Meijun Qu
Beijing University of Posts and Telecommunications
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Publication
Featured researches published by Meijun Qu.
AIP Advances | 2016
Yongle Wu; Meijun Qu; Lingxiao Jiao; Yuanan Liu; Zabih Ghassemlooy
This paper presents a radiation pattern reconfigurable Yagi-Uda antenna based on graphene operating at terahertz frequencies. The antenna can be reconfigured to change the main beam pattern into two or four different radiation directions. The proposed antenna consists of a driven dipole radiation conductor, parasitic strips and embedded graphene. The hybrid graphene-metal implementation enables the antenna to have dynamic surface conductivity, which can be tuned by changing the chemical potentials. Therefore, the main beam direction, the resonance frequency, and the front-to-back ratio of the proposed antenna can be controlled by tuning the chemical potentials of the graphene embedded in different positions. The proposed two-beam reconfigurable Yagi-Uda antenna can achieve excellent unidirectional symmetrical radiation pattern with the front-to-back ratio of 11.9 dB and the10-dB impedance bandwidth of 15%. The different radiation directivity of the two-beam reconfigurable antenna can be achieved by controlling the chemical potentials of the graphene embedded in the parasitic stubs. The achievable peak gain of the proposed two-beam reconfigurable antenna is about 7.8 dB. Furthermore, we propose a four-beam reconfigurable Yagi-Uda antenna, which has stable reflection-coefficient performance although four main beams in reconfigurable cases point to four totally different directions. The corresponding peak gain, front-to-back ratio, and 10-dB impedance bandwidth of the four-beam reconfigurable antenna are about 6.4 dB, 12 dB, and 10%, respectively. Therefore, this novel design method of reconfigurable antennas is extremely promising for beam-scanning in terahertz and mid-infrared plasmonic devices and systems.
Scientific Reports | 2016
Yongle Wu; Meijun Qu; Yuanan Liu
To investigate the frequency shift phenomenon by inserting graphene, a generalized lossy transmission-line model and the related electrical parameter-extraction theory are proposed in this paper. Three kinds of graphene-based transmission lines with attenuation phenomenon including microstrip line, double-side parallel strip line, and uniplanar coplanar waveguide are analyzed under the common conditions where different chemical potentials are loaded on graphene. The values of attenuation constant and phase constant, and the real and imaginary parts of the characteristic impedance of transmission lines are extracted to analyze in details. When the attenuation constant and the reactance part of the characteristic impedance are approximately equal to zero, this kind of transmission line has low or zero insertion loss. On the contrary, the transmission line is under the radiation mode with obvious insertion loss. The phase constant changes linearly under the transmission mode and can be varied with changing of chemical potentials which attributes to the property of frequency tunability. Furthermore, a bandwidth reconfigurable uniplanar coplanar waveguide power divider is simulated to demonstrate that this theory can be applied to the design of three-port devices. In summary, this work provides a strong potential approach and design theory to help design other kinds of terahertz and mid-infrared reconfigurable devices.
Plasmonics | 2017
Yongle Wu; Meijun Qu; Lingxiao Jiao; Yuanan Liu
Microwave and Optical Technology Letters | 2016
Yongle Wu; Meijun Qu; Weimin Wang; Yuanan Liu
Plasmonics | 2018
Yongle Wu; Meijun Qu; Mingxing Li; Bo Zhang; Yuanan Liu
Microwave and Optical Technology Letters | 2018
Meijun Qu; Mingxing Li; Lidan Yao; Menlou Rao; Shufang Li; Li Deng
ieee international workshop on electromagnetics applications and student innovation competition | 2016
Yongle Wu; Mingxing Li; Meijun Qu; Yuanan Liu
Radio Science | 2018
Meijun Qu; Jiming Song; Lidan Yao; Shufang Li; Li Deng; Yandong Yang
Plasmonics | 2018
Meijun Qu; Li Deng; Mingxing Li; Mingyang Zheng; Shufang Li
Plasmonics | 2018
Meijun Qu; Mingxing Li; Lidan Yao; Zheng Zhuang; Shufang Li; Li Deng