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How Do Microstrip Losses Impact Near-Field Beam Depth in Dynamic Metasurface Antennas?
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The convergence of eXtremely Large (XL) antenna arrays and high-frequency bands in future wireless networks will inevitably give rise to near-field communications, localization, and sensing. Dynamic Metasurface Antennas (DMAs) have emerged as a key enabler of the XL Multiple-Input Multiple-Output (MIMO) paradigm, leveraging reconfigurable metamaterials to support large antenna arrays. However, DMAs are inherently lossy due to propagation losses in the microstrip lines and radiative losses from the metamaterial elements, which reduce their gain and alter their beamforming characteristics compared to a lossless aperture. In this paper, we address the gap in understanding how DMA losses affect near-field beamforming performance, by deriving novel analytical expressions for the beamforming gain of DMAs under misalignments between the focusing position and the intended user's position in 3D space. Additionally, we derive beam depth limits for varying attenuation conditions, from lossless to extreme attenuation, offering insights into the impact of losses on DMA near-field performance.
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Cited by 2 Pith papers
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Electromagnetics-Compliant Optimization of Dynamic Metasurface Antennas for Bistatic Sensing
Optimizes DMA-based beamforming for bistatic sensing with a physically consistent model including mutual coupling, yielding robust performance comparable to digital arrays via codebook search.
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DMA Reception for Simultaneous Area-Wide Sensing and Multi-User Uplink Communications
A DMA reception design is proposed that minimizes a Cramér-Rao bound over an area of interest while enforcing uplink SNR constraints for multiple users.
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