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Complex-Shaped Cellulose Composites Made by Wet Densification of 3D Printed Scaffolds

机译:通过3D打印支架的湿致密化制成的复杂形状的纤维素复合材料

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Cellulose is an attractive material resource for the fabrication of sustainable functional products, but its processing into structures with complex architecture and high cellulose content remains challenging. Such limitation has prevented cellulose-based synthetic materials from reaching the level of structural control and mechanical properties observed in their biological counterparts, such as wood and plant tissues. To address this issue, a simple approach is reported to manufacture complex-shaped cellulose-based composites, in which the shaping capabilities of 3D printing technologies are combined with a wet densification process that increases the concentration of cellulose in the final printed material. Densification is achieved by exchanging the liquid of the wet printed material with a poor solvent mixture that induces attractive interactions between cellulose particles. The effect of the solvent mixture on the final cellulose concentration is rationalized using solubility parameters that quantify the attractive interparticle interactions. Using X-ray diffraction analysis and mechanical tests, 3D printed composites obtained through this process are shown to exhibit highly aligned microstructures and mechanical properties significantly higher than those obtained by earlier additively manufactured cellulose-based materials. These features enable the fabrication of cellulose-rich synthetic structures that more closely resemble the exquisite designs found in biological materials grown by plants in nature.
机译:纤维素是制造可持续功能产品的有吸引力的材料资源,但是将其加工成具有复杂结构和高纤维素含量的结构仍然具有挑战性。这种局限性阻止了纤维素基合成材料达到在其生物类似物(例如木材和植物组织)中观察到的结构控制和机械性能水平。为了解决这个问题,据报道一种简单的方法来制造复杂形状的基于纤维素的复合材料,其中将3D打印技术的成形能力与湿法致密化工艺相结合,从而增加了最终印刷材料中纤维素的浓度。致密化是通过将湿印刷材料的液体与不良溶剂混合物交换而实现的,该不良溶剂混合物引起纤维素颗粒之间的吸引作用。使用溶解度参数合理化溶剂混合物对最终纤维素浓度的影响,该溶解度参数可量化有吸引力的粒子间相互作用。使用X射线衍射分析和机械测试,通过此过程获得的3D打印复合材料显示出高度对齐的微观结构和机械性能,其性能明显高于早期的增材制造的纤维素基材料。这些特征使得能够制造出富含纤维素的合成结构,该结构更类似于自然界中植物所生长的生物材料中的精美设计。

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