• Chinese Journal of Lasers
  • Vol. 50, Issue 20, 2002401 (2023)
Caiding Ni1, Zhaoxin Lao2、*, Zhongguo Ren1, Chao Chen3, and Dong Wu1
Author Affiliations
  • 1School of Engineering Science, University of Science and Technology of China, Hefei 230026, Anhui, China
  • 2Anhui Province Key Laboratory of Measuring Theory and Precision Instrument, School of Instrument Science and Optoelectronic Engineering, Hefei University of Technology, Hefei 230009, Anhui, China
  • 3Department of Materials Physics and New Energy Device, School of Materials Science and Engineering, Hefei University of Technology, Hefei 230009, Anhui, China
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    DOI: 10.3788/CJL230651 Cite this Article Set citation alerts
    Caiding Ni, Zhaoxin Lao, Zhongguo Ren, Chao Chen, Dong Wu. Reversible Self‑Assembly of Temperature‑Driven Femtosecond Laser Printed Microstructures[J]. Chinese Journal of Lasers, 2023, 50(20): 2002401 Copy Citation Text show less
    Femtosecond laser two-photon processing. (a) Optical path diagram of femtosecond laser two-photon processing system; (b) diagram of anisotropic cross section by femtosecond laser two-photon processing; (c) relationship between degree of polymerization of hydrogel micro-block and hatching distance with optical micrograph of deformation of block processed at 24 mW energy shown in inset; (d) effect of R on bending curvature of hydrogel cantilever beam with optical micrographs of cantilever beams with different R at same energy shown in inset and scale bar of 10 μm
    Fig. 1. Femtosecond laser two-photon processing. (a) Optical path diagram of femtosecond laser two-photon processing system; (b) diagram of anisotropic cross section by femtosecond laser two-photon processing; (c) relationship between degree of polymerization of hydrogel micro-block and hatching distance with optical micrograph of deformation of block processed at 24 mW energy shown in inset; (d) effect of R on bending curvature of hydrogel cantilever beam with optical micrographs of cantilever beams with different R at same energy shown in inset and scale bar of 10 μm
    Micro-actuators with bidirectional motion. (a) 1-arm microstructure; (b) 2-arm microstructure; (c) 6-arm microstructure; (d) ipsilateral 2-arm microstructure
    Fig. 2. Micro-actuators with bidirectional motion. (a) 1-arm microstructure; (b) 2-arm microstructure; (c) 6-arm microstructure; (d) ipsilateral 2-arm microstructure
    Micro-assemblies prepared by LPCS technology at room temperature. (a) Optical micrograph of printed anisotropic hydrogel microplates in solution with anisotropic cross-section design of microplate shown in inset; (b) wire contact microplate prepared by self-assembly; (c) optical micrograph of printed anisotropic hydrogel four-leaf clover in solution with anisotropic cross-section design of four-leaf clover shown in inset; (d) multi-contact four-leaf clover prepared by self-assembly
    Fig. 3. Micro-assemblies prepared by LPCS technology at room temperature. (a) Optical micrograph of printed anisotropic hydrogel microplates in solution with anisotropic cross-section design of microplate shown in inset; (b) wire contact microplate prepared by self-assembly; (c) optical micrograph of printed anisotropic hydrogel four-leaf clover in solution with anisotropic cross-section design of four-leaf clover shown in inset; (d) multi-contact four-leaf clover prepared by self-assembly
    Reversibility analysis of line contact microstructures prepared with different materials. (a) Diagram and optical micrograph of assembled hydrogel microstructures; (b) diagram and optical micrograph of microstructures in Fig.4(a) after immersion in solution; (c) diagram and optical micrograph of assembled liquid photoresist microstructures; (d) diagram and optical micrograph of microstructures in Fig.4(c) after immersion in solution
    Fig. 4. Reversibility analysis of line contact microstructures prepared with different materials. (a) Diagram and optical micrograph of assembled hydrogel microstructures; (b) diagram and optical micrograph of microstructures in Fig.4(a) after immersion in solution; (c) diagram and optical micrograph of assembled liquid photoresist microstructures; (d) diagram and optical micrograph of microstructures in Fig.4(c) after immersion in solution
    Reversible preparation of microsensors. (a) Diagram of reversible drive of microsensor; (b) optical micrograph of microsensors in solution at room temperature; (c) optical micrograph of assembled microsensors with SEM shown in inset and scale bar of 20 μm; (d) optical micrograph of microsensors in solution at temperature higher than Tc
    Fig. 5. Reversible preparation of microsensors. (a) Diagram of reversible drive of microsensor; (b) optical micrograph of microsensors in solution at room temperature; (c) optical micrograph of assembled microsensors with SEM shown in inset and scale bar of 20 μm; (d) optical micrograph of microsensors in solution at temperature higher than Tc
    Caiding Ni, Zhaoxin Lao, Zhongguo Ren, Chao Chen, Dong Wu. Reversible Self‑Assembly of Temperature‑Driven Femtosecond Laser Printed Microstructures[J]. Chinese Journal of Lasers, 2023, 50(20): 2002401
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