Cluster for Advanced Macromolecular Design and School of Chemical Engineering, UNSW Sydney, Kensington, NSW2052, Australia.
Australian Centre for Nanomedicine, UNSW Sydney, Kensington, NSW2052, Australia.
ACS Macro Lett. 2023 Feb 21;12(2):241-247. doi: 10.1021/acsmacrolett.2c00638. Epub 2023 Jan 30.
Eutectic gallium indium (EGaIn) is a liquid metal with promising applications due to its favorable thermal and electrical conductivity, low viscosity, and metallic nature. For applications, including imaging, catalysis, and nanomedicine, stable EGaIn particles with submicron diameters are required. However, the low viscosity and high density of EGaIn have typically precluded the formation of stable submicron particles due to rapid EGaIn droplet coalescence. In this work, we show that poly(acrylic acid)--poly(,'-dimethylacrylamide) copolymers are able to effectively stabilize EGaIn nanodroplets formed upon ultrasonication, where the poly(acrylic acid) block anchors the polymer to the EGaIn surface and the poly(,'-dimethylacrylamide) block provides colloidal stability to the particles in solution. Although the high density of EGaIn causes rapid particle settling, the behavior is predictable, which allows the average particle size to be controlled through centrifugation. We demonstrate that stable EGaIn particles with sizes on the order of 50-100 nm and narrow particle size distributions can be easily obtained using this method and further used in photopolymer resins to prepare 3D printed EGaIn-polymer hybrid materials. The predictable sizes and high stability of these EGaIn nanoparticles should allow further applications in soft-electronics, nanomedicine, catalysis, and other nanotechnology.
共晶镓铟(EGaIn)是一种具有应用前景的液态金属,由于其具有良好的热导率和电导率、低粘度和金属性质。对于包括成像、催化和纳米医学在内的应用,需要具有亚微米直径的稳定 EGaIn 颗粒。然而,由于 EGaIn 液滴的快速聚结,EGaIn 的低粘度和高密度通常排除了稳定的亚微米颗粒的形成。在这项工作中,我们表明聚(丙烯酸)-聚(,'-二甲基丙烯酰胺)共聚物能够有效地稳定超声形成的 EGaIn 纳米液滴,其中聚(丙烯酸)嵌段将聚合物锚定在 EGaIn 表面,而聚(,'-二甲基丙烯酰胺)嵌段为溶液中的颗粒提供胶体稳定性。尽管 EGaIn 的高密度导致颗粒快速沉降,但这种行为是可预测的,这允许通过离心来控制平均粒径。我们证明,使用这种方法可以很容易地获得尺寸在 50-100nm 左右且粒径分布较窄的稳定 EGaIn 颗粒,并进一步用于光聚合树脂中,以制备 3D 打印的 EGaIn-聚合物混合材料。这些 EGaIn 纳米颗粒的可预测尺寸和高稳定性应允许在软电子、纳米医学、催化和其他纳米技术中进一步应用。