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      Implantable liquid metal-based flexible neural microelectrode array and its application in recovering animal locomotion functions

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      Journal of Micromechanics and Microengineering
      IOP Publishing

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          Most cited references34

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          Materials and mechanics for stretchable electronics.

          Recent advances in mechanics and materials provide routes to integrated circuits that can offer the electrical properties of conventional, rigid wafer-based technologies but with the ability to be stretched, compressed, twisted, bent, and deformed into arbitrary shapes. Inorganic and organic electronic materials in microstructured and nanostructured forms, intimately integrated with elastomeric substrates, offer particularly attractive characteristics, with realistic pathways to sophisticated embodiments. Here, we review these strategies and describe applications of them in systems ranging from electronic eyeball cameras to deformable light-emitting displays. We conclude with some perspectives on routes to commercialization, new device opportunities, and remaining challenges for research.
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            Stretchable silicon nanoribbon electronics for skin prosthesis.

            Sensory receptors in human skin transmit a wealth of tactile and thermal signals from external environments to the brain. Despite advances in our understanding of mechano- and thermosensation, replication of these unique sensory characteristics in artificial skin and prosthetics remains challenging. Recent efforts to develop smart prosthetics, which exploit rigid and/or semi-flexible pressure, strain and temperature sensors, provide promising routes for sensor-laden bionic systems, but with limited stretchability, detection range and spatio-temporal resolution. Here we demonstrate smart prosthetic skin instrumented with ultrathin, single crystalline silicon nanoribbon strain, pressure and temperature sensor arrays as well as associated humidity sensors, electroresistive heaters and stretchable multi-electrode arrays for nerve stimulation. This collection of stretchable sensors and actuators facilitate highly localized mechanical and thermal skin-like perception in response to external stimuli, thus providing unique opportunities for emerging classes of prostheses and peripheral nervous system interface technologies.
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              Is Open Access

              A highly stretchable, transparent, and conductive polymer

              A polymer is described that is conductive and stretchable, which can lead to electronics that can conform to the human body.
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                Author and article information

                Journal
                Journal of Micromechanics and Microengineering
                J. Micromech. Microeng.
                IOP Publishing
                0960-1317
                1361-6439
                October 01 2017
                October 01 2017
                September 13 2017
                : 27
                : 10
                : 104002
                Article
                10.1088/1361-6439/aa891c
                44f154bb-126d-4ee0-86ac-4e68e196a256
                © 2017

                http://iopscience.iop.org/info/page/text-and-data-mining

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