Tas Cuneyt Erdinc, Sevinis Ozbulut Emine Billur, Ceven Omer Faruk, Tas Buket Alkan, Unal Serkan, Unal Hayriye
Faculty of Engineering and Natural Sciences, Sabanci University, 34956 Istanbul, Turkey.
Sabanci University SUNUM Nanotechnology Research Center, 34956 Istanbul, Turkey.
ACS Omega. 2020 Jul 17;5(29):17962-17972. doi: 10.1021/acsomega.0c01057. eCollection 2020 Jul 28.
Halloysite nanotubes (HNTs) have attracted great attention in the field of nanotechnology as natural, high value-added nanomaterials. Despite their significant potential as carriers of active agents and fillers in nanocomposite structures, inhomogeneity of HNTs in terms of length and diameter along with their agglomeration tendency poses important obstacles for the utilization of them in a wider range of applications. Here, a facile, three-step separation protocol that allows the sorting of HNTs into agglomeration-free, uniform size fractions is reported. The protocol consists of coating of HNTs with polydopamine to impart hydrophilicity and aqueous dispersibility, followed by their ultrasonication and centrifugation at varying velocities for size-based separation. Particle size distribution analysis by scanning electron microscopy and dynamic light scattering has demonstrated that the separation protocol resulted in uniform HNT fractions of varying agglomeration states and particle sizes. The highest quality fraction obtained with 18% yield was free of agglomerations and consisted of HNTs of uniform lengths and diameters. The polydopamine coating on HNTs which facilitated the separation was demonstrated to be removed by a simple heat treatment that preserved the crystal structure of HNTs. The impact of the separation protocol on the loading and functionalization capacity of halloysites was investigated. Highest quality HNTs presented 4.1-fold increase in lumen loading and 1.9-fold increase in covalent surface coupling ratios compared to the loading and functionalization ratios obtained with raw HNTs. Similarly, sorted, high-quality HNTs were demonstrated to be better dispersed in a polymeric matrix, resulting in polymeric nanocomposites with significantly enhanced mechanical properties compared to nanocomposites prepared with raw HNTs. The three-step separation protocol presented here provides a toolbox that allows sorting of raw HNTs into uniform fractions of different size ranges, from which HNTs of desired qualities required by different applications can be selected.
埃洛石纳米管(HNTs)作为天然的、高附加值的纳米材料,在纳米技术领域引起了极大的关注。尽管它们作为活性剂载体和纳米复合结构中的填料具有巨大潜力,但HNTs在长度和直径方面的不均匀性以及它们的团聚倾向,对其在更广泛应用中的利用构成了重要障碍。在此,报道了一种简便的三步分离方案,该方案能够将HNTs分选成无团聚、尺寸均匀的级分。该方案包括用聚多巴胺包覆HNTs以赋予其亲水性和水分散性,随后进行超声处理,并以不同速度离心以进行基于尺寸的分离。通过扫描电子显微镜和动态光散射进行的粒度分布分析表明,该分离方案产生了具有不同团聚状态和粒径的均匀HNT级分。以18%的产率获得的最高质量级分无团聚,由长度和直径均匀的HNTs组成。结果表明,促进分离的HNTs上的聚多巴胺涂层可通过简单的热处理去除,同时保留HNTs的晶体结构。研究了分离方案对埃洛石负载和功能化能力的影响。与未处理的HNTs相比,最高质量的HNTs内腔负载增加了4.1倍,共价表面偶联率增加了1.9倍。同样,经过分选的高质量HNTs在聚合物基体中表现出更好的分散性,与用未处理的HNTs制备的纳米复合材料相比,所得聚合物纳米复合材料的机械性能显著增强。本文提出的三步分离方案提供了一个工具箱,可将未处理的HNTs分选成不同尺寸范围的均匀级分,从中可以选择不同应用所需的具有所需质量的HNTs。