Chinese Journal of Lasers, Volume. 50, Issue 20, 2002402(2023)
Processing of Two‑Photon 3D Printed pH‑Responsive Microscale Soft Joints
[1] Lu H J, Zhang M, Yang Y Y et al. A bioinspired multilegged soft millirobot that functions in both dry and wet conditions[J]. Nature Communications, 9, 3944(2018).
[2] Shang J J, Theato P. Smart composite hydrogel with pH-, ionic strength- and temperature-induced actuation[J]. Soft Matter, 14, 8401-8407(2018).
[3] Joyee E B, Pan Y Y. A fully three-dimensional printed inchworm-inspired soft robot with magnetic actuation[J]. Soft Robotics, 6, 333-345(2019).
[4] Leng J S, Sun J A, Guan Q H et al. Status of and trends in soft pneumatic robotics[J]. Scientia Sinica Technologica, 50, 897-934(2020).
[5] Jin D D, Yu J F, Huang T Y et al. Magnetic micro-/ nanoscale swimmers: current status and potential applications[J]. Chinese Science Bulletin, 62, 136-151(2017).
[6] Li T L, Chang X C, Wu Z G et al. Autonomous collision-free navigation of microvehicles in complex and dynamically changing environments[J]. ACS Nano, 11, 9268-9275(2017).
[7] Li J X, Li T L, Xu T L et al. Magneto-acoustic hybrid nanomotor[J]. Nano Letters, 15, 4814-4821(2015).
[8] Podstawczyk D, Nizioł M, Szymczyk P et al. 3D printed stimuli-responsive magnetic nanoparticle embedded alginate-methylcellulose hydrogel actuators[J]. Additive Manufacturing, 34, 101275(2020).
[9] Gregg A, de Volder M F L, Baumberg J J. Light-actuated anisotropic microactuators from CNT/hydrogel nanocomposites[J]. Advanced Optical Materials, 10, 2200180(2022).
[10] Wang Z J, Li C Y, Zhao X Y et al. Thermo- and photo-responsive composite hydrogels with programmed deformations[J]. Journal of Materials Chemistry B, 7, 1674-1678(2019).
[11] Gang F L, Jiang L, Xiao Y et al. Multi-functional magnetic hydrogel: design strategies and applications[J]. Nano Select, 2, 2291-2307(2021).
[12] Zakharchenko S, Puretskiy N, Stoychev G et al. Temperature controlled encapsulation and release using partially biodegradable thermo-magneto-sensitive self-rolling tubes[J]. Soft Matter, 6, 2633-2636(2010).
[13] Yoon C K, Xiao R, Park J H et al. Functional stimuli responsive hydrogel devices by self-folding[J]. Smart Materials and Structures, 23, 094008(2014).
[14] Tan L Y, Davis A C, Cappelleri D J. Smart polymers for microscale machines[J]. Advanced Functional Materials, 31, 2007125(2021).
[15] Li X, Cai X B, Gao Y F et al. Reversible bidirectional bending of hydrogel-based bilayer actuators[J]. Journal of Materials Chemistry B, 5, 2804-2812(2017).
[16] López-Valdeolivas M, Liu D Q, Broer D J et al. 4D printed actuators with soft-robotic functions[J]. Macromolecular Rapid Communications, 39, 1700710(2018).
[17] Lu H J, Hong Y, Yang Y Y et al. Battery-less soft millirobot that can move, sense, and communicate remotely by coupling the magnetic and piezoelectric effects[J]. Advanced Science, 7, 2000069(2020).
[18] Jin D D, Chen Q Y, Huang T Y et al. Four-dimensional direct laser writing of reconfigurable compound micromachines[J]. Materials Today, 32, 19-25(2020).
[19] Li H, Go G, Ko S Y et al. Magnetic actuated pH-responsive hydrogel-based soft micro-robot for targeted drug delivery[J]. Smart Materials and Structures, 25, 027001(2016).
[20] Ma C X, Lu W, Yang X X et al. Bioinspired anisotropic hydrogel actuators with on-off switchable and color-tunable fluorescence behaviors[J]. Advanced Functional Materials, 28, 1704568(2018).
[21] Cheng M, Zeng H, Li Y F et al. Light-fueled polymer film capable of directional crawling, friction-controlled climbing, and self-sustained motion on a human hair[J]. Advanced Science, 9, 2103090(2022).
[22] Hu X Y, Ma Z C, Han B et al. Femtosecond laser fabrication of protein-based smart soft actuators[J]. Chinese Journal of Lasers, 48, 1402001(2021).
[23] Deng C S, Fan X H, Tao Y F et al. Femtosecond laser four-dimensional printing based on humidity responsive hydrogels[J]. Chinese Journal of Lasers, 48, 0202016(2021).
[24] Palagi S, Mark A G, Reigh S Y et al. Structured light enables biomimetic swimming and versatile locomotion of photoresponsive soft microrobots[J]. Nature Materials, 15, 647-653(2016).
[25] Tottori S, Zhang L, Qiu F M et al. Magnetic helical micromachines: fabrication, controlled swimming, and cargo transport[J]. Advanced Materials, 24, 811-816(2012).
[26] Cheng Y, Ren K, Yang D et al. Bilayer-type fluorescence hydrogels with intelligent response serve as temperature/pH driven soft actuators[J]. Sensors and Actuators B: Chemical, 255, 3117-3126(2018).
[27] de S K, Aluru N R, Johnson B et al. Equilibrium swelling and kinetics of pH-responsive hydrogels: models, experiments, and simulations[J]. Journal of Microelectromechanical Systems, 11, 544-555(2002).
[28] Chen Q Y, Lü P Y, Huang T Y et al. Encoding smart microjoints for microcrawlers with enhanced locomotion[J]. Advanced Intelligent Systems, 2, 1900128(2020).
[29] Li P W, Yu H B, Wang X D et al. Self-assembled microcage fabrication for manipulating and selectively capturing microparticles and cells[J]. Optics Express, 29, 11144-11157(2021).
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Xiubao Zhao, Renchun Guo, Yuzhao Zhang, Jingang Wang, Jianchen Zheng, Xiaoduo Wang. Processing of Two‑Photon 3D Printed pH‑Responsive Microscale Soft Joints[J]. Chinese Journal of Lasers, 2023, 50(20): 2002402
Category: Laser Micro-Nano Manufacturing
Received: Mar. 13, 2023
Accepted: Apr. 24, 2023
Published Online: Sep. 20, 2023
The Author Email: Guo Renchun (176859565@qq.com), Wang Xiaoduo (wangxiaoduo@sia.cn)