Bioinspired Soft Microactuators
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[1] Joanna Aizenberg,et al. 3D Printable and Reconfigurable Liquid Crystal Elastomers with Light‐Induced Shape Memory via Dynamic Bond Exchange , 2019, Advanced materials.
[2] Seon Jeong Kim,et al. Carbon Nanotube Yarn for Fiber‐Shaped Electrical Sensors, Actuators, and Energy Storage for Smart Systems , 2019, Advanced materials.
[3] Pingan Zhu,et al. Engineering Micromotors with Droplet Microfluidics. , 2019, ACS nano.
[4] Xinxing Zhang,et al. Arbitrarily 3D Configurable Hygroscopic Robots with a Covalent–Noncovalent Interpenetrating Network and Self‐Healing Ability , 2019, Advanced materials.
[5] R. Wood,et al. Realizing the potential of dielectric elastomer artificial muscles , 2019, Proceedings of the National Academy of Sciences.
[6] Carmel Majidi,et al. Chasing biomimetic locomotion speeds: Creating untethered soft robots with shape memory alloy actuators , 2018, Science Robotics.
[7] J. Aizenberg,et al. Multiresponsive polymeric microstructures with encoded predetermined and self-regulated deformability , 2018, Proceedings of the National Academy of Sciences.
[8] R. F. Shepherd,et al. Soft optoelectronic sensory foams with proprioception , 2018, Science Robotics.
[9] Pingan Zhu,et al. Engineering Microstructure with Evaporation‐Induced Self‐Assembly of Microdroplets , 2018 .
[10] Paolo Dario,et al. Biomedical applications of soft robotics , 2018, Nature Reviews Materials.
[11] Jakob A. Faber,et al. 3D printing of robotic soft actuators with programmable bioinspired architectures , 2018, Nature Communications.
[12] Vijay Kumar,et al. The grand challenges of Science Robotics , 2018, Science Robotics.
[13] Kyu-Jin Cho,et al. Hygrobot: A self-locomotive ratcheted actuator powered by environmental humidity , 2018, Science Robotics.
[14] Shane K. Mitchell,et al. Hydraulically amplified self-healing electrostatic actuators with muscle-like performance , 2018, Science.
[15] Paolo Dario,et al. Biohybrid actuators for robotics: A review of devices actuated by living cells , 2017, Science Robotics.
[16] Robert J. Wood,et al. Fluid-driven origami-inspired artificial muscles , 2017, Proceedings of the National Academy of Sciences.
[17] D. Reynaerts,et al. Elastic Inflatable Actuators for Soft Robotic Applications , 2017, Advanced materials.
[18] Pingan Zhu,et al. Large-scale water collection of bioinspired cavity-microfibers , 2017, Nature Communications.
[19] Pingan Zhu,et al. Well-defined porous membranes for robust omniphobic surfaces via microfluidic emulsion templating , 2017, Nature Communications.
[20] Yuanjin Zhao,et al. Emerging Droplet Microfluidics. , 2017, Chemical reviews.
[21] Hiroshi Ishii,et al. Harnessing the hygroscopic and biofluorescent behaviors of genetically tractable microbial cells to design biohybrid wearables , 2017, Science Advances.
[22] M. Sitti,et al. Soft Actuators for Small‐Scale Robotics , 2017, Advanced materials.
[23] Joseph Wang,et al. Micro/nanorobots for biomedicine: Delivery, surgery, sensing, and detoxification , 2017, Science Robotics.
[24] P. Naumov,et al. Directed Motility of Hygroresponsive Biomimetic Actuators , 2016 .
[25] Zhenghan Gao,et al. Scaling up nanoscale water-driven energy conversion into evaporation-driven engines and generators , 2015, Nature Communications.
[26] Panče Naumov,et al. Photogated humidity-driven motility , 2015, Nature Communications.
[27] Qiang Zhao,et al. Sensing Solvents with Ultrasensitive Porous Poly(ionic liquid) Actuators , 2015, Advanced materials.
[28] B. Mazzolai,et al. Toward a New Generation of Electrically Controllable Hygromorphic Soft Actuators , 2015, Advanced materials.
[29] Nan Chen,et al. Moisture‐Activated Torsional Graphene‐Fiber Motor , 2014, Advanced materials.
[30] L. Mahadevan,et al. Bacillus spores as building blocks for stimuli-responsive materials and nanogenerators. , 2014, Nature nanotechnology.
[31] André R Studart,et al. Self-shaping composites with programmable bioinspired microstructures , 2013, Nature Communications.
[32] Robert Langer,et al. Bio-Inspired Polymer Composite Actuator and Generator Driven by Water Gradients , 2013, Science.
[33] L. Mahadevan,et al. How the Cucumber Tendril Coils and Overwinds , 2012, Science.
[34] Peter Fratzl,et al. Origami-like unfolding of hydro-actuated ice plant seed capsules. , 2011, Nature communications.
[35] F. Barth,et al. Biomaterial systems for mechanosensing and actuation , 2009, Nature.
[36] D. Tyler,et al. Stimuli-Responsive Polymer Nanocomposites Inspired by the Sea Cucumber Dermis , 2008, Science.
[37] Ray H. Baughman,et al. Playing Nature's Game with Artificial Muscles , 2005, Science.