State Key Laboratory of Featured Metal Materials and Life-cycle Safety for Composite Structures, School of Resources, Environment and Materials, No. 100, Daxuedong Road, Guangxi University, Nanning 530004, China.
Department of Mechanical Engineering, The Pennsylvania State University, University Park, PA 16802, USA.
Carbohydr Polym. 2023 Aug 15;314:120945. doi: 10.1016/j.carbpol.2023.120945. Epub 2023 Apr 24.
Towards the difficulties of traditional processing technology in loading high-concentration functional fillers to realize the target electromagnetic interference shielding (EMI SE) performance, and constructing the arbitrary-designated architectures for serving advanced electronics, this work innovatively formulated a functional multi-walled carbon nanotubes@cellulose nanofibers (MWCNT@OCNF) ink for direct ink writing (DIW) 3D printing, which not only possessed high freedom on the proportion of functional particles, but also imparted to the ideal rheological performance for 3D printing. Based on the pre-programmed printing trajectories, a series of porous scaffolds featuring exceptional functionalities were architected. Particularly for the electromagnetic waves (EMWs) shielding behaviors, the optimized one with "full-mismatched" architecture posed the ultralight structure (0.11 g/cm) and superior SE performance (43.5 dB) in the X-band frequency region. More encouragingly, the 3D-printed scaffold with hierarchical pores possessed the ideal electromagnetic compatibility on EMWs signal, where the radiation intensity generated by EMWs signal fluctuated in a step pattern in 0 and 1500 μT/cm as loading and unloading scaffolds. Overall, this study paved a novel path for the formulation of functional inks to print lightweight, multi-structure, and high-efficiency EMI SE scaffolds for the next-generation shielding elements.
针对传统加工技术在实现目标电磁干扰屏蔽 (EMI SE) 性能方面负载高浓度功能填料以及构建任意指定结构以服务先进电子设备方面的困难,本工作创新性地配制了一种用于直接墨水书写 (DIW) 3D 打印的功能性多壁碳纳米管@纤维素纳米纤维 (MWCNT@OCNF) 墨水,其不仅在功能颗粒的比例方面具有高度的自由度,而且赋予了 3D 打印理想的流变性能。基于预先编程的打印轨迹,构建了一系列具有特殊功能的多孔支架。特别是对于电磁波 (EMWs) 屏蔽行为,具有“完全不匹配”结构的优化支架具有超轻结构 (0.11 g/cm) 和在 X 波段频率范围内的卓越 SE 性能 (43.5 dB)。更令人鼓舞的是,具有分级孔的 3D 打印支架在 EMWs 信号上具有理想的电磁兼容性,其中 EMWs 信号产生的辐射强度在加载和卸载支架时在 0 和 1500 μT/cm 之间呈阶跃式波动。总的来说,这项研究为打印轻量、多结构和高效 EMI SE 支架开辟了一条新途径,为下一代屏蔽元件提供了支持。