Li Rui, Jin Dongdong, Pan Deng, Ji Shengyun, Xin Chen, Liu Guangli, Fan Shengying, Wu Hao, Li Jiawen, Hu Yanlei, Wu Dong, Zhang Li, Chu Jiaru
Key Laboratory of Precision Scientific Instrumentation of Anhui Higher Education Institutes, CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, Hefei 230026, China.
Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Hong Kong 999077, China.
ACS Nano. 2020 May 26;14(5):5233-5242. doi: 10.1021/acsnano.0c00381. Epub 2020 Mar 25.
Microscale intelligent actuators capable of sensitive and accurate manipulation under external stimuli hold great promise in various fields including precision sensors and biomedical devices. Current microactuators, however, are often limited to a multiple-step fabrication process and multimaterials. Here, a pH-triggered soft microactuator (<100 μm) with simple structure, one-step fabrication process, and single material is proposed, which is composed of deformable hydrogel microstructures fabricated by an asymmetric femtosecond Bessel beam. To further explore the swelling-shrinking mechanism, the hydrogel porosity difference between expansion and contraction states is investigated. In addition, by introducing the dynamic holographic processing and splicing processing method, more complex responsive microstructures (S-shaped, C-shaped, and tortile chiral structures) are rapidly fabricated, which exhibit tremendous expected deformation characteristics. Finally, as a proof of concept, a pH-responsive microgripper is fabricated for capturing polystyrene (PS) particles and neural stem cells rapidly. This flexible, designable, and one-step approach manufacturing of intelligent actuator provides a versatile platform for micro-objects manipulation and drug delivery.
能够在外部刺激下进行灵敏且精确操作的微尺度智能致动器在包括精密传感器和生物医学设备在内的各个领域都具有巨大的潜力。然而,当前的微致动器通常局限于多步制造工艺和多种材料。在此,提出了一种具有简单结构、一步制造工艺和单一材料的pH触发软微致动器(<100μm),它由通过非对称飞秒贝塞尔光束制造的可变形水凝胶微结构组成。为了进一步探究溶胀-收缩机制,研究了膨胀和收缩状态之间的水凝胶孔隙率差异。此外,通过引入动态全息处理和拼接处理方法,快速制造出了更复杂的响应性微结构(S形、C形和扭曲手性结构),它们展现出巨大的预期变形特性。最后,作为概念验证,制造了一种pH响应微夹钳,用于快速捕获聚苯乙烯(PS)颗粒和神经干细胞。这种灵活、可设计且一步法制造智能致动器的方法为微物体操作和药物递送提供了一个通用平台。