2022
DOI: 10.1038/s41528-022-00218-z
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Flexible active antenna arrays

Abstract: Complex and dynamic control of radiated fields are advantageous for flexible radio systems, which naturally move, roll, bend, twist, deform, and vibrate. Practical challenges hinder the proliferation of these antenna arrays. This work shows how using radio-frequency microchips reduces system component count, decreases mass to ~0.1 g cm−2, and increases functionality and mechanical flexibility. We develop a general platform for large scale flexible arrays and demonstrate two different 256-elements, 30 × 30 cm2 … Show more

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Cited by 13 publications
(5 citation statements)
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“…If greater flexibility is required, discrete dielectric patches can be utilized as illustrated in Fig. 8(e), at a cost of mass and/or loss compared to air gap patches [70]. In higher frequency ranges, where the flexible substrates are thick enough to be a meaningful fraction of a wavelength, inkjet-printed antennas have been successfully demonstrated as shown in Fig.…”
Section: A Radiator Designmentioning
confidence: 99%
See 3 more Smart Citations
“…If greater flexibility is required, discrete dielectric patches can be utilized as illustrated in Fig. 8(e), at a cost of mass and/or loss compared to air gap patches [70]. In higher frequency ranges, where the flexible substrates are thick enough to be a meaningful fraction of a wavelength, inkjet-printed antennas have been successfully demonstrated as shown in Fig.…”
Section: A Radiator Designmentioning
confidence: 99%
“…A larger implementation of a continuously flexible phased array presented in a more streamlined design was demonstrated in [70] where the platform that was used in [82] was fitted with dielectric patch antennas instead of a single sheet. Fig.…”
Section: B Flexible Arraysmentioning
confidence: 99%
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“…Flexible metasurfaces can also help further reduce the weight of existing planar, rigid devices and improve their stowability, enabling a new class of lightweight, flexible, easily stowable, and deployable, large-aperture antennas [26][27][28][29][30] for applications such as long-range communications. Previous research efforts toward flexible metasurfaces, reflectarrays, and array antennas include devices printed, written, or deposited on flexible substrates, [31][32][33] "kirigami"-inspired, 3D printed reflectarrays, [34] "origami"-inspired, foldable, multisection reflectarrays, [28,30,35,36] complex, multi-layered, flexible phased arrays, [37,38] and textile-based metasurfaces and reflectarrays, including woven frequency-selective surfaces, [39,40] directwrite frequency-selective surfaces, [41] and embroidered, textile reflectarrays. [42][43][44] While work concerning textile metasurfaces, reflectarrays, and array antennas is a nascent field, far more extensive research on simpler, singular textile antennas and flexible, textile-based electronics has been carried out over the past few decades.…”
Section: Introductionmentioning
confidence: 99%