纳米TiO2和HA增强率对PLA基生物复合材料力学、形态和热性能的影响

IF 3.2 4区 医学 Q2 ENGINEERING, BIOMEDICAL
Hatice Evlen, Sümeyye Ceren Eroğlu
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引用次数: 0

摘要

虽然骨组织具有自我再生的能力,但这种再生能力在较大缺陷或病理条件下可能受到限制。生物材料和组织支架的发展对支持骨再生至关重要。在这种情况下,聚合物纳米复合材料在骨组织工程中越来越引起人们的兴趣,通过在聚合物基体中分散纳米级填料,聚合物的柔韧性和无机组分的机械强度都使其受益。本研究对于优化聚乳酸(PLA)、羟基磷灰石(HA)和二氧化钛(TiO2)组分增强比例形成的杂化复合材料的多方面表征具有重要意义。该研究的独创性源于对所讨论材料的力学、形态学、热学和生物学特性的全面检查,并根据从文献中不同研究人员的研究获得的数据确定最佳增强范围。这种多参数和整体的方法有助于扩大材料的潜在应用领域,并有助于对材料科学领域的更深入理解。本研究旨在探讨HA和TiO2的增强以及增强率对纳米PLA基材料的热、力学和形态学的影响。为了合成这些复合材料,在纳米PLA基体材料中加入10%的纳米HA和不同比例的纳米TiO2(1%、2%和3%)。采用铸造颗粒去除法制备试样。在模拟体液(SBF)中浸泡1 ~ 4周进行生物相容性试验。通过SEM, EDS, XRD, DTA, DCS, TG分析和压缩测试对其力学,形态和热性能进行了研究。结果表明,随着在SBF中停留时间的增加,样品表面的磷灰石层逐渐增厚,HA和TiO2对基体材料的增强支持了磷灰石层的形成。此外,PLA/HA样品的质量损失最大。复合材料的分解温度随着HA和TiO2的加入而降低。此外,TiO2增强率的增加改善了复合材料的力学性能,提高了复合材料的强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Assessment of the Effects of Nano TiO2 and HA Reinforcement Ratio on Mechanical, Morphological, and Thermal Properties of PLA Matrix Bio Composites

Assessment of the Effects of Nano TiO2 and HA Reinforcement Ratio on Mechanical, Morphological, and Thermal Properties of PLA Matrix Bio Composites

Although bone tissue has the ability to regenerate itself, this regeneration capacity may be limited in large defects or pathological conditions. The development of biomaterials and tissue scaffolds is of critical importance in supporting bone regeneration. In this context, polymer nanocomposites, which are increasingly gaining interest in bone tissue engineering, benefit from both the flexibility of the polymer and the mechanical strength of inorganic components by dispersing nano-sized fillers in the polymer matrix. This study is important in terms of the multifaceted characterization of the hybrid composite material formed with optimized reinforcement ratios of polylactic acid (PLA), hydroxyapatite (HA), and titanium dioxide (TiO2) components. The originality of the study stems from the comprehensive examination of the mechanical, morphological, thermal, and biological properties of the material in question and the determination of the optimum reinforcement range in light of data obtained from the studies of different researchers in the literature. This multiparameter and holistic approach contributes to the expansion of the potential application areas of the material and the development of a more in-depth understanding of the field of materials science. This study aims to investigate the thermal, mechanical, and morphological effects of HA and TiO2 reinforcement and reinforcement ratio on nano PLA matrix material. To synthesize these composites, 10% nano HA and different ratios of nano TiO2 (1%, 2%, and 3%) were added to the nano PLA matrix material. Specimens were prepared by using the casting particle removal method. For the biocompatibility test of the samples, all composite samples were immersed for 1–4 weeks in simulated body fluid (SBF). For the investigation of mechanical, morphological, and thermal properties, SEM, EDS, XRD, DTA, DCS, TG analyses, and compression tests were performed. As a result, it was observed that the apatite layer on the sample surfaces gradually thickened as the residence time in the SBF increased, and the HA and TiO2 reinforcement to the matrix material supported the formation of the apatite layer. Also, the highest mass loss was seen in PLA/HA samples. The decomposition temperature of the composites decreased with the addition of HA and TiO2 to the PLA matrix material. In addition, it has been observed that increasing the TiO2 reinforcement ratio improves the mechanical properties of the composite and increases its strength.

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来源期刊
CiteScore
7.50
自引率
2.90%
发文量
199
审稿时长
12 months
期刊介绍: Journal of Biomedical Materials Research – Part B: Applied Biomaterials is a highly interdisciplinary peer-reviewed journal serving the needs of biomaterials professionals who design, develop, produce and apply biomaterials and medical devices. It has the common focus of biomaterials applied to the human body and covers all disciplines where medical devices are used. Papers are published on biomaterials related to medical device development and manufacture, degradation in the body, nano- and biomimetic- biomaterials interactions, mechanics of biomaterials, implant retrieval and analysis, tissue-biomaterial surface interactions, wound healing, infection, drug delivery, standards and regulation of devices, animal and pre-clinical studies of biomaterials and medical devices, and tissue-biopolymer-material combination products. Manuscripts are published in one of six formats: • original research reports • short research and development reports • scientific reviews • current concepts articles • special reports • editorials Journal of Biomedical Materials Research – Part B: Applied Biomaterials is an official journal of the Society for Biomaterials, Japanese Society for Biomaterials, the Australasian Society for Biomaterials, and the Korean Society for Biomaterials. Manuscripts from all countries are invited but must be in English. Authors are not required to be members of the affiliated Societies, but members of these societies are encouraged to submit their work to the journal for consideration.
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