Hwang Inwook, Mun Seongcheol, Youn Jung-Hwan, Kim Hyeong Jun, Park Seung Koo, Choi Meejeong, Kang Tae June, Pei Qibing, Yun Sungryul
Tangible Interface Creative Research Section, Electronics and Telecommunications Research Institute, Daejeon, South Korea.
Department of Mechanical Engineering, Inha University, Incheon, South Korea.
Nat Commun. 2024 Mar 22;15(1):2554. doi: 10.1038/s41467-024-46709-7.
Reconfigurable tactile displays are being used to provide refreshable Braille information; however, the delivered information is currently limited to an alternative of Braille because of difficulties in controlling the deformation height. Herein, we present a photothermally activated polymer-bilayer-based morphable tactile display that can programmably generate tangible three-dimensional topologies with varying textures on a thin film surface. The morphable tactile display was composed of a heterogeneous polymer structure that integrated a stiffness-tunable polymer into a light-absorbing elastomer, near-infra-red light-emitting diode (NIR-LED) array, and small pneumatic chamber. Topological expression was enabled by producing localized out-of-plane deformation that was reversible, height-adjustable, and latchable in response to light-triggered stiffness modulation at each target area under switching of stationary pneumatic pressure. Notably, the tactile display could express a spatial softness map of the latched topology upon re-exposing the target areas to modulated light from the NIR-LED array. We expect the developed tactile display to open a pathway for generating high-dimensional tactile information on electronic devices and enable realistic interaction in augmented and virtual environments.
可重构触觉显示器正被用于提供可刷新的盲文信息;然而,由于控制变形高度存在困难,目前所提供的信息仅限于盲文的替代形式。在此,我们展示了一种基于光热激活聚合物双层的可变形触觉显示器,它能够在薄膜表面可编程地生成具有不同纹理的有形三维拓扑结构。该可变形触觉显示器由一种异质聚合物结构组成,该结构将刚度可调聚合物集成到吸光弹性体、近红外发光二极管(NIR-LED)阵列和小型气动腔室中。通过在固定气压切换下,在每个目标区域产生响应光触发刚度调制的局部面外变形,实现了拓扑表达,这种变形是可逆的、高度可调的且可锁定的。值得注意的是,当再次将目标区域暴露于来自NIR-LED阵列的调制光时,触觉显示器能够表达锁定拓扑结构的空间柔软度图。我们期望所开发的触觉显示器能够为在电子设备上生成高维触觉信息开辟一条途径,并在增强和虚拟环境中实现逼真的交互。