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首页> 外文期刊>Journal of Functional Biomaterials >How Sensitive Is the Elasticity of Hydroxyapatite-Nanoparticle-Reinforced Chitosan Composite to Changes in Particle Concentration and Crystallization Temperature?
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How Sensitive Is the Elasticity of Hydroxyapatite-Nanoparticle-Reinforced Chitosan Composite to Changes in Particle Concentration and Crystallization Temperature?

机译:羟基磷灰石-纳米颗粒增强的壳聚糖复合材料的弹性对颗粒浓度和结晶温度变化的敏感性如何?

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Hydroxyapatite (HA) nanoparticle-reinforced chitosan composites are biocompatible and biodegradable structural materials that are used as biomaterials in tissue engineering. However, in order for these materials to function effectively as intended, e.g., to provide adequate structural support for repairing damaged tissues, it is necessary to analyse and optimise the material processing parameters that affect the relevant mechanical properties. Here we are concerned with the strength, stiffness and toughness of wet-spun HA-reinforced chitosan fibres. Unlike previous studies which have addressed each of these parameters as singly applied treatments, we have carried out an experiment designed using a two-factor analysis of variance to study the main effects of two key material processing parameters, namely HA concentration and crystallization temperature, and their interactions on the respective mechanical properties of the composite fibres. The analysis reveals that significant interaction occurs between the crystallization temperature and HA concentration. Starting at a low HA concentration level, the magnitude of the respective mechanical properties decreases significantly with increasing HA concentration until a critical HA concentration is reached, at around 0.20–0.30 (HA mass fraction), beyond which the magnitude of the mechanical properties increases significantly with HA concentration. The sensitivity of the mechanical properties to crystallization temperature is masked by the interaction between the two parameters—further analysis reveals that the dependence on crystallization temperature is significant in at least some levels of HA concentration. The magnitude of the mechanical properties of the chitosan composite fibre corresponding to 40 °C is higher than that at 100 °C at low HA concentration; the reverse applies at high HA concentration. In conclusion, the elasticity of the HA nanoparticle-reinforced chitosan composite fibre is sensitive to HA concentration and crystallization temperature, and there exists a critical concentration level whereby the magnitude of the mechanical property is a minimum.
机译:羟基磷灰石(HA)纳米颗粒增强的壳聚糖复合材料是生物相容性和可生物降解的结构材料,在组织工程中用作生物材料。但是,为了使这些材料按预期有效地起作用,例如为修复受损组织提供足够的结构支撑,必须分析和优化影响相关机械性能的材料加工参数。在这里,我们关注湿纺HA增强壳聚糖纤维的强度,刚度和韧性。与以前的研究单独处理这些参数中的每个参数不同,我们进行了一项使用方差两因素分析设计的实验,以研究两个关键材料加工参数(HA浓度和结晶温度)的主要影响,以及它们在复合纤维各自的机械性能上的相互作用。分析表明,结晶温度和HA浓度之间存在显着的相互作用。从低HA浓度水平开始,随着HA浓度的增加,各个机械性能的幅度会显着降低,直到达到临界HA浓度(约0.20–0.30(HA质量分数)),超过此范围,机械性能的幅度将显着增加与HA浓度。机械性能对结晶温度的敏感性被这两个参数之间的相互作用所掩盖-进一步的分析表明,至少在某些水平的HA浓度下,对结晶温度的依赖性显着。在低HA浓度下,壳聚糖复合纤维的机械性能强度在40°C时高于100°C。相反,适用于高HA浓度。总之,HA纳米颗粒增强的壳聚糖复合纤维的弹性对HA浓度和结晶温度敏感,并且存在临界浓度水平,从而机械性能的幅度最小。

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