire combinations. Am J Orthod Dentofacial Orthop. 2011;139(1):74–79.
  • Eliades T, Athanasiou AE. In vivo aging of orthodontic alloys: implications for corrosion potential, nickel release, and biocompatibility. Angle Orthod. 2002;72:222–237.
  • Saunders CR, Kusy RP. Surface topography and frictional characteristics of ceramic brackets. Am J Orthod Dentofac. 1994;106(1):76–87.
  • Cherneva S, Stoyanova-Ivanova A, Gueorguieva M, et al. Nanoindentation and surface characterization of clinically retrieved multi-force NiTi orthodontic archwires. RJB. 2020;24(Issue 3):240–256.
  • Thompson A, Attwood D, Gullikson E, et al. X-ray data booklet. Center for X-ray optics and advanced light source. 2nd ed. Berkeley, California: Lawrence Berkeley National Laboratory; 2001.
  • Fasci MA, Tran KQ, Karabin LB. Multiforce orthodontic archwire. United States patent US 10575929B2. 2020 Mar 3.
  • El-Bagoury N, Amin MA, Shokry H. Microstructure and corrosion behavior of Ni52Ti48-xCox shape memory alloys in 1.0 M HCl solution. Int J Electrochem Sci. 2013;8:1246–1261.
  • Bhagyaraj J, Ramaiah KV, Saikrishna CN, et al. Behavior and effect of Ti2Ni phase during processing of NiTi shape memory alloy wire from cast ingot. J Alloys Compd. 2013;581:344–351.
  • Burlacu L, Cimpoeşu N, Bujoreanu LG, et al. Exploiting heat treatment effects on SMAs macro and microscopic properties in developing fire protection devices. IOP Conf Ser: Mater Sci Eng. 2017;227:012018.
  • NIST Electronic Database. U.S. Department of Commerce; [accessed 2020 Jul 20]. Available from: https://physics.nist.gov/PhysRefData/ASD/lines_form.html.
  • Oliver WC, Pharr GM. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments. J Mater Res. 1992;7(6):1564–1583.
  • Petrov V, Andreeva L, Petkov G, et al. Modelling of nickel release dynamics for three types of nickel-titan orthodontic wires. Proceedings of the 2nd International Conference on Applications of Intelligent Systems, January 2019, Article No.: 20, 1–5.