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Yuehe Ge

Researcher at Huaqiao University

Publications -  122
Citations -  1766

Yuehe Ge is an academic researcher from Huaqiao University. The author has contributed to research in topics: Microstrip antenna & Antenna (radio). The author has an hindex of 19, co-authored 113 publications receiving 1368 citations. Previous affiliations of Yuehe Ge include Macquarie University & University of Sydney.

Papers
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The Use of Simple Thin Partially Reflective Surfaces With Positive Reflection Phase Gradients to Design Wideband, Low-Profile EBG Resonator Antennas

TL;DR: Partially reflecting surfaces with positive reflection phase gradients are investigated for the design of wideband, low profile electromagnetic band gap (EBG) resonator antennas in this article, where three such surfaces, each with printed dipoles on both sides, have been designed to obtain different positive reflection phases and reflection magnitude levels in the operating frequency bands.
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E-shaped patch antennas for high-speed wireless networks

TL;DR: Thin, broad-band, E-shaped microstrip patch antennas (ESPAs), operating in the 5-6 GHz frequency range, are presented, suitable for WLAN adaptor cards in the PCMCIA format, allowing users of current notebook computers to upgrade to this high-speed wireless standard at a low cost.
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Broadband Folded Transmitarray Antenna Based on an Ultrathin Transmission Polarizer

TL;DR: In this article, a low-profile broadband planar folded transmitarray antennas (FTAs) are proposed and studied based on a novel Fabry-Perot polarizer for high-efficiency transmission, phase compensation and the 90° polarization rotation at the same time.
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A Simple Dual-Band Electromagnetic Band Gap Resonator Antenna Based on Inverted Reflection Phase Gradient

TL;DR: In this article, a simple method is presented to obtain a high-gain dual-band electromagnetic band gap (EBG) resonator antenna based on a one-dimensional EBG structure, made out of two low-cost unprinted dielectric slabs.
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A compact E-shaped patch antenna with corrugated wings

TL;DR: In this paper, a compact E-shaped microstrip patch antenna, which is significantly smaller than previous e-shaped patch antennas, is presented, and the reduction in area is achieved by introducing corrugations into the two side wings of the Eshaped patch.