喷雾法制备光滑纤维素纳米纤维膜的水蒸气渗透性

K. Shanmugam, N. Chandrasekar, R. Balaji
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摘要

由于合成包装材料对环境造成了威胁,因此需要环保和绿色的屏障材料来取代它们。这些材料可以由天然聚合物制成,如纤维素纳米纤维(CNF)。CNF的可持续性是如此惊人,因为它具有循环经济的潜力,并为合成塑料提供了替代平台。制备CNF薄膜的挑战性任务仍然存在,而且现有的方法也有各种局限性。CNF薄膜具有良好的透氧性,其渗透性低于合成塑料。然而,CNF薄膜的透气性较差,高于合成塑料。制备方法是影响CNF膜透水性的重要参数之一。通过喷涂将CNF悬浮液沉积在不锈钢板上,是制造CNF薄膜作为水蒸气屏障材料的潜在工艺。在喷涂过程中,形成直径为15.9 cm的CNF膜所需时间小于1 min,且与悬浮液中CNF含量无关。通过喷涂工艺制备的CNF薄膜的独特之处在于其表面,如暴露在空气中的粗糙表面和暴露在不锈钢中的光滑表面。通过扫描电镜、原子力显微镜和光学轮廓显微图对其表面进行了研究,证实表面光滑,表面粗糙度明显降低。喷涂表面光滑,对水蒸气渗透性的影响尚不清楚。喷涂过程是一种灵活的工艺,可以通过喷涂不同纤维含量的CNF悬浮液来调整CNF膜的基本重量和厚度。CNF膜的水蒸气渗透性可以通过改变膜的密度来调整。研究了CNF膜的水蒸气传递率(WVTR)/水蒸气浓度与膜密度的关系。喷涂CNF膜的WVP为6.99±1.17 × 10−11 ~ 4.19±1.45 × 10−11 g/m.s.Pa。密度为664 Kg/m3 ~ 1412.08 Kg/m3。2 wt% CNF膜(1120 Kg/m3)的WVP为3.91 × 10−11 g/m.s.Pa。这些数值与合成塑料的WVP相当。考虑到这种对应关系,通过喷涂的CNF膜具有良好的防水蒸气屏障。这一过程有可能扩大CNF薄膜作为阻隔材料的规模和商业化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Water vapor permeability of smooth cellulose nanofiber film prepared via spraying
Eco-friendly and greener barrier materials are required to replace the synthetic packaging materials as they produce a threat to environment. These can be fabricated by natural polymers such as cellulose nanofiber (CNF). The sustainability of CNF was so amazing due to its potential for circular economy and provides alternative platform for synthetic plastics. The challenging task to fabricate CNF films still existed and also current methods have various limitations. CNF films have good oxygen permeability and the value was lower than synthetic plastics. However, CNF films have poor water vapour permeability and higher than that of synthetic plastics. The fabrication method is one of strong parameters to impact on the water permeability of CNF films. The deposition of CNF suspension on the stainless-steel plate via spraying, is a potential process for fabrication for CNF films acting as barrier material against water vapour. In spraying process, the time required to form CNF films in diameter of 15.9 cm was less than 1 min and it is independent of CNF content in the suspension. The uniqueness of CNF films via the spraying process was their surfaces, such as rough surface exposed to air and smooth surface exposed to stainless steel. Their surfaces were investigated by SEM, AFM and optical profilometry micrographs, confirming that the smooth surface was evaluated notable lower surface roughness. The spray coated surface was smooth and glossy and its impact on the water vapor permeability remains obscure. The spraying process is a flexible process to tailor the basis weight and thickness of CNF films can be adjusted by the spraying of CNF suspension with varying fibre content. The water vapour permeability of CNF films can be tailored via varying density of CNF films. The plot between water vapour transfer rate (WVTR)/water vapour and density of CNF films has been investigated. The WVP of spray coated CNF films varied from 6.99 ± 1.17 × 10−11 to 4.19 ± 1.45 × 10−11 g/m.s.Pa. with the density from 664 Kg/m3 to 1,412.08 Kg/m3. The WVP of CNF films achieved with 2 wt% CNF films (1,120 Kg/m3) was 3.91 × 10−11 g/m.s.Pa. These values were comparable with the WVP of synthetic plastics. Given this correspondence, CNF films via spraying have a good barrier against water vapour. This process is a potential for scale up and commercialization of CNF films as barrier materials.
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