Department of Forest Sciences, Federal University of Lavras, C.P. 3037, 37200-900 Lavras, MG, Brazil.
Department of Forest Engineering, State University of Amapá, AP. Av. Pres. Vargas, 650- Central, Macapá, AP 68900-070, Brazil.
Int J Biol Macromol. 2023 Jul 15;243:125279. doi: 10.1016/j.ijbiomac.2023.125279. Epub 2023 Jun 8.
This study aimed to evaluate the influence of the addition of the cationic surfactant cetyltrimethylammonium bromide (CTAB) in microfibrillated cellulose (MFC/CNFs) suspensions submitted to different pretreatments to produce redispersible spray-dried (SD) MFC/CNFs. Suspensions pretreated with 5 % and 10 % sodium silicate and oxidized with 2,2,6,6,-tetramethylpiperidinyl-1-oxyl (TEMPO) were modified with CTAB surfactant and subsequently dried by SD. The SD-MFC/CNFs aggregates were redispersed by ultrasound to produce cellulosic films by the casting method. In summary, the results demonstrated that the addition of CTAB surfactant to the TEMPO-oxidized suspension was critical to achieving the most effective redispersion. The experimental results obtained using micrographs, optical (UV-Vis), mechanical, water vapor barrier properties, and the quality index confirmed that the addition of CTAB to the TEMPO-oxidized suspension favored the redispersion of spray-dried aggregates, development of cellulosic films with attractive properties, offering possibilities for the elaboration of new products, for example, in the production of bionanocomposites with higher mechanical performance. This research brings interesting insights into the redispersion and application of SD-MFC/CNFs aggregates, strengthening the commercialization of MFC/CNFs for industrial use.
本研究旨在评估阳离子表面活性剂十六烷基三甲基溴化铵(CTAB)在经过不同预处理的微纤化纤维素(MFC/CNFs)悬浮液中的添加对生产可再分散喷雾干燥(SD)MFC/CNFs 的影响。用 5%和 10%硅酸钠预处理并用过氧化氢 TEMPO 氧化的悬浮液用 CTAB 表面活性剂进行改性,然后通过 SD 干燥。SD-MFC/CNFs 聚集体通过超声再分散,通过浇注法制备纤维素薄膜。总之,结果表明,向 TEMPO 氧化悬浮液中添加 CTAB 表面活性剂对于实现最有效的再分散至关重要。使用显微镜、光学(UV-Vis)、机械、水蒸气阻隔性能和质量指数获得的实验结果证实,向 TEMPO 氧化悬浮液中添加 CTAB 有利于喷雾干燥聚集体的再分散,开发具有吸引力性能的纤维素薄膜,为新产品的开发提供了可能性,例如,在生产具有更高机械性能的生物纳米复合材料方面。这项研究为 SD-MFC/CNFs 聚集体的再分散和应用提供了有趣的见解,为 MFC/CNFs 的工业用途的商业化提供了支持。