Affiliation:
1. State Key Lab of Nuclear Physics and Technology, School of Physics, Peking University, Beijing 100871, China
2. Department of Physics and Laboratory of Space Environment and Matter Science, Harbin Institute of Technology, Harbin 150001, China
Abstract
This research analyzes the field enhancement properties of a subwavelength metallic groove working at [Formula: see text] terahertz (THz), which is potentially applicable as a receiver to enhance THz signals in integrated circuits. We derive the analytic formulation of the field magnification by utilizing the distinctive characteristics of the electromagnetic (EM) field inside and above the groove with the EM field continuity on the upper and lower surfaces of the groove. This method, known as the Bruijn theory, has been applied in acoustics and optics to obtain reflection and absorption coefficients. Then, the dependence of these field enhancement properties on both the groove width and depth is examined by theoretical analysis and numerical simulations consistently. Results show that the field enhancement varies periodically with the groove depth in a period of [Formula: see text], featuring the typical Fabry–Perot resonance. The field enhancement is inversely proportional to the groove width due to the cavity effect. Besides, the field intensity can be further enhanced by [Formula: see text] via appropriately rounding the sharp vertices at the inlet of the groove. Moreover, the incident angle effect on the field enhancing property is explored. An enhancement of >32 dB can be realized at any incident angle with a groove of dimensions [Formula: see text]. These results are helpful for understanding the field enhancement mechanism and designing novel THz plasmonic devices, such as an easily manufactured antenna receiver or sensor with simple and compact configuration, as well as offering a feasible solution for the high attenuation problem of THz communications.
Funder
National Science Foundation of China
Subject
General Physics and Astronomy
Cited by
4 articles.
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