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      A transparent, self-healing and high-κ dielectric for low-field-emission stretchable optoelectronics

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          Abstract

          <p class="first" id="d4811124e249">Stretchable optoelectronic materials are essential for applications in wearable electronics, human-machine interfaces and soft robots. However, intrinsically stretchable optoelectronic devices such as light-emitting capacitors usually require high driving alternating voltages and excitation frequencies to achieve sufficient luminance in ambient lighting conditions. Here, we present a healable, low-field illuminating optoelectronic stretchable (HELIOS) device by introducing a transparent, high permittivity polymeric dielectric material. The HELIOS device turns on at an alternating voltage of 23 V and a frequency below 1 kHz, safe operating conditions for human-machine interactions. We achieved a brightness of 1,460 cd m-2 at 2.5 V µm-1 with stable illumination demonstrated up to a maximum of 800% strain. The materials also self-healed mechanically and electronically from punctures or when severed. We further demonstrate various HELIOS light-emitting capacitor devices in environment sensing using optical feedback. Moreover, our devices can be powered wirelessly, potentially enabling applications for untethered damage-resilient soft robots. </p>

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          Author and article information

          Journal
          Nature Materials
          Nat. Mater.
          Springer Science and Business Media LLC
          1476-1122
          1476-4660
          December 16 2019
          Article
          10.1038/s41563-019-0548-4
          31844282
          8decc9ed-76e0-4833-8fc8-93580c44921f
          © 2019

          http://www.springer.com/tdm

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