Meta-atoms: From Metamaterials to Metachips
- PMID: 39801504
- PMCID: PMC11717995
- DOI: 10.34133/research.0587
Meta-atoms: From Metamaterials to Metachips
Abstract
Electromagnetic (EM) metamaterials represent a cutting-edge field that achieves anomalously macroscopic properties through artificial design and arrangement of microstructure arrays to freely manipulate EM fields and waves in desired ways. The unit cell of a microstructure array is also called a meta-atom, which can construct effective medium parameters that do not exist in traditional materials or are difficult to realize with traditional technologies. By deep integration with digital information, the meta-atom is evolved to a digital meta-atom, leading to the emergence of information metamaterials. Information metamaterials break the inherent barriers between the EM and digital domains, providing a physical platform for controlling EM waves and modulating digital information simultaneously. The concepts of meta-atoms and metamaterials are also introduced to high-frequency integrated circuit designs to address issues that cannot be solved by traditional methods, since lumped-parameter models become unsustainable at microscopic scales. By incorporating several meta-atoms to form a metachip, precise manipulation of the EM field distribution can be achieved at microscopic scales. In this perspective, we summarize the physical connotations and main classifications of meta-atoms and briefly discuss their future development trends. Through this article, we hope to draw more research attention to explore the potential values of meta-atoms, thereby opening up a broader stage for the in-depth development of metamaterials.
Copyright © 2025 Hao Chi Zhang et al.
Conflict of interest statement
Competing interests: The authors declare that they have no competing interests.
Figures
References
-
- Shelby RA, Smith DR, Schultz S. Experimental verification of a negative index of refraction. Science. 2001;292(5514):77–79. - PubMed
-
- Liu R, Ji C, Mock JJ, Chin JY, Cui TJ, Smith DR. Broadband ground-plane cloak. Science. 2009;323(5912):366–369. - PubMed
-
- Jiang WX, Qiu CW, Han TC, Cheng Q, Ma HF, Zhang S, Cui TJ. Broadband all-dielectric magnifying lens for far-field high-resolution imaging. Adv Mater. 2013;25(48):6963–6968. - PubMed
-
- Cui TJ, Liu S, Zhang L. Information metamaterials and metasurfaces. J Mater Chem C. 2017;5(15):3644–3668.
-
- Cui TJ, Qi MQ, Wan X, Zhao J, Cheng Q. Coding metamaterials, digital metamaterials and programmable metamaterials. Light Sci Appl. 2014;3: Article e218.
Publication types
LinkOut - more resources
Full Text Sources