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Implementation and Characterization of a Two-Dimensional Printed Circuit Dynamic Metasurface Aperture for Computational Microwave Imaging

机译:计算微波成像二维印刷电路动态元孔径孔径的实现与表征

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摘要

We present the design, fabrication, and experimental characterization of a 2-D, dynamically tuned, metasurface aperture, emphasizing its potential performance in computational imaging applications. The dynamic metasurface aperture (DMA) consists of an irregular, planar cavity that feeds a multitude of tunable metamaterial elements, all fabricated in a compact, multilayer printed circuit board process. The design considerations for the metamaterial element as a tunable radiator, the associated biasing circuitry, as well as cavity parameters are examined and discussed. A sensing matrix can be constructed from the measured transmit patterns, the singular value spectrum of which provides insight into the information capacity of the apertures. We investigate the singular value spectra of the sensing matrix over a variety of operating parameters, such as the number of metamaterial elements, number of masks (aka tuning states), and number of radiating elements. After optimizing over these key parameters, we demonstrate computational microwave imaging of simple test objects.
机译:我们介绍了2-D,动态调谐,元面光圈的设计,制造和实验表征,强调其在计算成像应用中的潜在性能。动态元表面孔径(DMA)由不规则的平面腔组成,其供给多个可调谐的超材料元素,全部制造在紧凑的多层印刷电路板工艺中。研究和讨论了作为可调谐散热器的超材料元件的设计考虑,以及相关的偏置电路以及腔参数。可以从测量的发射模式构成感测矩阵,其奇异值谱提供对孔的信息容量的洞察。我们研究了在各种操作参数上的感测矩阵的奇异值谱,例如超材料元素的数量,掩模的数量(AKA调谐状态)和辐射元件的数量。在优化这些关键参数之后,我们展示了简单测试对象的计算微波成像。

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