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Source Degenerated Derivative Superposition Method for Linearizing RF FET Differential Amplifiers

机译:线性化RF FET差分放大器的源极退化导数叠加方法

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The second-order interaction effect in a field-effect transistor (FET) differential amplifier is analyzed using the Volterra series analysis method. The analysis results reveal that the second-order interaction is inherent in the fully differential amplifier structure, and thus can never be cancelled out. In contrast, it is found that the second-order interaction is possibly cancelled out by adding source degeneration impedance in the pseudodifferential amplifier (PDA) structure. In addition, the second-order interaction cancellation condition in the PDA can be made more robust and wider over the input signal swing by adopting the derivative superposition (DS) method. By combining the second-order interaction cancellation technique and the DS technique, a differential source degenerated DS method is proposed for linearizing FET differential amplifiers. A 2-GHz differential amplifier based on the proposed structure is designed for a power amplifier driver in an RF transmitter. Fabricated in CMOS, it operates from a 1.2-V supply with the power dissipation of 30.2 mW. Measurement results show that it achieves of peak output third-order intercept point, 43 dBc of C/I at 0-dBm output power, of output-referred P1dB, and of power gain.
机译:使用Volterra级数分析方法分析了场效应晶体管(FET)差分放大器中的二次相互作用效应。分析结果表明,二阶相互作用是全差分放大器结构所固有的,因此永远无法消除。相反,发现通过在伪差分放大器(PDA)结构中增加源极退化阻抗可以消除二阶相互作用。此外,通过采用导数叠加(DS)方法,可以使PDA中的二阶交互作用消除条件更健壮,并且在输入信号摆幅上更宽。通过结合二阶相互作用抵消技术和DS技术,提出了一种差分源退化DS方法,用于线性化FET差分放大器。基于提出的结构的2 GHz差分放大器被设计用于RF发射机中的功率放大器驱动器。它采用CMOS制成,采用1.2V电源供电,功耗为30.2mW。测量结果表明,它实现了峰值输出三阶交调点,0 dBm输出功率下的C / I为43 dBc,输出参考P1dB和功率增益。

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