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A uniplanar compact photonic-bandgap (UC-PBG) structure and its applications for microwave circuit

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TLDR
In this article, the photonic bandgap (PBG) structure for microwave integrated circuits is presented, which is a two-dimensional square lattice with each element consisting of a metal pad and four connecting branches.
Abstract: 
This paper presents a novel photonic bandgap (PBG) structure for microwave integrated circuits. This new PBG structure is a two-dimensional square lattice with each element consisting of a metal pad and four connecting branches. Experimental results of a microstrip on a substrate with the PEG ground plane displays a broad stopband, as predicted by finite-difference time-domain simulations. Due to the slow-wave effect generated by this unique structure, the period of the PBG lattice is only 0.1/spl lambda//sub 0/ at the cutoff frequency, resulting in the most compact PEG lattice ever achieved. In the passband, the measured slow-wave factor (/spl beta//k/sub 0/) is 1.2-2.4 times higher and insertion loss is at the same level compared to a conventional 50-/spl Omega/ line. This uniplanar compact PBG (UC-PBG) structure can be built using standard planar fabrication techniques without any modification. Several application examples have also been demonstrated, including a nonleaky conductor-backed coplanar waveguide and a compact spurious-free bandpass filter. This UC-PBG structure should find wide applications for high-performance and compact circuit components in microwave and millimeter-wave integrated circuits.

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Citations
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Journal ArticleDOI

Design Synthesis of Metasurfaces for Broadband Hybrid-Mode Horn Antennas With Enhanced Radiation Pattern and Polarization Characteristics

TL;DR: In this paper, a hybrid-mode horn antenna with a low-index metamaterial was designed to improve the performance of conventional horn antennas over the entire Ku-band while introducing negligible losses.
Journal ArticleDOI

Suppression of EMI and Electromagnetic Noise in Packages Using Embedded Capacitance and Miniaturized Electromagnetic Bandgap Structures With High-k Dielectrics

TL;DR: In this paper, a planar electromagnetic bandgap (EBG) structure with high-k dielectric material (epsivr > 100) is proposed. But the Meander lines serve to provide current continuity bridges between the capacitive patches.
Journal ArticleDOI

Novel SHF-Band Uniplanar Artificial Magnetic Conductor

TL;DR: In this paper, a novel SHF-band uniplanar artificial magnetic conductor (AMC) is presented and a prototype is manufactured and characterized based on reflection coefficient phase.
Journal ArticleDOI

Efficient calculation of the dispersion diagram of planar electromagnetic band-gap structures by the MoM/BI-RME method

TL;DR: In this article, the authors present a method for the calculation of the dispersion diagram of the modes supported by the periodic structure and the phase of the reflection coefficient under plane-wave illumination.
Journal ArticleDOI

Compact EBG for Multi-Band Applications

TL;DR: In this article, a novel electromagnetic band-gap (EBG) structure with a compact size and multi-band gap was proposed by etching dual U-shaped slots symmetrically with respect to one axis of the edge-located vias mushroom-type EBG (ELV-EBG).
References
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Book

Microwave Engineering

David M Pozar
Proceedings Article

Photonic crystals

TL;DR: In this paper, the authors describe photonic crystals as the analogy between electron waves in crystals and the light waves in artificial periodic dielectric structures, and the interest in periodic structures has been stimulated by the fast development of semiconductor technology that now allows the fabrication of artificial structures, whose period is comparable with the wavelength of light in the visible and infrared ranges.
Book

Microstrip Lines and Slotlines

K. C. Gupta
TL;DR: In this article, the authors present a quasi-static analysis of an Enclosed Microstrip and a Slot-Coupled Microstrip Line, as well as a fullwave analysis of Discontinuity Inductance Evaluation.
Journal ArticleDOI

Photonic band-gap structures

TL;DR: In this article, the photonic band gap structures, those three-dimensional periodic dielectric structures that are to photon waves as semiconductor crystals are to electron waves, are discussed.
Journal ArticleDOI

Coplanar Waveguide, a Surface Strip Transmission Line Suitable for Nonreciprocal Gyromagnetic Device Applications

TL;DR: In this article, the coplanar waveguide is used for non-reciprocal magnetic device applications because of the built-in circularly polarized magnetic vector at the air-dielectric boundary between the conductors.
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