{"id":1124559,"date":"2024-05-01T11:21:04","date_gmt":"2024-05-01T15:21:04","guid":{"rendered":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/uncategorized\/untethered-soft-actuators-for-soft-standalone-robotics-nature-com\/"},"modified":"2024-05-01T11:21:04","modified_gmt":"2024-05-01T15:21:04","slug":"untethered-soft-actuators-for-soft-standalone-robotics-nature-com","status":"publish","type":"post","link":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/robotics\/untethered-soft-actuators-for-soft-standalone-robotics-nature-com\/","title":{"rendered":"Untethered soft actuators for soft standalone robotics &#8211; Nature.com"},"content":{"rendered":"<p><p>        Hawkes, E. W., Blumenschein, L. H., Greer, J. D. & Okamura,        A. M. A soft robot that navigates its environment through        growth. Sci. Robot. 2, eaan3028 (2017).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Justus, K. B. et al. A biosensing soft robot: autonomous        parsing of chemical signals through integrated organic and        inorganic interfaces. Sci. Robot. 4, eaax0765        (2019).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Hao, Y., Gao, J., Lv, Y. & Liu, J. Low melting point alloys        enabled stiffness tunable advanced materials. Adv.        Funct. Mater. 32, 2201942 (2022).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Gao, M., Meng, Y., Shen, C. & Pei, Q. Stiffness variable        polymers comprising phasechanging sidechains: material        syntheses and application explorations. Adv. Mater.        34, 2109798 (2022).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Tetsuka, H., Pirrami, L., Wang, T., Demarchi, D. & Shin, S.        R. Wirelessly powered 3D printed hierarchical biohybrid        robots with multiscale mechanical properties. Adv.        Funct. Mater. 32, 2202674 (2022).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Nardekar, S. S. & Kim, S. J. Untethered magnetic soft robot        with ultraflexible wirelessly rechargeable        microsupercapacitor as an oboard power source. Adv.        Sci. 10, 2303918 (2023).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Li, Y. et al. Multidegreeoffreedom robots powered and        controlled by microwaves. Adv. Sci. 9,        2203305 (2022).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Iyer, V., Najafi, A., James, J., Fuller, S. & Gollakota, S.        Wireless steerable vision for live insects and insect-scale        robots. Sci. Robot. 5, eabb0839 (2020).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Yang, H. et al. Multifunctional metallic backbones for        origami robotics with strain sensing and wireless        communication capabilities. Sci. Robot. 4,        eaax7020 (2019).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Ozaki, T., Ohta, N., Jimbo, T. & Hamaguchi, K. A wireless        radiofrequency-powered insect-scale flapping-wing aerial        vehicle. Nat. Electron. 4, 845852 (2021).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Li, M., Pal, A., Aghakhani, A., Pena-Francesch, A. & Sitti,        M. Soft actuators for real-world applications. Nat. Rev.        Mater. 7, 235249 (2022).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        El-Atab, N. et al. Soft actuators for soft robotic        applications: a review. Adv. Intell. Syst. 2,        2000128 (2020).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Guo, Y., Liu, L., Liu, Y. & Leng, J. Review of dielectric        elastomer actuators and their applications in soft robots.        Adv. Intell. Syst. 3, 2000282 (2021).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Rich, S. I., Wood, R. J. & Majidi, C. Untethered soft        robotics. Nat. Electron. 1, 102112 (2018).      <\/p>\n<p>        Article                Google Scholar      <\/p>\n<p>        Kim, H. et al. Shape morphing smart 3D actuator materials        for micro soft robot. Mater. Today 41,        243269 (2020).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Zhao, Y. et al. Physically intelligent autonomous soft        robotic maze escaper. Sci. Adv. 9, eadi3254        (2023).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Ng, C. S. X. et al. Locomotion of miniature soft robots.        Adv. Mater. 33, 2003558 (2021).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Li, G. et al. Self-powered soft robot in the mariana        trench. Nature 591, 6671 (2021).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Runciman, M., Darzi, A. & Mylonas, G. P. Soft robotics in        minimally invasive surgery. Soft Robot. 6,        423443 (2019).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Xu, S. et al. A dynamic electrically driven soft valve for        control of soft hydraulic actuators. Proc. Natl Acad.        Sci. 118, e2103198118 (2021).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Ge, L., Dong, L., Wang, D., Ge, Q. & Gu, G. A digital light        processing 3D printer for fast and high-precision        fabrication of soft pneumatic actuators. Sens. Actuators        A: Phys. 273, 285292 (2018).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Li, H. et al. High-force soft pneumatic actuators based on        novel casting method for robotic applications. Sens.        Actuators A: Phys. 306, 111957 (2020).      <\/p>\n<p>        Article        ADS CAS         Google Scholar      <\/p>\n<p>        Bira, N., Meng, Y. & Davidson, J. R. In 2020 IEEE        International Conference on Robotics and Automation        (ICRA) (IEEE, 2020).      <\/p>\n<p>        Acome, E. et al. Hydraulically amplified self-healing        electrostatic actuators with muscle-like performance.        Science 359, 6165 (2018). This study        presents muscle-mimetic soft actuators that harness        electrostatic and hydraulic mechanism using liquid        dielectric material.      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Mitchell, S. K. et al. An easytoimplement toolkit to        create versatile and highperformance HASEL actuators for        untethered soft robots. Adv. Sci. 6, 1900178        (2019).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Zhang, Y. F. et al. Miniature pneumatic actuators for soft        robots by highresolution multimaterial 3D printing.        Adv. Mater. Technol. 4, 1900427 (2019).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Leroy, E., Hinchet, R. & Shea, H. Multimode hydraulically        amplified electrostatic actuators for wearable haptics.        Adv. Mater. 32, 2002564 (2020).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Bell, M. A., Gorissen, B., Bertoldi, K., Weaver, J. C. &        Wood, R. J. A modular and selfcontained fluidic engine for        soft actuators. Adv. Intell. Syst. 4, 2100094        (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Zatopa, A., Walker, S. & Menguc, Y. Fully soft 3D-printed        electroactive fluidic valve for soft hydraulic robots.        Soft Robot. 5, 258271 (2018).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Lin, Y., Xu, Y.-X. & Juang, J.-Y. Single-actuator soft        robot for in-pipe crawling. Soft Robot. 10,        174186 (2023).      <\/p>\n<p>        Article PubMed                Google Scholar      <\/p>\n<p>        Chee, P. S., Minjal, M. N., Leow, P. L. & Ali, M. S. M.        Wireless powered thermo-pneumatic micropump using        frequency-controlled heater. Sens. Actuators A:        Phys. 233, 18 (2015).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Han, J. et al. Untethered soft actuators by liquidvapor        phase transition: remote and programmable actuation.        Adv. Intell. Syst. 1, 1900109 (2019).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Byun, J. et al. Underwater maneuvering of robotic sheets        through buoyancy-mediated active flutter. Sci.        Robot. 6, eabe0637 (2021).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Yoon, Y. et al. Bioinspired untethered soft robot with        pumpless phase change soft actuators by bidirectional        thermoelectrics. Chem. Eng. J. 451, 138794        (2023).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Lee, J. et al. Bioinspired soft robotic fish for wireless        underwater control of gliding locomotion. Adv. Intell.        Syst. 4, 2100271 (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Kang, B., Lee, Y., Piao, T., Ding, Z. & Wang, W. D. Robotic        soft swim bladder using liquidvapor phase transition.        Mater. Horiz. 8, 939947 (2021).      <\/p>\n<p>        Article CAS PubMed                Google Scholar      <\/p>\n<p>        Li, M. et al. Miniature coiled artificial muscle for        wireless soft medical devices. Sci. Adv. 8,        eabm5616 (2022).      <\/p>\n<p>        Article PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Mirvakili, S. M., Sim, D., Hunter, I. W. & Langer, R.        Actuation of untethered pneumatic artificial muscles and        soft robots using magnetically induced liquid-to-gas phase        transitions. Sci. Robot. 5, eaaz4239 (2020).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Tang, Y. et al. Wireless miniature magnetic phasechange        soft actuators. Adv. Mater. 34, 2204185        (2022).      <\/p>\n<p>        Article CAS         Google Scholar      <\/p>\n<p>        Diteesawat, R. S., Helps, T., Taghavi, M. & Rossiter, J.        Electro-pneumatic pumps for soft robotics. Sci.        Robot. 6, eabc3721 (2021).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Matia, Y., An, H. S., Shepherd, R. F. & Lazarus, N.        Magnetohydrodynamic levitation for high-performance        flexible pumps. Proc. Natl Acad. Sci. 119,        e2203116119 (2022).      <\/p>\n<p>        Article CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Xu, S., Nunez, C. M., Souri, M. & Wood, R. J. A compact        DEA-based soft peristaltic pump for power and control of        fluidic robots. Sci. Robot. 8, eadd4649        (2023).      <\/p>\n<p>        Article        PubMed                Google Scholar      <\/p>\n<p>        Feng, M., Yang, D., Majidi, C. & Gu, G. Highspeed and        lowenergy actuation for pneumatic soft robots with        internal exhaust air recirculation. Adv. Intell.        Syst. 5, 2200257 (2023).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Tse, Y. A., Wong, K. W., Yang, Y. & Wang, M. Y. In 2020        IEEE\/RSJ International Conference on Intelligent Robots and        Systems (IROS) (IEEE, 2020).      <\/p>\n<p>        Sun, J., Zhou, D., Deng, J. & Liu, Y. Development of a high        flow rate soft pump driven by intersected twisted        artificial muscles units. IEEE Trans. Ind. Electron.        70, 71537162 (2022).      <\/p>\n<p>        Article         Google Scholar      <\/p>\n<p>        Zhang, W. H., Qin, L., Wang, J. Y. & Xu, W. Design of        squeezing-tube-driven pump for soft pneumatic robotics        based on spiral spring winding. Appl. Phys. Letters        122, 093702 (2023).      <\/p>\n<p>        Cacucciolo, V. et al. Stretchable pumps for soft machines.        Nature 572, 516519 (2019).      <\/p>\n<p>        Article        ADS CAS PubMed                Google Scholar      <\/p>\n<p>        Tang, W. et al. Customizing a self-healing soft pump for        robot. Nat. Commun. 12, 2247 (2021).      <\/p>\n<p>        Article        ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Qi, J., Gao, F., Sun, G., Yeo, J. C. & Lim, C. T.        HaptGloveuntethered pneumatic glove for multimode haptic        feedback in realityvirtuality continuum. Adv. Sci.        10, 2301044 (2023).      <\/p>\n<p>        Lin, D., Yang, F., Gong, D. & Li, R. Bio-inspired        magnetic-driven folded diaphragm for biomimetic robot.        Nat. Commun. 14, 163 (2023).      <\/p>\n<p>        Article        ADS CAS PubMed        PubMed        Central         Google Scholar      <\/p>\n<p>        Shao, Y. et al. 4D printing light-driven soft actuators        based on liquid-vapor phase transition composites with        inherent sensing capability. Chem. Eng. J.        454, 140271 (2023).      <\/p>\n<p>        Article        CAS         Google Scholar      <\/p>\n<p>        Fischer, P. & Ghosh, A. Magnetically actuated propulsion at        low reynolds numbers: towards nanoscale control.        Nanoscale 3, 557563 (2011).      <\/p>\n<p>        Article ADS CAS PubMed                Google Scholar      <\/p>\n<p><!-- Auto Generated --><\/p>\n<p>Go here to see the original:<\/p>\n<p><a target=\"_blank\" rel=\"nofollow noopener\" href=\"https:\/\/www.nature.com\/articles\/s41467-024-47639-0\" title=\"Untethered soft actuators for soft standalone robotics - Nature.com\">Untethered soft actuators for soft standalone robotics - Nature.com<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p> Hawkes, E. W., Blumenschein, L. H., Greer, J <a href=\"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/robotics\/untethered-soft-actuators-for-soft-standalone-robotics-nature-com\/\">Continue reading <span class=\"meta-nav\">&rarr;<\/span><\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[187746],"tags":[],"class_list":["post-1124559","post","type-post","status-publish","format-standard","hentry","category-robotics"],"_links":{"self":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1124559"}],"collection":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/comments?post=1124559"}],"version-history":[{"count":0,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/posts\/1124559\/revisions"}],"wp:attachment":[{"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/media?parent=1124559"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/categories?post=1124559"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.euvolution.com\/prometheism-transhumanism-posthumanism\/wp-json\/wp\/v2\/tags?post=1124559"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}