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- W2987014513 abstract "From radio to optical frequencies, phased-array antennas are ubiquitous in modern technology and find wide application in communication and radar systems, imaging, sensing, and radio astronomy, among many other endeavors. These devices provide identical responses in transmission and reception, due to the constraints imposed by time-reversal symmetry. Here, however, the authors present the concept of $nphantom{rule{0}{0ex}}ophantom{rule{0}{0ex}}nphantom{rule{0}{0ex}}rphantom{rule{0}{0ex}}ephantom{rule{0}{0ex}}cphantom{rule{0}{0ex}}iphantom{rule{0}{0ex}}pphantom{rule{0}{0ex}}rphantom{rule{0}{0ex}}ophantom{rule{0}{0ex}}cphantom{rule{0}{0ex}}aphantom{rule{0}{0ex}}l$ phased-array antennas, and demonstrate that such structures significantly extend the functionalities of common arrays by efficiently enabling independent, dynamic control of transmitted and received radiation patterns at the same operating frequency." @default.
- W2987014513 created "2019-11-22" @default.
- W2987014513 creator A5044843721 @default.
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- W2987014513 date "2019-11-05" @default.
- W2987014513 modified "2023-10-15" @default.
- W2987014513 title "Nonreciprocal Phased-Array Antennas" @default.
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- W2987014513 doi "https://doi.org/10.1103/physrevapplied.12.054008" @default.
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