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Characterization of Tiled Architecture for C-Band 1-Bit Beam-Steering Transmitarray
Dmitry Kozlov1, Irina Munina2, Pavel Turalchuk2
1Nokia Bell-Labs, D15Y6NT Dublin, Ireland.
Sensors (Basel, Switzerland)
|February 13, 2021
Summary
A novel tiled array architecture for beam-steering transmitarrays enables modular design and broad spatial control. This approach offers comparable performance to conventional designs, with potential applications in fifth-generation (5G) communication systems.
Area of Science:
- Antenna Engineering
- Electromagnetics
- Metamaterials
Background:
- Transmitarrays are crucial for beam steering and forming in modern communication systems.
- Conventional single-panel designs face limitations in flexibility and manufacturing scalability.
- Modular architectures offer potential solutions for enhanced performance and adaptability.
Purpose of the Study:
- To introduce and validate a novel tiled array architecture for beam-steering transmitarrays.
- To develop and characterize a compact circuit model for the tiled unit cell.
- To compare the performance of the tiled transmitarray with conventional single-panel designs.
Main Methods:
- Development of a tiled array architecture with standalone, hard-wireable pixel units.
- Full-wave electromagnetic simulations for characterizing the compact circuit model of the unit cell.
- Fabrication and waveguide measurements of prototype unit cells and C-band transmitarrays.
- Benchmarking performance against a conventional single-panel (unibody) counterpart.
Main Results:
- A compact circuit model for the tiled unit cell was proposed and validated through simulations and measurements.
- A 10 × 10-element 1-bit beam-steering transmitarray using the tiled architecture was designed and tested.
- Prototypes demonstrated close performance to single-panel designs, with good agreement between simulations and experimental results.
- Fabrication tolerances showed a weak effect on the overall performance of the tiled transmitarray.
Conclusions:
- The proposed tiled array architecture provides a viable and flexible alternative for beam-steering transmitarrays.
- The modular design facilitates specific transmission characteristics and broad spatial beam control.
- This technology holds significant promise for advanced applications, particularly in fifth-generation (5G) wireless communication systems.

