Multimodal soft jumping robot with self-decision ability
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[1] M. Medina‐Sánchez,et al. Swimming Microrobots: Soft, Reconfigurable, and Smart , 2018 .
[2] Sheila Russo,et al. Increasing the Dimensionality of Soft Microstructures through Injection‐Induced Self‐Folding , 2018, Advanced materials.
[3] S. Cai,et al. A Light‐Powered Ultralight Tensegrity Robot with High Deformability and Load Capacity , 2018, Advanced materials.
[4] Damiano Pasini,et al. Snapping mechanical metamaterials under tension. , 2015, Advanced materials.
[5] S. F. Armanini,et al. Consecutive aquatic jump-gliding with water-reactive fuel , 2019, Science Robotics.
[6] Xiaoyong Tian,et al. Programmable morphing composites with embedded continuous fibers by 4D printing , 2018, Materials & Design.
[7] J. R. Raney,et al. Multistable Architected Materials for Trapping Elastic Strain Energy , 2015, Advanced materials.
[8] Katia Bertoldi,et al. Kirigami skins make a simple soft actuator crawl , 2018, Science Robotics.
[9] Wei Chen,et al. Electrically and Sunlight‐Driven Actuator with Versatile Biomimetic Motions Based on Rolled Carbon Nanotube Bilayer Composite , 2017 .
[10] Hongliang Ren,et al. Multifunctional metallic backbones for origami robotics with strain sensing and wireless communication capabilities , 2019, Science Robotics.
[11] Yanqiong Fei,et al. FifoBots: Foldable Soft Robots for Flipping Locomotion. , 2019, Soft robotics.
[12] Y. Chai,et al. Stretchable elastic synaptic transistors for neurologically integrated soft engineering systems , 2019, Science Advances.
[13] Min Jiang,et al. Carbon dioxide capture and efficient fixation in a dynamic porous coordination polymer , 2019, Nature Communications.
[14] Dichen Li,et al. Interface and performance of 3D printed continuous carbon fiber reinforced PLA composites , 2016 .
[15] LoepfeMichael,et al. An Untethered, Jumping Roly-Poly Soft Robot Driven by Combustion , 2015 .
[16] Nikolaus Correll,et al. Materials that couple sensing, actuation, computation, and communication , 2015, Science.
[17] Hong Yang,et al. Visible and infrared three-wavelength modulated multi-directional actuators , 2019, Nature Communications.
[18] Boris Murmann,et al. Skin electronics from scalable fabrication of an intrinsically stretchable transistor array , 2018, Nature.
[19] Liu Tengfei,et al. Recycling and remanufacturing of 3D printed continuous carbon fiber reinforced PLA composites , 2017 .
[20] Ronald S. Fearing,et al. Insect-scale fast moving and ultrarobust soft robot , 2019, Science Robotics.
[21] Robert J. Wood,et al. An integrated design and fabrication strategy for entirely soft, autonomous robots , 2016, Nature.
[22] Xiangyang Zhu,et al. Soft wall-climbing robots , 2018, Science Robotics.
[23] Xuanhe Zhao,et al. Ferromagnetic soft continuum robots , 2019, Science Robotics.
[24] Allison M. Okamura,et al. A soft robot that navigates its environment through growth , 2017, Science Robotics.
[25] A. Walther. Viewpoint: From Responsive to Adaptive and Interactive Materials and Materials Systems: A Roadmap , 2019, Advanced materials.
[26] Alfred J. Crosby,et al. Snapping Surfaces , 2007 .
[27] Yan Fang,et al. Pattern recognition with “materials that compute” , 2016, Science Advances.
[28] D. Wiersma,et al. Structured light enables biomimetic swimming and versatile locomotion of photoresponsive soft microrobots. , 2016, Nature materials.
[29] Yoan Civet,et al. An autonomous untethered fast soft robotic insect driven by low-voltage dielectric elastomer actuators , 2019, Science Robotics.
[30] Yuanping Song,et al. Additively manufacturable micro-mechanical logic gates , 2019, Nature Communications.
[31] Yusen Zhao,et al. Soft phototactic swimmer based on self-sustained hydrogel oscillator , 2019, Science Robotics.
[32] Yue Zhao,et al. Biomimetic Locomotion of Electrically Powered “Janus” Soft Robots Using a Liquid Crystal Polymer , 2019, Advanced materials.
[33] J. Zhu,et al. Tuna robotics: A high-frequency experimental platform exploring the performance space of swimming fishes , 2019, Science Robotics.
[34] Jordan R. Raney,et al. Bifurcation-based embodied logic and autonomous actuation , 2019, Nature Communications.
[35] Robert J. Wood,et al. A 3D-printed, functionally graded soft robot powered by combustion , 2015, Science.
[36] Matteo Cianchetti,et al. Soft robotics: Technologies and systems pushing the boundaries of robot abilities , 2016, Science Robotics.
[37] L. Valdevit,et al. Multistable Shape‐Reconfigurable Architected Materials , 2016, Advanced materials.
[38] Metin Sitti,et al. Small-scale soft-bodied robot with multimodal locomotion , 2018, Nature.
[39] Chiara Daraio,et al. Untethered soft robotic matter with passive control of shape morphing and propulsion , 2019, Science Robotics.
[40] George M. Whitesides,et al. A soft, bistable valve for autonomous control of soft actuators , 2018, Science Robotics.
[41] Zhenishbek Zhakypov,et al. Designing minimal and scalable insect-inspired multi-locomotion millirobots , 2019, Nature.
[42] M. Garrad,et al. A soft matter computer for soft robots , 2019, Science Robotics.
[43] MajidiCarmel,et al. Soft Robotics: A Perspective—Current Trends and Prospects for the Future , 2014 .
[44] D. Rus,et al. Design, fabrication and control of soft robots , 2015, Nature.
[45] N. Gershenfeld,et al. Microfluidic Bubble Logic , 2006, Science.