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Mechanical, in-vitro biological and antimicrobial characterization as an evaluation protocol of a ceramic material based on alkaline activated metakaolin

机译:机械,体外生物和抗微生物特征作为基于碱性活性甲酚的陶瓷材料的评价方案

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摘要

The study aimed to correlate mechanical, physical and biological properties (in-vitro) of a ceramic material, based on alkaline activated metakaolin (MK) and CaCO3, to be used in the health sector. The designed materials reached compressive strengths in the range of 18 MPa to 29 MPa, after 7 days of curing, and porosity between 50 and 30%. The higher strength materials were subjected to a reactivity test for the formation of a layer of hydroxyapatite in the presence of simulated body fluid (SBF). By means of scanning electron microscopy, the in-situ growth of rounded crystals was identified, indicating the presence of elements such as Ca and P in its chemical composition. For the evaluation of the biological and anti-bacterial response, a system with the capacity to form a calcium phosphate layer on its surface was selected, with an increase in the pH value of the SBF solution and a compressive strength of at least 25 MPa. The results of the biological protocol showed that the material, due to its high pH, generates haemolysis or the rupture of red blood cells, indicating that the developed material needs to be modified in its chemical composition to decrease the high pH or to guarantee, by means of an additional processing stage, to decrease leaching of alkaline elements to the body fluid and thus not cause harmful effects on the human body. On the other hand, after being evaluated against several bacteria it was identified that the material had an inhibitory effect on Pseudomonas aeruginosa which makes suitable the material to be used in external applications.
机译:该研究旨在将陶瓷材料的机械,物理和生物学性质(体外)相关,基于碱性活化的Metakaolin(MK)和CaCO 3,用于卫生部门。经过7天的固化后,设计的材料在18MPa至29MPa的范围内达到压缩强度,孔隙率为50至30%。在模拟体液(SBF)存在下,对更高的强度材料进行反应性试验,以形成羟基磷灰石层。通过扫描电子显微镜检查,鉴定了圆形晶体的原位生长,表明在其化学组合物中存在诸如Ca和P的元素。为了评估生物和抗菌反应,选择具有在其表面上形成磷酸钙层的能力的系统,随着SBF溶液的pH值和至少25MPa的压缩强度而增加。生物方案的结果表明,由于其高pH,物质产生溶血或红细胞破裂,表明所发育的材料需要在其化学组合物中进行改性,以减少高pH或保证,通过额外处理阶段的方法,以将碱性元素的浸出减少到体液中,因此对人体没有造成有害影响。另一方面,在评估几种细菌后,鉴定了该材料对假单胞菌铜绿假单胞菌具有抑制作用,这使得适用于外部应用的材料。

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