Hubei Engineering Research Center of Weak Magnetic-Field Detection and College of Science, China Three Gorges University, Yichang, Hubei, 443002, China.
School of Mechanical Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, China.
Small. 2019 Dec;15(52):e1905446. doi: 10.1002/smll.201905446. Epub 2019 Nov 29.
Shape-transformable liquid metal (LM) micromachines have attracted the attention of the scientific community over the past 5 years, but the inconvenience of transfer routes and the use of corrosive fuels have limited their potential applications. In this work, a shape-transformable LM micromotor that is fabricated by a simple, versatile ice-assisted transfer printing method is demonstrated, in which an ice layer is employed as a "sacrificial" substrate that can enable the direct transfer of LM micromotors to arbitrary target substrates conveniently. The resulting LM microswimmers display efficient propulsion of over 60 µm s (≈3 bodylength s ) under elliptically polarized magnetic fields, comparable to that of the common magnetic micro/nanomotors with rigid bodies. Moreover, these LM micromotors can undergo dramatic morphological transformation in an aqueous environment under the irradiation of an alternating magnetic field. The ability to transform the shape and efficiently propel LM microswimmers holds great promise for chemical sensing, controlled cargo transport, materials science, and even artificial intelligence in ways that are not possible with rigid-bodies microrobots.
过去 5 年来,形状可变形液态金属(LM)微机器吸引了科学界的关注,但转移途径的不便和腐蚀性燃料的使用限制了它们的潜在应用。在这项工作中,展示了一种通过简单、通用的冰辅助转移打印方法制造的形状可变形 LM 微电机,其中冰层用作“牺牲”衬底,可以方便地将 LM 微电机直接转移到任意目标衬底上。所得到的 LM 微游泳者在椭圆偏振磁场下显示出超过 60 µm s 的高效推进速度(≈3 个体长 s ),与具有刚体的常见磁性微/纳米电机相当。此外,这些 LM 微电机在交变磁场的照射下可以在水相环境中发生剧烈的形态变形。能够改变形状并有效地推进 LM 微游泳者的能力有望在化学传感、受控货物运输、材料科学,甚至人工智能方面带来突破,这是刚体微机器人所不可能实现的。