Towards Millimeter-Wave Phased Array Circuits and Systems For Small Form Factor and Power Efficient 5G Mobile Devices

Pilsoon Choi, D. Antoniadis, E. Fitzgerald
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引用次数: 6

Abstract

This paper discusses phased array system design issues for millimeter-wave circuits in 5G mobile devices. 5G technologies to enable extremely high data rates (10Gbps)., ultra-low latency (1msec), and massive number of devices (1M devices/km2) can support broad range of application spaces which have never been considered before. Directional beamforming by utilizing a phased array system in the millimeter-wave frequency ranges helps to improve system level efficiency providing spatial multiplexing capability. However., beamforming requires multiple RF channels and antennas with phase and gain control circuitry., which affects the radio form factor and degrades the performance due to the increased parasitic. Furthermore., 5G millimeter-wave power amplifiers have to be inherently linear without digital calibration because multiple RF channels cause complex and time-consuming calibration procedures prohibited in commercial mobile products. Since there is a tradeoff between linearity and efficiency., high efficiency in a millimeter-wave power amplifier cannot be achieved with CMOS only. Thus III-V devices and their monolithic integration with CMOS circuits are crucial for a small form factor and power efficient 5G mobile devices.
面向小尺寸和节能5G移动设备的毫米波相控阵电路和系统
本文讨论了5G移动设备中毫米波电路的相控阵系统设计问题。5G技术可实现极高的数据速率(10Gbps)。超低延迟(1msec)和大量设备(1M设备/km2)可以支持以前从未考虑过的广泛的应用程序空间。利用毫米波频率范围内相控阵系统的定向波束形成有助于提高系统级效率,提供空间复用能力。然而。在美国,波束形成需要多个射频信道和带有相位和增益控制电路的天线。,这会影响无线电的外形因素,并由于增加的寄生而降低性能。此外。在美国,5G毫米波功率放大器在没有数字校准的情况下必须具有固有的线性,因为多个射频通道会导致复杂且耗时的校准过程,这在商用移动产品中是禁止的。因为在线性和效率之间有一个权衡。在毫米波功率放大器中,仅使用CMOS是无法实现高效率的。因此,III-V器件及其与CMOS电路的单片集成对于小尺寸和节能的5G移动设备至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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