Kreienbrink Kendra M, Cruse Zoe A, Kumari Alisha, Shields C Wyatt
Materials Science and Engineering Program, University of Colorado Boulder, Boulder, CO, 80303, USA.
Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, CO, 80303, USA.
Nat Commun. 2025 Jul 2;16(1):6062. doi: 10.1038/s41467-025-61218-x.
Active particles, which locally dissipate energy from their environment to function, are useful across disciplines given their dynamic and programmable behaviors. Altering particle shape or surface asymmetry has led to advancements in controlled locomotion or collective behavior for diverse applications such as microrobotics or biomedicine. However, making arbitrary active particles of precise shape and surface composition remains a significant challenge due to limitations in conventional fabrication methods. This paper introduces a fabrication technique that combines two-photon lithography with sacrificial stencil masking to deposit arbitrary metallic patches onto particles of any shape with a limit of resolution as low as 0.2 µm. Using this method, we demonstrate three varieties of active particles displaying nonconventional dynamics: electrokinetic active spheres with tunable three-dimensional motions, catalytic microdiscs with chiral axial spinning, and steric magnetic particles forming self-limiting microrobots. Overall, this high-resolution microstenciling technique offers a versatile strategy to create well-defined active particles and microrobots for numerous practical uses.
活性粒子通过从周围环境中局部耗散能量来发挥功能,鉴于其动态和可编程行为,在各个学科中都很有用。改变粒子形状或表面不对称性已推动了在诸如微型机器人技术或生物医学等各种应用的受控运动或集体行为方面取得进展。然而,由于传统制造方法的局限性,制造具有精确形状和表面组成的任意活性粒子仍然是一项重大挑战。本文介绍了一种制造技术,该技术将双光子光刻与牺牲模板掩膜相结合,以将任意金属贴片沉积到任何形状的粒子上,分辨率低至0.2微米。使用这种方法,我们展示了三种表现出非常规动力学的活性粒子:具有可调三维运动的电动活性球体、具有手性轴向旋转的催化微盘以及形成自限性微型机器人的空间磁性粒子。总体而言,这种高分辨率微模板技术提供了一种通用策略,可创建用于众多实际用途的明确活性粒子和微型机器人。