Indirect 3D and 4D Printing of Soft Robotic Microstructures

被引:101
作者
de Marco, Carmela [1 ]
Alcantara, Carlos C. J. [1 ]
Kim, Sangwon [1 ]
Briatico, Francesco [2 ]
Kadioglu, Ahmet [1 ]
de Bernardis, Gaston [3 ]
Chen, Xiangzhong [1 ]
Marano, Claudia [2 ]
Nelson, Bradley J. [1 ]
Pane, Salvador [1 ]
机构
[1] Swiss Fed Inst Technol, Inst Robot & Intelligent Syst, Multiscale Robot Lab, Tannenstr 3, CH-8092 Zurich, Switzerland
[2] Politecn Milan, Dept Chem Mat & Chem Engn, I-20131 Milan, Italy
[3] Kantonnspital Aarau, Tellstr 25, CH-5001 Aarau, Switzerland
基金
欧盟地平线“2020”;
关键词
3D printing; 4D printing; direct laser writing; hydrogels; microstructures; shape memory polymers; soft robotics; TARGETED DRUG-DELIVERY; SHAPE-MEMORY; MAGNETIC MICROROBOTS; FABRICATION; MICROMACHINES;
D O I
10.1002/admt.201900332
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The development of 3D soft-robotic components is currently hindered by material limitations associated with conventional 3D printing techniques. To overcome this challenge, an indirect 3D printing approach based on the fabrication of 3D printed sacrificial templates is proposed. High-resolution micromolds produced by direct laser writing are infused with polymers and then dissolved, leading to the final 3D printed soft microstructures. This method is used to indirectly print 3D and 4D soft microrobots. The versatility of this technique is shown through the fabrication and actuation of gelatin helices filled with magnetic nanoparticles. In addition, it is shown that stent-like microstructures with shape memory properties can be manufactured with minimum features of 5 mu m, which is 40 times smaller than those reported to date. In summary, the utilization of this technique can overcome obstacles associated with the fabrication of soft microrobots and surgical tools for minimally invasive surgery.
引用
收藏
页数:7
相关论文
共 52 条
[1]  
Abbott JJ, 2010, SPRINGER TRAC ADV RO, V66, P157
[2]   3D Fabrication of Fully Iron Magnetic Microrobots [J].
Alcantara, Carlos C. J. ;
Kim, Sangwon ;
Lee, Sunkey ;
Jang, Bumjin ;
Thakolkaran, Prakash ;
Kim, Jin-Young ;
Choi, Hongsoo ;
Nelson, Bradley J. ;
Pane, Salvador .
SMALL, 2019, 15 (16)
[3]   Fabrication of tough epoxy with shape memory effects by UV-assisted direct-ink write printing [J].
Chen, Kaijuan ;
Kuang, Xiao ;
Li, Vincent ;
Kang, Guozheng ;
Qi, H. Jerry .
SOFT MATTER, 2018, 14 (10) :1879-1886
[4]   Recent developments in magnetically driven micro- and nanorobots [J].
Chen, Xiang-Zhong ;
Hoop, Marcus ;
Mushtaq, Fajer ;
Siringil, Erdem ;
Hu, Chengzhi ;
Nelson, Bradley J. ;
Pane, Salvador .
APPLIED MATERIALS TODAY, 2017, 9 :37-46
[5]   3D bioprinting for biomedical devices and tissue engineering: A review of recent trends and advances [J].
Derakhshanfar, Soroosh ;
Mbeleck, Rene ;
Xu, Kaige ;
Zhang, Xingying ;
Zhong, Wen ;
Xing, Malcolm .
BIOACTIVE MATERIALS, 2018, 3 (02) :144-156
[6]  
desMarco C., 2018, SCI ROBOT, V3
[7]   Direct 4D printing via active composite materials [J].
Ding, Zhen ;
Yuan, Chao ;
Peng, Xirui ;
Wang, Tiejun ;
Qi, H. Jerry ;
Dunn, Martin L. .
SCIENCE ADVANCES, 2017, 3 (04)
[8]   A functionally graded shape memory polymer [J].
DiOrio, Andrew M. ;
Luo, Xiaofan ;
Lee, Kyung Min ;
Mather, Patrick T. .
SOFT MATTER, 2011, 7 (01) :68-74
[9]   NOA 63 as a UV-curable material for fabrication of microfluidic channels with native hydrophilicity [J].
Dupont, Emile P. ;
Luisier, Raphaelle ;
Gijs, Martin A. M. .
MICROELECTRONIC ENGINEERING, 2010, 87 (5-8) :1253-1255
[10]   An Integrated Microrobotic Platform for On-Demand, Targeted Therapeutic Interventions [J].
Fusco, Stefano ;
Sakar, Mahmut Selman ;
Kennedy, Stephen ;
Peters, Christian ;
Bottani, Rocco ;
Starsich, Fabian ;
Mao, Angelo ;
Sotiriou, Georgios A. ;
Pane, Salvador ;
Pratsinis, Sotiris E. ;
Mooney, David ;
Nelson, Bradley J. .
ADVANCED MATERIALS, 2014, 26 (06) :952-957