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A 28-GHz 4-channel dual-vector receiver phased array in SiGe BiCMOS technology | IEEE Conference Publication | IEEE Xplore

A 28-GHz 4-channel dual-vector receiver phased array in SiGe BiCMOS technology


Abstract:

This paper presents a 28-GHz four-channel phased-array receiver in 120-nm SiGe BiCMOS technology for 5G cellular application. The phased-array receiver employs scalar-onl...Show More

Abstract:

This paper presents a 28-GHz four-channel phased-array receiver in 120-nm SiGe BiCMOS technology for 5G cellular application. The phased-array receiver employs scalar-only weighting functions within each front-end and then global quadrature power combining to realize beamforming. Differential LNAs and dual-vector variable-gain amplifiers are used to realize each front-end with compact area. Each front-end achieves 5.1 to 7 dB noise figure, -16.8 to -13.8 dBm input compression point, -10.5 to -8.9 dBm input third-order intercept point across 4-bit phase settings and a 3-dB bandwidth of 26.5 to 33.9GHz, while consuming 136 mW per element. RMS gain and phase errors are <; 0.6 dB and <; 5.4° at 28-32 GHz respectively, and all four elements reveal well-matched responses.
Date of Conference: 22-24 May 2016
Date Added to IEEE Xplore: 09 July 2016
ISBN Information:
Electronic ISSN: 2375-0995
Conference Location: San Francisco, CA, USA
Department of Electrical and Computer Eng., North Carolina State University, Raleigh, NC, USA
Analog Devices, Wilmington, MA, USA
Analog Devices, Wilmington, MA, USA
Department of Electrical and Computer Eng., North Carolina State University, Raleigh, NC, USA

I. Introduction

There is an ever-growing need to support faster data rates in future cellular networks and this need has the potential to be met by shifting toward millimeter-wave frequencies (20–100 GHz). In particular, the 28-GHz frequency band is a prime candidate for 5G networks, due to suitable bandwidth, favorable channel characteristics, and the ability to realize power-efficient high-performance hardware in silicon. Link budgets for 28 GHz suggest moderate beamforming for handsets and stronger beamforming at the basestation. As a result, wide-bandwidth, low-area, and scalable phased-array architectures are required for future 28-GHz systems. In this work, we present a dual-vector 28-GHz receive beamformer which employs scalar-only weighting functions within each front-end and global quadrature combining to realize beamforming. Such scalar front ends can be both area-efficient and wide bandwidth. We demonstrate our concept with the realization of a four-element phased-array receive beamformer in SiGe BiCMOS operating at 28 GHz.

Department of Electrical and Computer Eng., North Carolina State University, Raleigh, NC, USA
Analog Devices, Wilmington, MA, USA
Analog Devices, Wilmington, MA, USA
Department of Electrical and Computer Eng., North Carolina State University, Raleigh, NC, USA
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References

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