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A 28 GHz SiGe PLL for an 81–86 GHz E-band beam steering transmitter and an I/Q phase imbalance detection and compensation circuit

机译:用于81–86 GHz E波段波束转向发射机和I / Q相位不平衡检测和补偿电路的28 GHz SiGe PLL

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This paper presents two circuits, a complete 1.5 V 28 GHz SiGe beam steering PLL and a standalone 28 GHz QVCO with I/Q phase imbalance detection and compensation. The circuits were designed in a SiGe process with f T  = 200 GHz. The PLL is intended to be used for beam steering in an 81–86 GHz E-band transmitter. Phase control is implemented by DC current injection at the output of a Gilbert architecture phase detector showing a simulated phase control sensitivity of 1.2°/µA over a range close to 180°. The simulations use layout parasitics for the QVCO, frequency divider, and phase detector, and an electromagnetic model for the QVCO inductors. The divider is implemented with four cascaded divide-by-two current-mode-logic blocks for a reference frequency of 1.75 GHz. For closed loop simulations of PLL noise and stability, the QVCO is represented with a behavior model with added phase noise. This simulation technique enabled faster simulation time of the PLL. The PLL in band phase noise at 1 MHz offset equals −115 dBc/Hz. Excluding output buffers, the entire PLL consumes 52 mW plus a minimum 7 mW from a variable high voltage supply required to extend the PLL locking range. The measured phase noise of the standalone QVCO equals −100 dBc/Hz at 1 MHz offset. Since E-band radio links utilize higher order QAM modulation, the bit-error rate is sensitive to I/Q phase error. In the measured standalone QVCO with I/Q phase imbalance detection and compensation, the error is detected in two cross coupled active mixers that have an output DC level proportional to the phase error. The error can then be eliminated adjusting the bias of four varactors connected to the QVCO outputs. The current consumption of the chip equals 14 mA from a 1.5 V supply and 57 mA from a 2.5 V supply dedicated to the detector and 28 GHz output measurement buffers.
机译:本文介绍了两个电路,一个完整的1.5 V 28 GHz SiGe波束控制PLL和一个具有I / Q相位不平衡检测和补偿功能的独立28 GHz QVCO。电路采用f = 200 GHz的SiGe工艺设计。 PLL旨在用于81-86 GHz E波段发射机中的波束控制。通过在Gilbert架构相位检测器的输出端注入直流电流来实现相位控制,该相位检测器在接近180°的范围内显示出1.2°/ µA的模拟相位控制灵敏度。仿真使用QVCO,分频器和鉴相器的布局寄生参数,以及QVCO电感器的电磁模型。分频器由四个级联的二分频电流模式逻辑模块实现,参考频率为1.75 GHz。对于PLL噪声和稳定性的闭环仿真,QVCO用行为模型表示,该模型具有附加的相位噪声。这种仿真技术可以加快PLL的仿真时间。在1 MHz偏移处的带内相位噪声PLL等于−115 dBc / Hz。除输出缓冲器外,整个PLL消耗52mW的功率,并从扩展PLL锁定范围所需的可变高压电源中至少消耗7mW的功率。在1 MHz偏移下,独立QVCO的实测相位噪声等于-100 dBc / Hz。由于E波段无线电链路使用高阶QAM调制,所以误码率对I / Q相位误差很敏感。在具有I / Q相位不平衡检测和补偿功能的独立QVCO中,在两个交叉耦合的有源混频器中检测到误差,该混频器的输出DC电平与相位误差成比例。然后可以通过调整连接到QVCO输出的四个变容二极管的偏置来消除误差。专用于检测器和28 GHz输出测量缓冲器的1.5V电源芯片电流消耗为14mA,2.5V电源芯片电流消耗为57mA。

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