Advanced Mechanical and Materials Characterization Division, CSIR-Central Glass and Ceramic Research Institute, 196, Raja S.C. Mullick Road, Kolkata 700032, India.
Advanced Mechanical and Materials Characterization Division, CSIR-Central Glass and Ceramic Research Institute, 196, Raja S.C. Mullick Road, Kolkata 700032, India; Department of Material Science and Nanotechnology, Jadavpur University, Kolkata 700032, India.
J Mech Behav Biomed Mater. 2018 Oct;86:264-283. doi: 10.1016/j.jmbbm.2018.06.046. Epub 2018 Jun 30.
Here we report for the very first time the synthesis of 100% phase pure calcium silicate nanoparticles (CSNPs) of the α-wollastonite phase without using any surfactant or peptizer at the lowest ever reported calcination temperature of 850 °C. Further, the phase purity is confirmed by quantitative phase analysis. The nano-network like microstructure of the CSNPs is characterized by FTIR, Raman, XRD, FESEM, TEM, TGA, DSC etc. techniques to derive the structure property correlations. The performance efficacies of the CSNPs against gram-positive e.g., S. pyogenes and S. aureus (NCIM2127) and gram-negative e.g., E. coli (NCIM2065) bacterial strains are studied. The biocompatibility of the CSNPs is established by using the conventional mouse embryonic osteoblast cell line (MC3T3). In addition, the biofilm inhibition efficacies of two varieties of CSNPs e.g., CSNPs(W) and CSNPs(WC) are investigated. Further, the interconnection between ROS e.g., superoxide (O) and hydroxyl radical (OH) generation capabilities of CSNPs and their biofilm inhibition efficacies is clearly established for the very first time. Finally, the mechanical responses of the CSNPs at the microstructural length scale are investigated by nanoindentation. The results confirm that the α-wollastonite phases present in CSNPs(W) and CSNPs(WC) possess extraordinarily high nanohardness and Young's moduli values. Therefore, these materials are well suited for orthopaedic and endodontic applications.
在这里,我们首次报道了在有史以来最低的煅烧温度 850°C 下,无需使用任何表面活性剂或塑化剂,合成 100%纯相硅酸钙纳米粒子(CSNPs)的方法,其物相为 α-硅灰石相。此外,通过定量相分析确认了物相纯度。CSNPs 的纳米网络状微观结构通过 FTIR、Raman、XRD、FESEM、TEM、TGA、DSC 等技术进行了表征,以得出结构-性能相关性。研究了 CSNPs 对革兰氏阳性菌(例如 S. pyogenes 和 S. aureus(NCIM2127))和革兰氏阴性菌(例如 E. coli(NCIM2065))的抗菌性能。通过使用传统的小鼠胚胎成骨细胞系(MC3T3),确定了 CSNPs 的生物相容性。此外,还研究了两种 CSNPs(CSNPs(W)和 CSNPs(WC))的生物膜抑制效果。此外,首次明确建立了 CSNPs 产生 ROS(例如超氧阴离子 (O)和羟基自由基 (OH))的能力与其生物膜抑制效果之间的联系。最后,通过纳米压痕法研究了 CSNPs 在微观结构长度尺度上的力学响应。结果证实,CSNPs(W)和 CSNPs(WC)中存在的 α-硅灰石相具有非常高的纳米硬度和杨氏模量值。因此,这些材料非常适合用于矫形和牙髓应用。