An Ultrathin, Fast-Response, Large-Scale Liquid-Crystal-Facilitated Multi-Functional Reconfigurable Metasurface for Comprehensive Wavefront Modulation

The rapid advancement of prevailing communication/sensing technologies necessitates cost-effective millimeter-wave arrays equipped with a massive number of phase-shifting cells to perform complicated beamforming tasks. Conventional approaches employing semiconductor switch/varactor components or tunable materials encounter obstacles such as quantization loss, high cost, high complexity, and limited adaptability for realizing large-scale arrays. Here, a low-cost, ultrathin, fast-response, and large-scale solution relying on metasurface concepts combined together with liquid crystal (LC) materials requiring a layer thickness of only 5 µm is reported. Rather than immersing resonant structures in LCs, a joint material-circuit-based strategy is devised, via integrating deep-subwavelength-thick LCs into slow-wave structures, to achieve constitutive metacells with continuous phase shifting and stable reflectivity. An LC-facilitated reconfigurable metasurface sub-system containing more than 2300 metacells is realized with its unprecedented comprehensive wavefront manipulation capacity validated through various beamforming functions, including beam focusing/steering, reconfigurable vortex beams, and tunable holograms, demonstrating a milli-second-level function-switching speed. The proposed methodology offers a paradigm shift for modulating electromagnetic waves in a non-resonating broadband fashion with fast-response and low-cost properties by exploiting functionalized LC-enabled metasurfaces. Moreover, this extremely agile metasurface-enabled antenna technology will facilitate a transformative impact on communication/sensing systems and empower new possibilities for wavefront engineering and diffractive wave calculation/inference.

This is the peer reviewed version of the following article: [An Ultrathin, Fast‐Response, Large‐Scale Liquid‐Crystal‐Facilitated Multi‐Functional Reconfigurable Metasurface for Comprehensive Wavefront Modulation. Advanced Materials 36, 26 (2024)], which has been published in final form at https://doi.org/10.1002/adma.202402170. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Use of Self-Archived Versions: https://authorservices.wiley.com/author-resources/Journal-Authors/licensing/self-archiving.html#3.

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Work Title An Ultrathin, Fast-Response, Large-Scale Liquid-Crystal-Facilitated Multi-Functional Reconfigurable Metasurface for Comprehensive Wavefront Modulation
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Open Access
Creators
  1. Xin Yu Wu
  2. Hong Yuan Feng
  3. Fengshuo Wan
  4. Meng Wei
  5. Chong Guo
  6. Longzhu Cai
  7. Fan Wu
  8. Zhi Hao Jiang
  9. Lei Kang
  10. Wei Hong
  11. Douglas H. Werner
Keyword
  1. beam steering
  2. liquid crystal
  3. metasurface
  4. reconfigurable hologram
  5. wavefront shaping
License In Copyright (Rights Reserved)
Work Type Article
Publisher
  1. Advanced Materials
Publication Date April 8, 2024
Publisher Identifier (DOI)
  1. https://doi.org/10.1002/adma.202402170
Deposited September 09, 2024

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Version 1
published

  • Created
  • Added adma.202402170_Accepted.pdf
  • Added Creator Xin Yu Wu
  • Added Creator Hong Yuan Feng
  • Added Creator Fengshuo Wan
  • Added Creator Meng Wei
  • Added Creator Chong Guo
  • Added Creator Longzhu Cai
  • Added Creator Fan Wu
  • Added Creator Zhi Hao Jiang
  • Added Creator Lei Kang
  • Added Creator Wei Hong
  • Added Creator Douglas H. Werner
  • Published
  • Updated
  • Updated Keyword, Publication Date Show Changes
    Keyword
    • beam steering, liquid crystal, metasurface, reconfigurable hologram, wavefront shaping
    Publication Date
    • 2024-06-26
    • 2024-04-08