Ramanathan Arunachalam, Feng Shuai, Saji Kumar Abhishek, Thummalapalli Sri Vaishnavi, Sobczak Martin Taylor, R Bick Lindsay, Song Kenan, Yang Sui
Mechanical Engineering, College of Engineering, University of Georgia, 302 East Campus Road, Athens, 30602, United States.
Materials Science and Engineering, School for Engineering of Matter, Transport and Energy (SEMTE), Ira A. Fulton Schools of Engineering, Arizona State University (ASU), Tempe, Arizona 85287, United States.
ACS Appl Nano Mater. 2024 May 23;7(24):27998-28007. doi: 10.1021/acsanm.4c01673. eCollection 2024 Dec 27.
Additive manufacturing known as 3D printing has transformed the material landscape, with intricate structures and rapid prototyping for modern production. While nanoscale 3D printing has made significant progress, a critical challenge remains in the rapid, high-throughput tailoring of complex nanostructures. Here, we present a 3D printing-facilitated, light-driven assembly technology for rapid surface patterning consisting of complex particle nanonetworks with balanced fabrication resolution and processing scalability. This innovative approach seamlessly integrates top-down 3D printing (i.e., fused deposition modeling (FDM)) of digitally encoded patterns with bottom-up nanoparticle assembly (i.e., plasmonic light-driven techniques). The manufacturing-structure relationship of the generated nanonetworks within macroscale cylindrical patterning is investigated through programmatic modulation of critical processing parameters, including polymer rheology, chain-mode plasmonic resonances, nanoparticle dimensions, and peak optical intensity. The capacity of nanoscale 3D printing with optical adjustment can not only achieve high-resolution patterning but also offer precise control over large-scale geometries for applications in optical sensing.
被称为3D打印的增材制造已经改变了材料领域,实现了用于现代生产的复杂结构和快速原型制作。虽然纳米级3D打印已经取得了重大进展,但在快速、高通量定制复杂纳米结构方面仍然存在关键挑战。在此,我们展示了一种用于快速表面图案化的3D打印辅助光驱动组装技术,该技术由具有平衡制造分辨率和加工可扩展性的复杂粒子纳米网络组成。这种创新方法将数字编码图案的自上而下3D打印(即熔融沉积建模(FDM))与自下而上的纳米粒子组装(即等离子体光驱动技术)无缝集成。通过对包括聚合物流变学、链模式等离子体共振、纳米粒子尺寸和峰值光强度在内的关键加工参数进行编程调制,研究了宏观圆柱形图案化中生成的纳米网络的制造-结构关系。具有光学调节功能的纳米级3D打印能力不仅可以实现高分辨率图案化,还能为光学传感应用提供对大规模几何形状的精确控制。