Department of Materials Science & Engineering, University of Wisconsin-Madison, 1509 University Ave., Madison, Wisconsin 53706, United States.
Department of Chemical and Biological Engineering, University of Wisconsin-Madison, 1415 Engineering Dr., Madison, Wisconsin 53706, United States.
ACS Appl Bio Mater. 2021 Nov 15;4(11):7961-7966. doi: 10.1021/acsabm.1c00884. Epub 2021 Oct 14.
Cellulose nanocrystals (CNCs) are a naturally abundant nanomaterial derived from cellulose which exhibit many exciting mechanical, chemical, and rheological properties, making CNCs attractive for use in coatings. Furthermore, the alignment of CNCs is important to exploit their anisotropic mechanical and piezoelectric properties. Here, we demonstrate and study the fabrication of submonolayer to 25 nm thick films of CNCs via solution-based shear alignment. CNC solution is forced through a sub-millimeter tall channel at high volumetric flow rates generating shear. The half-width at half-maximum of the spread in CNC alignment significantly improves from 78 to 17° by increasing the shear rate from 19 to 19,000 s. We demonstrate that the film thickness is increased by increasing the volume of CNC solution flowed over the substrate and/or increasing the CNC solution concentration, with a degradation in film uniformity at higher (≥7 wt %) concentrations, likely due to CNC aggregates in the solution. Deposition of ultrathin aligned CNC films occurs within seconds and the technique is inherently scalable, demonstrating the promise of solution-based shear for the fabrication of ultrathin aligned CNC films, thereby enabling the future study of their inherent material properties or use in high-performance coatings and applications.
纤维素纳米晶体(CNC)是一种天然丰富的纳米材料,源自纤维素,具有许多令人兴奋的机械、化学和流变学性质,这使得 CNC 成为涂料应用的理想选择。此外,CNC 的取向对于利用其各向异性机械和压电性能非常重要。在这里,我们通过基于溶液的剪切排列来展示和研究制备亚单层至 25nm 厚的 CNC 薄膜。通过在高体积流速下迫使 CNC 溶液通过亚毫米高的通道来产生剪切。通过将剪切速率从 19 增加到 19000s,CNC 排列的半峰全宽从 78 显著改善到 17°。我们证明,通过增加流过基底的 CNC 溶液的体积和/或增加 CNC 溶液的浓度,可以增加薄膜的厚度,但在更高(≥7wt%)浓度下,薄膜的均匀性会降低,这可能是由于溶液中的 CNC 聚集体。在几秒钟内就可以沉积超薄的定向 CNC 薄膜,并且该技术具有内在的可扩展性,这表明基于溶液的剪切在制备超薄定向 CNC 薄膜方面具有很大的应用前景,从而能够进一步研究它们固有的材料性能或在高性能涂料和应用中的应用。