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Wen-Yi Ruan

National Cheng Kung University

Publishes on Antenna Design and Analysis, Advanced Antenna and Metasurface Technologies, Microwave Engineering and Waveguides. 2 papers and 11 citations.

2Publications
11Total Citations

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Top publicationsby citations

60-GHz CMOS artificial magnetic conductor on-chip 2×2 monopole - antenna phased array RF receiving system with integrated variable-gain low-noise amplifier and phase shifter
Yi Wu, Shih-Chiao Huang, Chun-Han Yu et al.|Unknown|2014
Cited by 8

This paper presents a 60-GHz CMOS artificial magnetic conductor (AMC) on-chip 2×2 monopole - antenna phased array RF receiving system with integrated variable-gain low-noise amplifier (VGLNA) and 360° phase shifter ( PS ). With the AMC structure, the radiation efficiency and power gain of the antenna increases from 6% to 15% and from -9 to -5 dBi at 60 GHz, respectively. In VG-LNA design, variable gain is achieved by a current-steering structure and low phase variation is achieved by a body-floating technique. The proposed 360° phase shifter is implemented by cascading a 180° reflection-type and a 180° switch-type phase shifters. The measurement results show that a phase control range of 360° with a gain variation of 3.7 dB can be achieved. In terms of gain controlling capability, a 11.3-dB gain control range with a 13.5° phase variation is obtained. On-wafer beam steering measurement shows that the main beam can scan to ±25°. The total power consumption is 75 mW from a 1.5 V power supply. The chip size is 3.1 × 3.8 mm <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> .

60-GHz CMOS 2 &amp;#x00D7; 2 artificial-magnetic-conductor monopole on-chip antenna array for phased-array RF receiving system
Yi Wu, Chien-Chorng Chou, Wen-Yi Ruan et al.|Unknown|2014
Cited by 3

This paper presents a 60-GHz CMOS 2 × 2 artificial magnetic conductor (AMC) monopole on-chip antenna array in 90-nm CMOS technology for phased-array RF receiving system. With the AMC structure, the radiation efficiency and power gain of the on-chip monopole antenna increases from 6% to 15% and from -9 to -5 dBi at 60 GHz, respectively. On-wafer beam steering measurement shows that the antenna-array main beam can scan to ±25° in the XZ plane. The chip size is 3.1 × 3.8 mm <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> .