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A 21 to 30-GHz Merged Digital-Controlled High Resolution Phase Shifter-Programmable Gain Amplifier with Orthogonal Phase and Gain Control for 5-G Phase Array Application

机译:21至30 GHz合并数字控制的高分辨率相移器可编程增益放大器,具有正交相位和5G相位阵列应用的增益控制

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This paper presents a 21 to 30-GHz merged passive vector sum phase shifter (PS) and programmable gain amplifier (PGA) with sub-degree phase resolution for 5-G phased array application. In PS, a transformer-based full-differential high-order resonant coupler functions as a quadrature generator (QG) with a novel layout strategy to achieve broad bandwidth, low loss, and accurate quadrature phase within only one inductor-footprint. Compared to the conventional transformer-based fourth order resonant coupler, the proposed resonant coupler with higher order features much wider quadrature bandwidth. Two phase invariant 6-bit binary-weighted arrays of vector modulators scale the quadrature signals to achieve the desired high resolution vector phase interpolation. In PGA, a phase invariant and dB-linear gain is achieved by adopting a "fractional-bit-based" PGA design. The chip prototype is fabricated in a 65-nm CMOS process, this implementation achieves 43% fractional BW-3dB (20 to 31-GHz). The phase control operates with 0.8° steps while maintaining a minimum RMS phase error of 0.42°, demonstrating the best phase accuracy when compared to state-of-the-art mm-wave PSs.
机译:本文介绍了21至30GHz合并的被动矢量和相移器(PS)和可编程增益放大器(PGA),具有5G分阶段阵列应用的子度相位分辨率。在PS中,基于变压器的全差分高阶谐振耦合器用作正交发电机(QG),具有新颖的布局策略,以实现广泛的带宽,低损耗和仅在一个电感 - 足迹内的高损耗和准确的正交相位。与传统的变压器的第四阶谐振耦合器相比,具有更高阶的所提出的谐振耦合器具有更宽的正交带宽。矢量调制器的两个相位不变6位二进制加权阵列缩放了正交信号以实现所需的高分辨率向量相位插值。在PGA中,通过采用“基于分数位”PGA设计来实现相位不变和DB线性增益。芯片原型是在65nm CMOS工艺中制造的,这种实现实现了43%的分数BW -3db (20到31-GHz)。相位控制在0.8°步工作,同时保持0.42°的最小RMS相位误差,与最先进的MM波PSS相比,展示了最佳相精度。

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