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基于立体光固化技术的光固化纤维素纳米晶复合材料 3D 打印制备复杂结构

3D Printing of Photocurable Cellulose Nanocrystal Composite for Fabrication of Complex Architectures via Stereolithography.

机构信息

School of Graduate Studies, Mapua Institute of Technology, Intramuros , Manila, Metro Manila 1002, Philippines.

出版信息

ACS Appl Mater Interfaces. 2017 Oct 4;9(39):34314-34324. doi: 10.1021/acsami.7b09223. Epub 2017 Sep 25.

Abstract

The advantages of 3D printing on cost, speed, accuracy, and flexibility have attracted several new applications in various industries especially in the field of medicine where customized solutions are highly demanded. Although this modern fabrication technique offers several benefits, it also poses critical challenges in materials development suitable for industry use. Proliferation of polymers in biomedical application has been severely limited by their inherently weak mechanical properties despite their other excellent attributes. Earlier works on 3D printing of polymers focus mainly on biocompatibility and cellular viability and lack a close attention to produce robust specimens. Prized for superior mechanical strength and inherent stiffness, cellulose nanocrystal (CNC) from abaca plant is incorporated to provide the necessary toughness for 3D printable biopolymer. Hence, this work demonstrates 3D printing of CNC-filled biomaterial with significant improvement in mechanical and surface properties. These findings may potentially pave the way for an alternative option in providing innovative and cost-effective patient-specific solutions to various fields in medical industry. To the best of our knowledge, this work presents the first successful demonstration of 3D printing of CNC nanocomposite hydrogel via stereolithography (SL) forming a complex architecture with enhanced material properties potentially suited for tissue engineering.

摘要

3D 打印在成本、速度、精度和灵活性方面的优势吸引了许多新的应用,尤其是在对定制解决方案有高度需求的医学领域。尽管这种现代制造技术有许多好处,但它在适合工业使用的材料开发方面也带来了严峻的挑战。尽管聚合物具有其他优异的特性,但由于其机械性能较弱,在生物医学应用中的应用受到了严重限制。早期的聚合物 3D 打印工作主要集中在生物相容性和细胞活力上,而对生产坚固的样本缺乏关注。来自马尼拉麻植物的纤维素纳米晶体(CNC)因其优异的机械强度和固有刚度而备受青睐,它被纳入 3D 可打印生物聚合物中,以提供必要的韧性。因此,这项工作展示了 CNC 填充生物材料的 3D 打印,其机械和表面性能得到了显著提高。这些发现可能为提供创新和具有成本效益的针对医疗行业各个领域的患者特定解决方案开辟了一条替代途径。据我们所知,这项工作首次成功地展示了通过立体光固化(SL)打印 CNC 纳米复合材料水凝胶,形成具有增强材料性能的复杂结构,可能适合组织工程。

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