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折纸微波成像阵列:用于可重构计算成像的形状变形表面上的超表面瓦片。

Origami Microwave Imaging Array: Metasurface Tiles on a Shape-Morphing Surface for Reconfigurable Computational Imaging.

机构信息

Department of Electrical and Computer Engineering, North Carolina State University, Raleigh, NC, 27606, USA.

Department of Electrical and Computer Engineering, Princeton University, Princeton, NJ, 08544, USA.

出版信息

Adv Sci (Weinh). 2022 Oct;9(28):e2105016. doi: 10.1002/advs.202105016. Epub 2022 Jul 27.

Abstract

Origami is the art of paper folding that allows a single flat piece of paper to assume different 3D shapes depending on the fold patterns and the sequence of folding. Using the principles of origami along with computation imaging technique the authors demonstrate a versatile shape-morphing microwave imaging array with reconfigurable field-of-view and scene-adaptive imaging capability. Microwave/millimeter-wave based array imaging systems are expected to be the workhorse for sensory perception of future autonomous intelligent systems. The imaging capability of a planar array-based systems operating in complex scattering conditions have limited field-of-view and lack the ability to adaptively reconfigure resolution. To overcome this, here, deviations from planarity and isometry are allowed, and a shape-morphing computational imaging system is demonstrated. Implemented on a reconfigurable Waterbomb origami surface with 22 active metasurface panels that radiate near-orthogonal modes across 17-27 GHz, capability to image complex 3D objects in full details minimizing the effects of specular reflections in diffraction-limited sparse imaging with scene adaptability, reconfigurable cross-range resolution, and field-of-view is demonstrated. Such electromagnetic origami surfaces, through simultaneous surface shape-morphing ability (potentially with shape-shifting electronic materials) and electromagnetic field programmability, opens up new avenues for intelligent and robust sensing and imaging systems for a wide range of applications.

摘要

折纸是一种纸的折叠艺术,它可以使一张平坦的纸根据折叠图案和折叠顺序呈现出不同的 3D 形状。本文利用折纸原理和计算成象技术,展示了一种具有可重构视场和场景自适应成象能力的多功能形状变形微波成象阵列。基于微波/毫米波的阵列成象系统有望成为未来自主智能系统的感觉感知的主力。在复杂散射条件下工作的平面阵列系统的成象能力具有有限的视场,并且缺乏自适应重构分辨率的能力。为了克服这一点,本文允许偏离平面和等距,并展示了一种形状变形计算成象系统。该系统在可重构的 Waterbomb 折纸表面上实现,该表面具有 22 个主动超表面面板,可在 17-27GHz 频段内辐射近正交模式,能够在最小化镜面反射影响的情况下对复杂的 3D 物体进行全细节成像,具有稀疏成象的衍射极限、场景适应性、可重构的交叉范围分辨率和视场。这种电磁折纸表面通过同时的表面形状变形能力(可能具有形状变换电子材料)和电磁场可编程性,为各种应用的智能和稳健的传感和成象系统开辟了新的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/008f/9534976/83d58e5d5178/ADVS-9-2105016-g007.jpg

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