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Facile Preparative Access to Bioactive Silicon Oxycarbides with Tunable Porosity

机译:易于制备具有可调孔隙率的生物活性氧化硅

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摘要

In the present work, Ca-containing silicon oxycarbides (SiCaOC) with varying Ca content have been synthesized via sol-gel processing and thermal treatment in inert gas atmosphere (pyrolysis). It has been shown that the as-prepared SiCaOC materials with low Ca loadings (Ca/Si molar ratios = 0.05 or 0.12) were X-ray amorphous; their glassy network contains Q sites, indicating the presence of Ca at non-bridging-oxygen sites. SiCaOC with high Ca content (i.e., Ca/Si molar ratio = 0.50) exhibits the presence of crystalline calcium silicate (mainly pseudowollastonite). Furthermore, it has been shown that the incorporation of Ca into the SiOC glassy network has a significant effect on its porosity and specific surface area. Thus, the as-prepared Ca-free SiOC material is shown to be non-porous and having a specific surface area (SSA) of 22.5 m /g; whereas SiCaOC with Ca/Si molar ratio of 0.05 exhibits mesoporosity and a SSA value of 123.4 m /g. The further increase of Ca content leads to a decrease of the SSA and the generation of macroporosity in SiCaOC; thus, SiCaOC with Ca/Si molar ratio of 0.12 is macroporous and exhibits a SSA value of 39.5 m /g. Bioactivity assessment in simulated body fluid (SBF) confirms the hydroxyapatite formation on all SiCaOC samples after seven days soaking, unlike the relatively inert ternary silicon oxycarbide reference. In particular, SiCaOC with a Ca/Si molar ratio of 0.05 shows an increased apatite forming ability compared to that of SiCaOC with Ca/Si molar ratio of 0.12; this difference is considered to be a direct consequence of the significantly higher SSA of the sample with the Ca/Si ratio of 0.05. The present work indicates two effects of Ca incorporation into the silicon oxycarbide glassy network on its bioactivity: Firstly, Ca is shown to contribute to the slight depolymerization of the network, which clearly triggers the hydroxyapatite formation (compare the bioactive behavior of SiOC to that of SiCaOC with Ca/Si molar ratio 0.12 upon SBF exposure); secondly, the Ca incorporation seems to strongly affect the porosity and SSA in the prepared SiCaOC materials. There is an optimum of Ca loading into the silicon oxycarbide glassy network (at a Ca/Si molar ration of 0.05), which provides mesoporosity and reaches maximum SSA, both highly beneficial for the bioactive behavior of the materials. An increase of the Ca loading leads, in addition to the crystallization of calcium silicates, to a coarsening of the pores (i.e., macroporosity) and a significant decrease of the SSA, both negatively affecting the bioactivity.
机译:在目前的工作中,通过溶胶-凝胶法和惰性气体气氛中的热处理(热解)合成了具有不同钙含量的含钙的碳氧化硅(SiCaOC)。已经表明,所制备的低Ca含量(Ca / Si摩尔比= 0.05或0.12)的SiCaOC材料是X射线无定形的。它们的玻璃状网络包含Q位点,表明在非桥接氧位点处存在Ca。具有高Ca含量(即Ca / Si摩尔比= 0.50)的SiCaOC表现出结晶硅酸钙(主要是假硅灰石)的存在。此外,已经表明,将Ca掺入SiOC玻璃状网络对其孔隙率和比表面积具有显着影响。因此,所制备的无Ca的SiOC材料显示为无孔的,并且具有22.5m 2 / g的比表面积(SSA);因此,其比表面积为22.5m 2 / g。 Ca / Si摩尔比为0.05的SiCaOC表现出介孔性,SSA值为123.4 m / g。 Ca含量的进一步增加导致SSaOC的减少和SiCaOC中大孔的产生。因此,Ca / Si摩尔比为0.12的SiCaOC是大孔的,SSA值为39.5m 2 / g。在模拟体液(SBF)中的生物活性评估确认了浸泡7天后所有SiCaOC样品上羟基磷灰石的形成,这与相对惰性的三氧化碳硅参照物不同。特别地,与Ca / Si摩尔比为0.12的SiCaOC相比,Ca / Si摩尔比为0.05的SiCaOC显示出增加的磷灰石形成能力;因此,CaCa / Si摩尔比为0.05的SiCaOC具有更高的磷灰石形成能力。这种差异被认为是Ca / Si比为0.05时样品的SSA明显更高的直接结果。目前的工作表明,Ca混入碳氧化硅玻璃状网络中对其生物活性有两个影响:首先,Ca被证明有助于网络的轻微解聚,这显然触发了羟基磷灰石的形成(将SiOC的生物活性行为与SiOC的生物活性行为进行比较)。 SBF暴露时Ca / Si摩尔比为0.12的SiCaOC);其次,Ca的掺入似乎对制备的SiCaOC材料的孔隙率和SSA有很大影响。 Ca装入碳化硅玻璃网络中的最佳状态(Ca / Si摩尔比为0.05)可提供介孔性并达到最大SSA,这对材料的生物活性非常有利。除了硅酸钙的结晶之外,Ca含量的增加还导致孔的粗化(即,大孔性)和SSA的显着降低,均不利地影响生物活性。

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