Helmholtz-Zentrum Dresden-Rossendorf e.V., Institute of Ion Beam Physics and Materials Research, Bautzner Landstrasse 400, 01328 Dresden, Germany.
Institute for Integrative Nanosciences, Leibniz Institute for Solid State and Materials Research Dresden (IFW Dresden), Helmholtzstrasse 20, 01069 Dresden, Germany.
Sci Adv. 2018 Jan 19;4(1):eaao2623. doi: 10.1126/sciadv.aao2623. eCollection 2018 Jan.
Electronic skins equipped with artificial receptors are able to extend our perception beyond the modalities that have naturally evolved. These synthetic receptors offer complimentary information on our surroundings and endow us with novel means of manipulating physical or even virtual objects. We realize highly compliant magnetosensitive skins with directional perception that enable magnetic cognition, body position tracking, and touchless object manipulation. Transfer printing of eight high-performance spin valve sensors arranged into two Wheatstone bridges onto 1.7-μm-thick polyimide foils ensures mechanical imperceptibility. This resembles a new class of interactive devices extracting information from the surroundings through magnetic tags. We demonstrate this concept in augmented reality systems with virtual knob-turning functions and the operation of virtual dialing pads, based on the interaction with magnetic fields. This technology will enable a cornucopia of applications from navigation, motion tracking in robotics, regenerative medicine, and sports and gaming to interaction in supplemented reality.
电子皮肤配备人造受体,能够将我们的感知扩展到自然进化出的感觉模态之外。这些合成受体为我们提供了关于周围环境的补充信息,并赋予我们操纵物理甚至虚拟物体的新手段。我们实现了具有方向感知的高顺应性磁敏皮肤,使其能够进行磁认知、身体位置跟踪和非接触式物体操作。通过将八个高性能自旋阀传感器排列成两个惠斯通电桥转移印刷到 1.7-μm 厚的聚酰亚胺薄膜上,确保了机械不可感知性。这类似于通过磁标签从周围环境中提取信息的一类新的交互设备。我们通过与磁场的相互作用,在增强现实系统中展示了这个概念,包括虚拟旋钮功能和虚拟拨号盘的操作。这项技术将为从导航、机器人运动跟踪、再生医学、运动和游戏到补充现实中的交互等各种应用提供支持。