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A new fast rail-to-rail continuous-time common-mode feedback circuit

机译:新型快速轨到轨连续时间共模反馈电路

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摘要

A novel and reliable rail-to-rail continuous-time Common-Mode Feedback Block (CMFB) circuit for low voltage, large output swing, and high-speed applications is presented in this paper. The main aims of the proposed idea are achieving high accuracy, high linearity and high-speed CMFB accompanied wideband dynamic range and large output swing as well. Hence, as MATLAB simulation results prove, employing the reference voltage (Vref) from 0.50 to 1.40 volts on the suggested CMFB, it can adjust the output voltage of the amplifier to the appropriate level with low error properly. Furthermore, applying the worst case simulation (initial condition 0 and 1.8 volts) on the proposed CMFB circuit, the output voltage can be settled in the desired level just after 1.33ns noticeably. The settling time error and the power consumption of the suggested common-mode feedback circuit are just 88μVand 216μW with the power supply of 1.8 volts respectively. Also, DC gain and phase margin of the amplifier are 61dB and 70.5 degree correspondingly, and 0.5pF capacitor load is applied to the output nodes of the amplifier. Meanwhile, the proposed idea is a good candidate for low voltage and large output swing applications too. Because it just needs lower than 3 overdrive voltage (AV) to start its performance. Finally, the proposed circuit is simulated in whole process corner condition and different temperatures in the region from −55°C to +65°C. Simulation results are performed using the HSPICE BS1M3 model of a 0.18μm CMOS technology and MATLAB software.
机译:本文针对低电压,大输出摆幅和高速应用提出了一种新颖且可靠的轨至轨连续时间共模反馈模块(CMFB)电路。提出的想法的主要目的是实现高精度,高线性度和高速CMFB以及宽带动态范围和大输出摆幅。因此,正如MATLAB仿真结果所证明的那样,在建议的CMFB上使用0.50至1.40伏的参考电压(Vref),可以将放大器的输出电压适当地调整到适当的水平,并且误差很小。此外,在建议的CMFB电路上应用最坏情况模拟(初始条件为0和1.8伏)时,输出电压可以在1.33ns之后立即稳定在所需的水平。建议的共模反馈电路的建立时间误差和功耗分别为88μV和216μW,电源分别为1.8伏。另外,放大器的DC增益和相位裕度分别为61dB和70.5度,并且0.5pF的电容器负载被施加到放大器的输出节点。同时,提出的想法对于低压和大输出摆幅应用也是一个很好的选择。因为它只需要低于3的过驱动电压(AV)即可开始其性能。最后,在整个过程转角条件和-55°C至+ 65°C范围内的不同温度下,对拟议的电路进行了仿真。使用0.18μmCMOS技术的HSPICE BS1M3模型和MATLAB软件执行仿真结果。

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