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Stability of Primary Amine Groups During Plasma Polymerization for the Surface Modification of Artificial Bones

ORAL

Abstract

The surface modification of calcium-phosphate artificial bones was performed with amine-containing polymer deposition by low-pressure pulsed plasmas [1-3]. It has been experimentally demonstrated to improve bone regeneration when the treated bones are implanted in animals [3]. The goal of this study is to examine the possibility of increasing the amount of amine embedded in the deposited polymer film. The experimental study of amine-containing polymer deposition showed that the ratio of the number of primary amine groups (-NH2) to the number of carbon (C) atoms in a plasma-deposited hydrocarbon film was typically about 3 % even in the presence of a relatively high amount of hydrogen (H) atoms in the plasma. In this study, we used molecular dynamics (MD) simulations [4] to examine how amine groups can be formed in a plasma polymerization process. Considering a methane (CH4) and nitrogen (N2) plasma process, we examined the effects of incident CH2 or CH3 radicals, NH2 radicals, and CH2+ or CH3+ energetic ions on the amine formation. The simulations showed that H atoms of incident NH2 radicals tended to react with surrounding C atoms in the polymerization process, resulting in the formation of secondary amine groups (-NH). The results were thus qualitatively consistent with the experimental observation that only a small percentage of primary amines were formed in plasma deposited hydrocarbon films.

Publication: [1] A. A. Harumningtyas et al., "Amine Rich Plasma Polymerization using Inverter Plasmas for Orthopaedic Application," in Proc. of Int. Symp. on Plasma Chemistry (ISPC), 2019, pp. 8–10.<br>[2] Z. Donkó, L. Zajičková, S. Sugimoto, A. A. Harumningtyas, and S. Hamaguchi, "Modeling characterisation of a bipolar pulsed discharge," Plasma Sources Sci. Technol., 29 (10) 104001 (2020).<br>[3] Joe Kodama, Anjar Anggraini Harumningtyas, Tomoko Ito, Satoshi Hamaguchi, et al., "Amine Modification of Calcium Phosphates by Low-Pressure CH4/N2/He Plasma for Bone Regeneration," Scientific Report, (2021) under revision. <br>[4] M. Michlíček, et al., "Molecular dynamics simulation of amine groups formation during plasma processing of polystyrene surfaces," Plasma Sources Sci. Technol. 29 105020 (2020).

Presenters

  • Anjar Anggraini A Harumningtyas

    Osaka Univ

Authors

  • Anjar Anggraini A Harumningtyas

    Osaka Univ

  • Tomoko Ito

    Center for Atomic Molecular and Technology, Graduate School of Engineering, Osaka University, Japan

  • Satoshi Sugimoto

    Center for Atomic Molecular and Technology, Graduate School of Engineering, Osaka University, Japan

  • Michiro Isobe

    Center for Atomic Molecular and Technology, Graduate School of Engineering, Osaka University, Japan

  • Joe Kodama

    Orthopedic Department, Graduate School of Medicine, Osaka University, Japan

  • Takashi Kaito

    Orthopedic Department, Graduate School of Medicine, Osaka University, Japan

  • Lenka Zajickova

    Masaryk University, Brno, Czech Republic

  • Satoshi Hamaguchi

    Osaka Univ