通过铁掺杂来裁剪硅酸钙基生物陶瓷的力学性能和体外生物学性能是未来材料的发展方向。

Myat Myat-Htun, A. M. Mohd Noor, M. Kawashita, Y. B. Baba Ismail
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引用次数: 10

摘要

通过高速行星球磨合成了Fe3+含量分别为0.3、0.6和0.9 mol%的致密铁掺杂的钙镁石陶瓷,随后在1200和1250°C下进行烧结。目前工作的目的是研究三价铁(Fe3+)在调节艾克曼铁矿的物理力学和体外生物学特性方面的作用。将Fe3+掺入钙铝石主体中并在1200°C的高温下烧结,在提高钙铝石陶瓷的可烧结性和致密化方面产生了协同效应。尽管改变了Fe3+含量,但发现在1250°C下,掺杂陶瓷的致密化和机械性能(即径向拉伸强度、维氏显微硬度和断裂韧性)相似,表明这种新开发的配方与温度有关。与未掺杂的艾克镁石相比,Fe3+掺杂的艾克镁石陶瓷显示出更大的体外生物活性,在模拟体液中浸泡21天后,针状磷灰石沉淀物的覆盖率更好。此外,在培养的3天和7天中,与掺杂Fe3+的艾克镁石陶瓷直接接触培养的Rat-1细胞显示出几乎是未掺杂的细胞增殖水平的两倍。我们的发现表明,0.9Fe-AK陶瓷是未来骨替代材料的合适配方,因为它提供了足够的机械强度、良好的生物活性和促进细胞增殖的能力。
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Tailoring mechanical and in vitro biological properties of calcium‒silicate based bioceramic through iron doping in developing future material.
Dense iron-doped akermanite ceramics with 0.3, 0.6 and 0.9 mol% of Fe3+ were synthesized via high-speed planetary ball milling and subsequently subjected to sintering at 1200 and 1250 °C. The aim of the current work was to investigate the effect of trivalent iron (Fe3+) in tuning the physicomechanical and in vitro biological properties of akermanite. The incorporation of Fe3+ into akermanite host and sintering at a high temperature of 1200 °C resulted in a synergistic effect in enhancing the sinterability and densification of akermanite ceramics. Although varying the Fe3+ content, it was found that similar densification and mechanical properties (i.e., diametral tensile strength, Vickers microhardness and fracture toughness) were observed for the doped ceramics at 1250 °C, indicating that this newly developed formulation is temperature-dependent. Fe3+-doped akermanite ceramics revealed greater in vitro bioactivity as compared to undoped akermanite, demonstrated by better coverage of needle-like apatite precipitates after 21 days of immersion in simulated body fluid. Additionally, Rat-1 cells cultured in direct contact with Fe3+-doped akermanite ceramics showed almost double levels of cell proliferation than their undoped counterpart on both 3 and 7 days of culture. Our finding suggests that 0.9Fe-AK ceramic is a suitable formulation to be considered for future bone substitute material as it provides sufficient mechanical strength as well as good bioactivity and the ability to encourage cell proliferation.
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