Latif Zeeshan, Albargi Hasan B, Khaliq Zubair, Shahid Kinza, Khalid Usama, Qadir Muhammad Bilal, Ali Mumtaz, Arshad Salman Noshear, Alkorbi Ali S, Jalalah Mohammed
Department of Materials, School of Engineering and Technology, National Textile University Faisalabad 37610 Pakistan
Department of Physics, Faculty of Science and Arts, Najran University Najran 11001 Saudi Arabia
Nanoscale Adv. 2024 Feb 12;6(6):1750-1764. doi: 10.1039/d3na01143g. eCollection 2024 Mar 12.
Nano-carbon-reinforced polymer composites have gained much consideration in functional applications due to their attractive mechanical strength and cost-effectiveness. The surface chemistry and associated mechanical strength of carbon nanotubes (CNTs), graphene, and other carbon derivative-based nanocomposites are well understood. While CQDs are considered emerging carbon derivatives, their surface chemistry, unique physio-chemical properties, and dispersion behavior in polymers are yet to be explored. Therefore, in this work, CQDs with different structures were synthesized from lemon pulp and urea, and their rheology and mechanical strength were studied in the PVA matrix. The surface chemistry and structure of CQDs were controlled using different solvents and reaction temperatures, respectively. CQDs possessed a circular shape, with a size of <10 nm, having a suitable carbon core and functional groups, as confirmed by TEM and FTIR spectroscopy. The dynamic viscosity and particle size of PVA/CQDs films peaked at 4% inclusion due to the maximum crosslinking of U-CQDs with reinforcement at 180 °C. Compared with pure PVA, the optimized composite showed an 80% larger particle size with 67% better tensile strength at 4% U-CQDs concentration. In addition to enhanced mechanical strength, CQDs exhibited antibacterial activity in composites. These CQDs-reinforced PVA composites may be suitable for different functional textile applications (shape memory composites and photo-active textiles).
纳米碳增强聚合物复合材料因其具有吸引力的机械强度和成本效益,在功能应用中受到了广泛关注。碳纳米管(CNTs)、石墨烯和其他基于碳衍生物的纳米复合材料的表面化学和相关机械强度已得到充分了解。虽然碳量子点(CQDs)被认为是新兴的碳衍生物,但其表面化学、独特的物理化学性质以及在聚合物中的分散行为仍有待探索。因此,在这项工作中,从柠檬果肉和尿素中合成了具有不同结构的CQDs,并研究了它们在聚乙烯醇(PVA)基体中的流变学和机械强度。分别使用不同的溶剂和反应温度来控制CQDs的表面化学和结构。透射电子显微镜(TEM)和傅里叶变换红外光谱(FTIR)证实,CQDs呈圆形,尺寸小于10 nm,具有合适的碳核和官能团。由于在180°C下U-CQDs与增强剂的最大交联作用,PVA/CQDs薄膜的动态粘度和粒径在加入量为4%时达到峰值。与纯PVA相比,在4%的U-CQDs浓度下,优化后的复合材料粒径增大了80%,拉伸强度提高了67%。除了增强机械强度外,CQDs在复合材料中还表现出抗菌活性。这些CQDs增强的PVA复合材料可能适用于不同的功能性纺织应用(形状记忆复合材料和光活性纺织品)。