Kim Chungman, Hong Sunghoon, Shin Dongha, An Sangmin, Zhang Xingcai, Jhe Wonho
Department of Physics and Astronomy, Seoul National University, Seoul, 08826, Republic of Korea.
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, 02138, United States.
Nanomicro Lett. 2021 Dec 4;14(1):13. doi: 10.1007/s40820-021-00760-x.
Additive manufacturing-also known as 3D printing-has attracted much attention in recent years as a powerful method for the simple and versatile fabrication of complicated three-dimensional structures. However, the current technology still exhibits a limitation in realizing the selective deposition and sorting of various materials contained in the same reservoir, which can contribute significantly to additive printing or manufacturing by enabling simultaneous sorting and deposition of different substances through a single nozzle. Here, we propose a dielectrophoresis (DEP)-based material-selective deposition and sorting technique using a pipette-based quartz tuning fork (QTF)-atomic force microscope (AFM) platform DEPQA and demonstrate multi-material sorting through a single nozzle in ambient conditions. We used Au and silica nanoparticles for sorting and obtained 95% accuracy for spatial separation, which confirmed the surface-enhanced Raman spectroscopy (SERS). To validate the scheme, we also performed a simulation for the system and found qualitative agreement with the experimental results. The method that combines DEP, pipette-based AFM, and SERS may widely expand the unique capabilities of 3D printing and nano-micro patterning for multi-material patterning, materials sorting, and diverse advanced applications.
增材制造——也被称为3D打印——近年来作为一种用于简单且通用地制造复杂三维结构的强大方法备受关注。然而,当前技术在实现同一储液器中所含各种材料的选择性沉积和分选方面仍存在局限性,而通过单个喷嘴同时分选和沉积不同物质,这对增材打印或制造有显著贡献。在此,我们提出一种基于介电电泳(DEP)的材料选择性沉积和分选技术,该技术使用基于移液器的石英音叉(QTF)-原子力显微镜(AFM)平台DEPQA,并展示了在环境条件下通过单个喷嘴进行多材料分选。我们使用金和二氧化硅纳米颗粒进行分选,并获得了95%的空间分离准确率,这证实了表面增强拉曼光谱(SERS)。为验证该方案,我们还对系统进行了模拟,发现与实验结果定性相符。结合DEP、基于移液器的AFM和SERS的方法可能会广泛扩展3D打印和纳米微图案化在多材料图案化、材料分选中的独特能力以及各种先进应用。