Nanomaterials @ Interfaces Research Group

Prof. Yuval Golan's Research Group

Versatile Patterning of Liquid Metal via Multiphase 3D Printing

Dhanush Patil, Siying Liu, Dharneedar Ravichandran, Sri Vaishnavi Thummalapalli, Yuxiang Zhu, Tengteng Tang, Yuval Golan, Guillaume Miquelard-Garnier, Amir Asadi, Xiangjia Li, Xiangfan Chen, Kenan Song

This paper presents a scalable and straightforward technique for the immediate patterning of liquid metal/polymer composites via multiphase 3D printing. Capitalizing on the polymer's capacity to confine liquid metal (LM) into diverse patterns. The interplay between distinctive fluidic properties of liquid metal and its self-passivating oxide layer within an oxidative environment ensures a resilient interface with the polymer matrix. This study introduces an inventive approach for achieving versatile patterns in eutectic gallium indium (EGaIn), a gallium alloy. The efficacy of pattern formation hinges on nozzle's design and internal geometry, which govern multiphase interaction. The interplay between EGaIn and polymer within the nozzle channels, regulated by variables such as traverse speed and material flow pressure, leads to periodic patterns. These patterns, when encapsulated within a dielectric polymer polyvinyl alcohol (PVA), exhibit an augmented inherent capacitance in capacitor assemblies. This discovery not only unveils the potential for cost-effective and highly sensitive capacitive pressure sensors but also underscores prospective applications of these novel patterns in precise motion detection, including heart rate monitoring, and comprehensive analysis of gait profiles. The amalgamation of advanced materials and intricate patterning techniques presents a transformative prospect in the domains of wearable sensing and comprehensive human motion analysis.

Publication language English
Volume 20
Issue number 40
Publication status Published - 03.10.2024

Keywords

direct ink writing
droplet migration
eutectic gallium – indium
liquid metal
patterning

ASJC Scopus subject areas

Biotechnology
General Chemistry
Biomaterials
General Materials Science
Access to Document
10.1002/smll.202402432
Other files and links
Link to publication in Scopus