Center for Materials, Architectures and Integration of Nanomembranes (MAIN), Chemnitz University of Technology, 09126, Chemnitz, Germany.
Institute for Integrative Nanosciences, Leibniz IFW Dresden, 01069, Dresden, Germany.
Nat Commun. 2022 Apr 19;13(1):2121. doi: 10.1038/s41467-022-29802-7.
Magnetic sensors are widely used in our daily life for assessing the position and orientation of objects. Recently, the magnetic sensing modality has been introduced to electronic skins (e-skins), enabling remote perception of moving objects. However, the integration density of magnetic sensors is limited and the vector properties of the magnetic field cannot be fully explored since the sensors can only perceive field components in one or two dimensions. Here, we report an approach to fabricate high-density integrated active matrix magnetic sensor with three-dimensional (3D) magnetic vector field sensing capability. The 3D magnetic sensor is composed of an array of self-assembled micro-origami cubic architectures with biased anisotropic magnetoresistance (AMR) sensors manufactured in a wafer-scale process. Integrating the 3D magnetic sensors into an e-skin with embedded magnetic hairs enables real-time multidirectional tactile perception. We demonstrate a versatile approach for the fabrication of active matrix integrated 3D sensor arrays using micro-origami and pave the way for new electronic devices relying on the autonomous rearrangement of functional elements in space.
磁传感器在我们的日常生活中被广泛用于评估物体的位置和方向。最近,磁传感模式已被引入到电子皮肤(e-skins)中,实现了对移动物体的远程感知。然而,由于传感器只能感知一个或两个维度的磁场分量,因此其集成密度受到限制,并且无法充分探索磁场的矢量特性。在这里,我们报告了一种制造具有三维(3D)磁场矢量传感能力的高密度集成有源矩阵磁传感器的方法。3D 磁传感器由自组装的微折纸立方结构阵列组成,这些结构阵列带有在晶圆级工艺中制造的偏置各向异性磁阻(AMR)传感器。将 3D 磁传感器集成到具有嵌入式磁性毛发的电子皮肤中,可以实现实时的多向触觉感知。我们展示了一种使用微折纸制作有源矩阵集成 3D 传感器阵列的多功能制造方法,并为新的电子设备铺平了道路,这些设备依赖于功能元件在空间中的自主重新排列。