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4.3 A Multiphase Interpolating Digital Power Amplifier for TX Beamforming in 65nm CMOS

机译:4.3用于65nm CMOS中TX波束成形的多相插值数字功率放大器

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Future 5G communications will heavily leverage beamforming and MIMO techniques, owing to the improvement in data transmission capacity. In a transmit (TX) beamformer, the phase and amplitude of an array of TXs can be arbitrarily adjusted to spatially steer a transmitted beam toward a user or multiple users. The amplitude and direction of the beam is adjusted by controlling the gain and phase of each TX in the array. Gain is typically adjusted with a variable-gain amplifier in the driver chain. In recent beamforming TXs, four primary means to control the output beam angle have been leveraged. Passive RF phase shifting is bulky and lossy, owing to high losses in the passive elements, and is difficult to design to provide phase control through 360°. LO phase shifting often uses a single passive phase shifter or a multiphase ring oscillator, but these devices typically provide lower phase resolution. Digitally controlled delay lines provide a wider bandwidth response but suffer from reduced phase resolution as frequency is increased and can consume high power [1]. Digital phase-shifting techniques have recently shown promise in polar systems [2, 3], but the quadrature modulators, typically used for phase shifting, incur high loss if placed directly at the output stage.
机译:由于数据传输能力的提高,未来5G通信将严重利用波束成形和MIMO技术。在发送(TX)波束形成器中,可以任意调整TXS阵列的相位和幅度以向用户或多个用户空间转向发送的光束。通过控制阵列中的每个Tx的增益和相位来调整光束的幅度和方向。通常使用驾驶员链中的可变增益放大器调整增益。在最近的波束成形TXS中,已经利用了控制输出波束角度的四个主要装置。由于无源元件中的高损耗,被动RF相移更笨重和有损,并且难以设计通过360°提供相位控制。 Lo相移通常使用单个无源移相器或多相环振荡器,但这些设备通常提供更低的相位分辨率。数字控制的延迟线提供更宽的带宽响应,但由于频率增加并且可以消耗高功率[1]遭受降低的相位分辨率。最近在极地系统[2,3]中显示了数字相移技术[2,3],但是通常用于相移的正交调制器,如果直接放置在输出级,则产生高损耗。

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