微执行器
材料科学
执行机构
制作
微尺度化学
纳米技术
软机器人
飞秒
贝塞尔光束
贝塞尔函数
计算机科学
激光器
光学
人工智能
数学教育
病理
物理
替代医学
医学
数学
作者
Rui Li,Dongdong Jin,Deng Pan,Shengyun Ji,Xin Chen,Guangli Liu,Shengying Fan,Hao Wu,Jiawen Li,Yanlei Hu,Dong Wu,Li Zhang,Jiaru Chu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2020-03-20
卷期号:14 (5): 5233-5242
被引量:92
标识
DOI:10.1021/acsnano.0c00381
摘要
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 in situ 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.
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