Coding metamaterials, digital metamaterials and programmable metamaterials
Кодирующие метаматериалы, цифровые метаматериалы и программируемые метаматериалы
2014-10-24
SCID: 54.1/ea8gar9x
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coding metamaterialsdigital metamaterialselectromagnetic wave manipulationfield-programmable gate arrayprogrammable metamaterials
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Abstract (AI)
Metamaterials are artificial structures that are usually described by effective medium parameters on the macroscopic scale, and these metamaterials are referred to as ‘analog metamaterials’. Here, we propose ‘digital metamaterials’ through two steps. First, we present ‘coding metamaterials’ that are composed of only two types of unit cells, with 0 and π phase responses, which we name ‘0’ and ‘1’ elements, respectively. By coding ‘0’ and ‘1’ elements with controlled sequences (i.e., 1-bit coding), we can manipulate electromagnetic (EM) waves and realize different functionalities. The concept of coding metamaterials can be extended from 1-bit coding to 2-bit coding or higher. In 2-bit coding, four types of unit cells, with phase responses of 0, π/2, π, and 3π/2, are required to mimic the ‘00’, ‘01’, ‘10’ and ‘11’ elements, respectively. The 2-bit coding has greater freedom than 1-bit coding for controlling EM waves. Second, we propose a unique metamaterial particle that has either a ‘0’ or ‘1’ response controlled by a biased diode. Based on this particle, we present ‘digital metamaterials’ with unit cells that possess either a ‘0’ or ‘1’ state. Using a field-programmable gate array, we realize digital control over the digital metamaterial. By programming different coding sequences, a single digital metamaterial has the ability to manipulate EM waves in different manners, thereby realizing ‘programmable metamaterials’. The above concepts and physical phenomena are confirmed through numerical simulations and experiments using metasurfaces. Smart materials offering great freedom in manipulating electromagnetic radiation have been developed. This exciting new concept was realized by Tie Jun Cui and co-workers at the Southeast University, China, who developed digital metamaterials consisting of two kinds of unit cells whose different phase responses allow them to act as ‘0’ and ‘1’ bits. These cells can be judiciously arranged in sequences to enable controlled manipulation of electromagnetic waves. This is one-bit coding; higher-bit coding is possible by employing more kinds of unit cells. The researchers developed a metamaterial cell whose binary response can be controlled by a biased diode. By using a field-programmable gate array, they demonstrated that this digital metamaterial can be programmed. Such metamaterials are attractive for controlling radiation beams in antennas and for realizing other ‘smart’ metamaterials.
Key Findings
1
A metamaterial particle with a biased diode switches between ‘0’ and ‘1’ responses, enabling electronically reconfigurable digital metamaterials.
2
Coding metamaterials can be extended to 2-bit or higher coding, using four phase states—0, π/2, π, and 3π/2—for greater electromagnetic-control freedom.
3
Field-programmable gate array control allows one digital metamaterial to implement different coding sequences and consequently realize programmable electromagnetic functionalities.
4
Numerical simulations and metasurface experiments confirm the proposed coding, digital, and programmable metamaterial concepts.
5
The paper introduces coding metamaterials composed of binary unit cells providing 0 and π phase responses, enabling electromagnetic-wave manipulation through controlled 1-bit sequences.
Research Object
coding, digital, and programmable metamaterials composed of binary- or multibit-configurable electromagnetic unit cells and metasurfaces
Research Subject
programmable manipulation of electromagnetic waves through coded phase responses and electrically switched unit-cell states
Publication Details
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2014-10-24
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