School of Polymer Science and Engineering, The University of Southern Mississippi, 118 College Drive, Hattiesburg, MS, 39406, USA.
Adv Mater. 2023 Apr;35(17):e2208029. doi: 10.1002/adma.202208029. Epub 2023 Mar 17.
Carbon materials are essential to the development of modern society with indispensable use in various applications, such as energy storage and high-performance composites. Despite great progress, on-demand carbon manufacturing with control over 3D macroscopic configuration is still an intractable challenge, hindering their direct use in many areas requiring structured materials and products. This work introduces a simple and scalable method to generate complex, large-scale carbon structures using easily accessible materials and technologies. 3D-printed, commercial polypropylene (PP) parts can be thermally stabilized through cracking-facilitated diffusion and crosslinking. The newly elucidated mechanism from this work allows thick PP parts to yield carbonaceous products with complex structures through a subsequent pyrolysis step. The approach for enabling PP-to-carbon conversion has consistent product yield and controlled dimensional shrinkage. Under optimized processing conditions, these PP-derived carbons exhibit robust mechanical properties and excellent joule heating performance, demonstrated by their versatile use as heating elements. Furthermore, this process can be extended to recycled PP, enabling the conversion of waste plastic materials to value-added products. This work provides an innovative approach to create structured carbon materials with direct access to complex geometry, which can be transformative to, and broadly benefit, many important technological applications.
碳材料对于现代社会的发展至关重要,在各种应用中都不可或缺,例如储能和高性能复合材料。尽管已经取得了很大的进展,但对具有 3D 宏观结构控制的按需碳制造仍然是一个棘手的挑战,这阻碍了它们在许多需要结构材料和产品的领域中的直接应用。这项工作介绍了一种简单且可扩展的方法,使用易于获得的材料和技术来生成复杂的、大规模的碳结构。通过促进扩散和交联的裂化,可以对 3D 打印的商业级聚丙烯 (PP) 零件进行热稳定化。这项工作新阐明的机制允许厚的 PP 零件通过随后的热解步骤产生具有复杂结构的碳质产品。这种用于实现 PP 到碳的转化的方法具有一致的产物产率和受控的尺寸收缩。在优化的处理条件下,这些由 PP 衍生的碳表现出优异的机械性能和卓越的焦耳加热性能,可用作加热元件来证明其多功能性。此外,该过程可以扩展到回收的 PP,从而将废塑料材料转化为高附加值产品。这项工作提供了一种创新的方法来制造具有复杂几何形状的结构碳材料,这将对许多重要的技术应用产生变革性的影响,并广泛受益。