Ju Hunpyo, Jeong Jinmo, Kwak Pyo, Kwon Minjeong, Lee Jongho
School of Mechanical Engineering, Gwangju Institute of Science and Technology (GIST), Gwangju, Republic of Korea.
Research Institute for Solar and Sustainable Energies, Gwangju Institute of Science and Technology (GIST), Gwangju, Republic of Korea.
Soft Robot. 2018 Dec;5(6):710-717. doi: 10.1089/soro.2017.0141. Epub 2018 Jul 23.
Mechanical flexibility introduced in functional electronic devices has allowed electronics to avoid mechanical breakage, conform to nonplanar surfaces, or attach to deformable surfaces, leading to greatly expanded applications, and some research efforts have already led to commercialization. However, most of these devices are passively bendable by external driving forces. Actively bendable flexible thin film devices can be applied to new fields with new functionalities. Here, we report robotic flexible electronics with actively self-bendable flexible films that can serve as a platform for flexible electronics and other applications with the capability of reversible bending and unbending by electrical control. Experimental studies along with mechanical modeling enable the predictable and reversible transformation into different structures by adjusting the design parameters. Demonstrations for self-bendable flexible displays and soft robotic hands prove the feasibility of the concept.
功能性电子设备中引入的机械柔韧性使电子器件能够避免机械损坏、贴合非平面表面或附着在可变形表面上,从而极大地扩展了应用范围,并且一些研究成果已经实现了商业化。然而,这些器件大多是通过外部驱动力被动弯曲的。具有主动可弯曲性的柔性薄膜器件可应用于具有新功能的新领域。在此,我们报告了一种具有主动自弯曲柔性薄膜的机器人柔性电子器件,它可以作为柔性电子及其他应用的平台,具备通过电控制实现可逆弯曲和伸直的能力。通过实验研究和力学建模,能够通过调整设计参数将其可预测且可逆地转变为不同结构。自弯曲柔性显示器和软机器人手的演示证明了这一概念具有可行性。