Faculty of Chemical Technology and Engineering, Bydgoszcz University of Science and Technology, PL-85326 Bydgoszcz, Poland.
Faculty of Chemical Technology and Engineering, Bydgoszcz University of Science and Technology, PL-85326 Bydgoszcz, Poland.
Int J Biol Macromol. 2024 May;266(Pt 1):131190. doi: 10.1016/j.ijbiomac.2024.131190. Epub 2024 Mar 27.
In this study, new, functional hydroxyapatite-lignin hybrid systems were designed and characterized. The efficacy of the mechanical method utilized to obtain these systems was confirmed by Fourier transform infrared spectroscopy. The hybrid materials were also noted for their good electrokinetic stability and thermal stability. The introduction of 2.5 to 10 wt% hydroxyapatite-lignin systems into an unplasticized PVC blend using a two-step kneading and pressing method resulted in composites with relatively homogeneous distribution, as confirmed by SEM observations. The processing properties of the filler-containing blends were investigated using plastographometric analysis and MFR tests. The introduction of a lignin-predominant hybrid system into the PVC matrix results in a significant improvement of thermal stability, softening temperature, and tensile strength, while maintaining sufficient impact strength for numerous applications. Hybrid materials containing higher amounts of added lignin are promising materials with bacteriostatic properties. This can be utilized to stabilize and prevent the deposition of microorganisms, as well as the formation of biofilms, on material surfaces, thereby limiting the spread of pathogens. New eco-composites based on PVC and a hybrid filler containing lignin show promise in producing components with surfaces resistant to bacterial colonization. Hence, these materials could be used in medical and hospital equipment.
在这项研究中,设计并表征了新型功能性羟基磷灰石-木质素杂化系统。通过傅里叶变换红外光谱证实了获得这些系统所采用的机械方法的有效性。杂化材料还具有良好的电动稳定性和热稳定性。通过两步捏合和压制法,将 2.5 至 10wt%的羟基磷灰石-木质素系统引入未增塑聚氯乙烯共混物中,SEM 观察证实了复合材料具有相对均匀的分布。通过塑度计分析和 MFR 测试研究了含填料共混物的加工性能。将木质素占主导地位的杂化系统引入 PVC 基体中,可显著提高热稳定性、软化温度和拉伸强度,同时保持足够的冲击强度,适用于多种应用。含有较高添加量木质素的杂化材料具有抑菌性能,有望成为稳定和防止微生物在材料表面沉积和生物膜形成的材料,从而限制病原体的传播。基于聚氯乙烯和含有木质素的杂化填料的新型生态复合材料有望生产出表面具有抗细菌定植能力的组件。因此,这些材料可用于医疗和医院设备。