| Literature DB >> 34136462 |
Qinchao Zheng1, Chenxue Xu1, Zhenlin Jiang1,2, Min Zhu1, Chen Chen1, Fanfan Fu3.
Abstract
Smart actuators refer to integrated devices that are composed of smart and artificial materials, and can provide actuation and dampening capabilities in response to single/multi external stimuli (such as light, heat, magnetism, electricity, humidity, and chemical reactions). Due to their capability of dynamically sensing and interaction with complex surroundings, smart actuators have attracted increasing attention in different application fields, such as artificial muscles, smart textiles, smart sensors, and soft robots. Among these intelligent material, functional hydrogels with fiber structure are of great value in the manufacture of smart actuators. In this review, we summarized the recent advances in stimuli-responsive actuators based on functional materials. We emphasized the important role of functional nano-material-based additives in the preparation of the stimulus response materials, then analyzed the driving response medium, the preparation method, and the performance of different stimuli responses in detail. In addition, some challenges and future prospects of smart actuators are reported.Entities:
Keywords: drive response; functional nanomaterials; multi stimuli; single stimuli; smart actuators
Year: 2021 PMID: 34136462 PMCID: PMC8200850 DOI: 10.3389/fchem.2021.650358
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
FIGURE 1Classification and composition of smart actuators based on single/multiple responses to different stimuli.
FIGURE 2(A) Reversible contraction of PNIPAM/GO nanocomposite hydrogels actuator responds to IR light stimulation. Reproduced from Shi et al. (2015) with permission of American Chemical Society. (B) Side view of the original dog after incubation at 50°C for 27 min, showing salivation (gel dripping). Reproduced from Zeng et al. (2020) with permission of Elsevier.
FIGURE 3(A) fish-like robot swimming, when the power is on or off, the “tail” bends down or up, then the fish-like robot will swim. Reproduced from Xiao et al. (2016) with permission of WILEY-VCH. (B) Based on the gel electric stimulation of the smart actuator and walking under the electric field drive. Reproduced from Morales et al. (2014) with permission of Royal Society of Chemistry.
FIGURE 4(A1) Molecular dynamic simulation of the proteins before and after water molecules added, the loop structure undergoes transition into a protein secondary structure, and the structure becomes more regular. (A2) a robotic “caterpillar” walking on a barbed wire by moisture stimulation. Reproduced from Jia T. et al. (2019) with permission of WILEY-VCH. (B1) the twisted fiber rapid swelling occurred under water stimulation, leading to fast rotation. After the water evaporated, the fiber quickly returned to its original state. (B2) Schematic diagram of the smart rainy curtain. Reproduced from Wang et al. (2018c) with permission of Royal Society of Chemistry.
FIGURE 5(A) Schematic illustration of shape of bilayer at different temperature conditions. Reproduced from Jiang et al. (2015) with permission of WILEY-VCH. (B) Reversible bending behavior of thermo-responsive hydrogel actuators. Reproduced from Mo et al. (2020) with permission of Royal Society of Chemistry.
FIGURE 6(A1) Continuous-magnetization-profile fabrication method, a direction varying magnetization profile is created by folding the soft materials when it is magnetized. (A2) Controlled path following of the robot on the water surface. Reproduced from Diller et al. (2014) with permission of AIP. (B) The robots move with an average speed of 0.5 mm/s on wet surface under a drive frequency of 1 Hz and move 8 mm in 45 s with a loading 100 times of its own weight. Reproduced from Lu H. et al. (2018) with permission of Springer Nature.
FIGURE 7(A) Curling and recovery process of the PDMS film. Reproduced from Zheng et al. (2019) with permission of American Chemical Society. (B) Simultaneous emission change and complex shape deformation of hydrogel actuator. Reproduced from Hubbard et al. (2019) with permission of WILEY-VCH.
Feature of multiple response smart actuator based on single stimulus responses
| Actuation Method | Material | Properties | Application | References |
|---|---|---|---|---|
| Light | PU and CNTs | 70°C NIR, contractive actuation of 6.7% (6 s), recovery (10 s). | Artificial muscle |
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| PNIPAM and GO | 0.58 mW/cm2 NIR, responsive swelling ratio of 6900% (4 min). | Remote light-controlled devices |
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| PNIPAM and GO | 808 nm NIR, shrinkage of 25% (360 s). | Drug delivery vehicles |
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| PNIPAM, RGO and PAAM | Visible light 41.8 mW/cm2, bending to ring (30 s); recovery (30 s). | Light-responsive actuators |
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| Monoacrylate and Diacrylate | 455 nm NIR, bending of 20 mm (3 s),recovery (8 s). | Light-driven transportation |
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| GO and PC | NIR 106 mW/cm2, response time (<1 s), bending of 12 mm (3 s), bending curvature of 0.33 cm-1, recovery (5 s). | IR and sunlight-driven smart curtain, self-folding box. |
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| Sodium acrylate and IONP | 2.34 W, take-off speed of 1.6 m/s (800 ms); 0.67 W, rolling velocity of 10 cm/s (1.3 s) | cargo delivery robotics |
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| PET and Xylene | UV 170 mW/cm2, bending of 19 cm (14 s), recovery (4 s). | soft robotic |
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| PU, MDA and DAB | 385 nm UV, 100 mW/cm2, bending angle of 70°(50 s). | Self-healable PME actuators |
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| Electrical | GR and PVDF | 13 V, bending of 14 mm(0.26 s);17 V, Driving stress of 312.7 MPa/g, movement speed of 5.02 mm/s. | High-performance power generator |
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| AAm, NaAc and DMAEMA-Q | 5 V/cm electric field, Bending curvature of 0.28 mm−1(150 s), movement speed of 2.5 mm/min. | Micro-robotics |
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| Graphadiyne and PVDF | 2.5 V, electromechanical transduction efficiency of 6.03%, bending displacement of 16 mm. | Electro-actuation gel walker |
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| GR and CNTs | 20 mV/s voltage, tensile actuation of 19%. | Micromechanical robotics |
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| GR and PANI | 2.5 V, Bending curvature of 1.03 cm-1(5 s), areal specific capacitance of 402.5 mF/cm2. | Multi-functional actuator |
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| CNTs and TEA·BF4/PC | 20 mV/s voltage, tensile actuation of 16.5%, electromechanical transduction efficiency of 5.4%. | Artificial muscles |
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| Humidity | A. pernyi silk | RH 43%, rotation speed of 6179.3°/s (4.8 s), actuation power of 2.1 W/kg, contractive actuation of 10%. | Water-induced micro-actuators |
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| Bombyx raw silk fiber | RH20% to 80%, 70% contraction, reversible torsional stroke of 547 mm−1 | Smart textiles and soft robotics. |
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| Sodium alginate | RH 90%, rotation speed of 13 000 rpm (5.44 s). | Hydro-generator and breathable fabric |
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| PEDOT: PSS and PVDE | RH 23% to 86%, Bending angle of 191° to 225°. | Generator and bionic field |
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| CS and GO | RH 45%, Bending angle of 180° (4 s). | sensors |
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| MXene nanosheet | RH 65%, Bending angle of 155° | flexible excavators and electrical switches |
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| Heat | P(NIPAM-ABP), ABP and TPU | 40°C, bend to ring (1 s), 4°C, recovery. | Porous 3D bioscaffolds and electrodes |
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| H-PE | 60°C, discoloration, multiple curls (3 s), 18% contraction. | Artificial muscles |
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| PNIPAM and TCNC | 40°C, bending speed of 4.8°/s, 25 °C, recovery speed of 1.4°/s. | Temperature-controlled manipulators |
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| CNTs, xLCE and PIM | 120°C, bending curvature of 1 mm-1(20 s), recovery (5 s). | Restoration of deformed dynamic 3D actuators |
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| Magnetic | NdFeB and platinum-cure silicon rubber | 1Hz, 2 mT, bending drive response (0.75 s), 30 Hz, 5 mT, 60 mm/s, 2.5 mT, 50 Hz, 100 mm/s. | Micro-robotics in biotechnology |
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| NdFeB and silicone elastomer | 17 mT, bending drive response (40 ms). | Soft millimetre-scale robots |
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| PDMS and iron microparticles | 200 mT, displacement of 1.2 mm, deflection angle of 18 (0.5 s). | Bio-inspired robotics |
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| Chemical | TMPTA and DEPA | Ammonia-acetone vapor, displacement drive of 1.8 mm/s, dynamic color change of 0.16 cm/s. | Self-powered actuators and grippers |
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| TPE-4Py and PAS | PH3.12, Semi-circular arc expands to parallel shape and color change (400 min). | Soft robotics with communication, sensing, and disguise |
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| PDMS, PA and GF | Acetone, deflection angle of 48°(10 min), 2.0 M NaCl, convex (24 h). | Artificial muscles and triple-state actuators. |
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| PFSA and PET | 18% Ethanol vapor, bending curvature of 0.31 mm-1 Deflection angle of 180° (0.25 s). | Soft actuator with multicolor switching capability |
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| PCMVImTf 2N and PAA | 1.5 mol% acetone, bending curvature of 0.38 mm-1. | Smart and sensitive signaling micro-robotics |
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| Lignin and PEGDGE | 0.1 M HCl and KOH, response speed (8.0°/s) and recovery (6.5°/s), | Flow control valve and smart hook |
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FIGURE 8(A) Schematic illustration of the apheliotropic and phototropic bending of the composite strips with different aligned directions of smart actuator. Reproduced from Deng et al. (2015) with permission of American Chemical Society. (B) Demonstrations of the PNIPAM actuators stimulated by the human skin temperature and sunlight. Reproduced from Yamamoto et al. (2015) with permission of American Chemical Society. (C) Schematic showing of an area-selective reversible multiresponsive actuator. Reproduced from Zhang Y. et al. (2020) with permission of American Association for the Advancement of Science.
FIGURE 9(A) Photographs of a “mimosa pudica” splaying and closing, and morphing blocked by a leaf and exposed to magnetic field, respectively. Reproduced from Wang et al. (2019c) with permission of WILEY-VCH. (B1) Magneto-light responsive actuator with localized PDMS/Fe composite layer coated on LCN. (B2) The untethered pick up, transport, and release of a cargo, performed by the dual-responsive gripper within an enclosed space. Reproduced from Pilz da Cunha et al. (2019) with permission of WILEY-VCH.
Feature of multiple response smart actuator based on multiple stimulus responses
| Actuation Method | Material | Properties | Application | References |
|---|---|---|---|---|
| Light/Heat | PA6 and pDA | 180°C, contractive actuation of 5.1%. NIR, contractive actuation of 3.2%. | Artificial muscle |
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| MoS2 and Carboxyl | 70°C, 5 W/cm2 NIR, bending curvature of 0.23 cm-1 (70 s). | Flexible anisotropic actuator |
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| PNIPAM and CNTs | 50°C, bending angle of 210° (80 s). 100 mW/cm2 light, bending angle of 210° (14 min). | Wearable device and natural power source actuator |
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| PNIPAAm, BIS and PBPO | 35°C, bending curvature of 5.2 cm-1 (7 min). 665 nmUV, red fluorescence appears. | Biomimetic devices, gripper, and information storage |
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| PNIPAM and GO | 55°C, bending angle of 210° (16 s). 2.5 W/cm2 NIR, curl to closed state (17 s). | Remotely controlled microgrippers |
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| GO and MAB | 100°C, reversible spiral bending. NIR, Curly flattening. | 3D machine- and animal-mimicking LCE actuators |
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| EDDET, PMMS and PETMP | 90°C, bending angle of 80°. 0.8 W/cm2 NIR, bending angle of 110° (15 s). 80 W/cm2UV, bending angle of 100° (11 s). | Artificial plants, and multiple-responsive microrobots |
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| Light/ Electricity | RGO and PI | 16 V bending curvature of 0.55 cm-1 (5 s). 300 mW/cm2 light, bending curvature of 0.45 cm-1 (10 s). | Electrothermal actuator, microfluidics |
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| GR and BOPP | 10 V bending curvature of 2.6 cm-1. 300 mW/cm2 NIR, bending curvature of 1.9 cm-1 (10 s). | Biomimetic flower, and smart household materials. |
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| SWCNT and PE | 9.0 V, bending curvature of 7.8 cm-1 (3 s). NIR 250 mW/cm2, bending curvature of 5.0 cm-1 (3 s). | Walking device, smart mechanical devices |
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| Light/magnetic | PU, DOPAC and Fe3O4NPS | Maximum bending angle, 808 nm NIR (0.44 s). magnetic field (0.36 s). | Bionic motion robots |
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| Fe3O4NPs and GO | 200 mW/cm2 light, bending angle of 210° (30 s). NdFeB Magnetic field, bending angle of 90°(3 s). | Multi-form actuators with different fields |
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| PDMS, DCM and Acrylate | 225 mW/cm-2 light. Deflection displacement of 14 mm (10 s). Magnetic field, grasping or bending behavior. | Dual-responsive gripper, soft robotics with programmed |
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| Heat/chemical | PNIPAM and PAA | 2°C and 50°C, PH 2 and PH 11, two-way bending, bidirectional bending drive | Temperature-induced self-bending actuators |
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| PNIPAM, CEA and MBA | Ethanol solution, bending curvature of 1.4 cm-1 (90 s). PH3, bending curvature of 1.75 cm-1 (45 min), PH8, recovery (20 min). 50°C, bending curvature of 1.55 cm-1. | Anisotropy-encoded hydrogel actuators, dual-responsive grippers |
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| PDADMAC, PNIPAM and PDMS | 25°C and 40°C, PH 6.5 and PH 3, downward spherical bending to upward bending, shrinkage rate 60%(10 min). | Stimulus-induced grippers, biomedical applications field |
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| P(NIPAM-coAAC) and NaAlg | 50°C, 1M CaCl2, Shrinkage deformation rate 20%(200 s). | Chemical sensors, microengineering |
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| SMA, AA and QCH | 80°C, spiral state(3 s). | Soft robotics with programmable combination |
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| Curly recovery under alkaline and acidic conditions | ||||
| PNIPAAm, PNCS and PLA | 20°C and 40°C, PH 3 and PH 8, shrink/expansion response | Artificial muscle |
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| CNT and PDMS | 225°C, bending curvature of 0.3 cm−1. Potassium chloride solution, displacement of 4 mm(4 s) | Crawling robot like an inchworm, a gripper to grasp |
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| Dns and PAAM | PH 11.5 and PH 2.0, bend and return to original state; 50°C, recovery. | Soft robots |
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| Light,heat,and humidity | GO, CNTs and PDMS | 0.5 w/cm2 light, bending angle of 90° (2.5 s). | Biomimetic devices, humidity control switches, and optical control medical devices |
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| 80°C, bending angle of 180° (1.7 s). | ||||
| RH 90%, bending angle of 137° (1.4 s). | ||||
| GO | IR light and 100°C, bending angle of 90° (1 s). | Multifunctional smart walkers with self-deformation sensing ability |
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| RH 85%, bending angle of 70° (1 s). | ||||
| Nano-size graphite, PVDF and GO | 206 mW/cm2 light and 70°C, bending angle of 160° (4 s). RH 23% to 97%, bending angle of 200° (13 s). | Multi-responsive Bimorph actuators, smart claw |
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| GO and BOPP | 80°C, 300 mW/cm2 light, bending curvature of 2.8 cm-1. RH 20% to 90%, bending curvature of 3.1 cm-1. | Artificial muscles, bioinspired robotics |
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| PG and graphite | RH 70%, curvature change speed of 1 cm−1s−1. | Soft robotics and smart mechanical devices |
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| 1.2 W/cm-2, curvature change speed of 1 cm−1s−1. |