Eleni Psochia, L. Papadopoulos, Dimitrios Gkiliopoulos, A. Francone, Maria-Eirini Grigora, D. Tzetzis, J. V. de Castro, N. Neves, K. Triantafyllidis, C. Torres, N. Kehagias, D. Bikiaris
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引用次数: 14
摘要
本文采用介孔二氧化硅纳米颗粒、介孔泡沫塑料(MCF)和Santa Barbara amorphus -15 (SBA)对基于聚l -乳酸(PLLA)的聚合物纳米复合薄膜进行了增强。PLLA是一种生物基脂肪族聚酯,具有优异的热机械性能,并且已经商业化用于包装应用。目的是利用已经建立的纳米载体纳米颗粒来增强pla的机械和热性能。由于引入抗菌特性已成为包装应用的新兴趋势,为了实现有效的抗菌活性,利用热纳米压印技术(t-NIL)在薄膜表面实现了锥形和针状纳米结构装饰的微/纳米3D微柱,这是一种新颖可行的制造技术,具有多种工业应用。利用傅里叶变换红外光谱(FT-IR)和x射线衍射(XRD)对材料的组成和结晶度进行了表征,并用差示扫描量热法(DSC)和热重分析(TGA)对材料的热性能进行了表征。采用纳米压痕技术研究了膜的力学性能,并在体外测试了膜对大肠杆菌和金黄色葡萄球菌的抑菌活性。结果表明,纳米复合PLLA薄膜的成功生产,与原始材料相比,具有更好的机械和热性能,以及显着的抗菌活性,为生物基智能包装材料的潜在发展奠定了新的基础。
Bottom-Up Development of Nanoimprinted PLLA Composite Films with Enhanced Antibacterial Properties for Smart Packaging Applications
In this work, polymer nanocomposite films based on poly(L-lactic acid) (PLLA) were reinforced with mesoporous silica nanoparticles, mesoporous cellular foam (MCF) and Santa Barbara amorphous-15 (SBA). PLLA is a biobased aliphatic polyester, that possesses excellent thermomechanical properties, and has already been commercialized for packaging applications. The aim was to utilize nanoparticles that have already been established as nanocarriers to enhance the mechanical and thermal properties of PLLA. Since the introduction of antibacterial properties has become an emerging trend in packaging applications, to achieve an effective antimicrobial activity, micro/nano 3D micropillars decorated with cone- and needle-shaped nanostructures were implemented on the surface of the films by means of thermal nanoimprint lithography (t-NIL), a novel and feasible fabrication technique with multiple industrial applications. The materials were characterized regarding their composition and crystallinity using Fourier transform infrared spectroscopy (FT-IR) and X-ray diffraction (XRD), respectively, and their thermal properties using differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). Their mechanical properties were examined by the nanoindentation technique, while the films’ antimicrobial activity against the bacteria Escherichia coli and Staphylococcus aureus strains was tested in vitro. The results demonstrated the successful production of nanocomposite PLLA films, which exhibited improved mechanical and thermal properties compared to the pristine material, as well as notable antibacterial activity, setting new groundwork for the potential development of biobased smart packaging materials.