A two-path low-noise amplifier (LNA) is designed with TSMC 0.18[Formula: see text][Formula: see text]m standard RF CMOS process for 6–16[Formula: see text]GHz frequency band applications. The principle of a conventional resistive shunt feedback LNA is analyzed to demonstrate the trade-off between the noise figure (NF) and the input matching. To alleviate the mentioned issue for wideband application, this structure with noise canceling technique and linearity improvement are applied to a two-path structure. Flat and high gain is supplied by the primary path; while the input and output impedance matching are provided by the secondary path. The [Formula: see text][Formula: see text]dB bandwidth can be increased to a higher frequency by inductive peaking, which is used at the first stage of the two paths. Besides, by biasing the transistors at the threshold voltage, low power dissipation is achieved. The [Formula: see text][Formula: see text]dB gain bandwidth of the proposed LNA is 10[Formula: see text]GHz, while the maximum power gain of 13.1[Formula: see text]dB is attained. With this structure, minimum NF of 4.6[Formula: see text]dB and noise flatness of 1[Formula: see text]dB in the whole bandwidth can be achieved. The input impedance is matched, and S[Formula: see text] is lower than [Formula: see text]10 dB. With the proposed linearized LNA, the average IIP[Formula: see text][Formula: see text]dBm is gained, while it occupies 1051.7[Formula: see text][Formula: see text]m die area.
[1]
Mostafa Yargholi,et al.
UWB resistive feedback LNA employing noise and distortion cancellation
,
2012,
IEICE Electron. Express.
[2]
Abumoslem Jannesari,et al.
Two-path inverter-based low noise amplifier for 10-12 GHz applications
,
2016,
Microelectron. J..
[3]
Mostafa Yargholi,et al.
A CMOS low noise amplifier with employing noise cancellation and modified derivative superposition technique
,
2016,
Microelectron. J..
[4]
Meng-Ting Hsu,et al.
Low power high gain CMOS LNA based on inverter cell and self-body bias for UWB receivers
,
2014,
Microelectron. J..
[5]
Jichai Jeong,et al.
Design of low power CMOS ultra wide band low noise amplifier using noise canceling technique
,
2013,
Microelectron. J..
[6]
Mostafa Yargholi,et al.
Low power active shunt feedback CMOS low noise amplifier for wideband wireless systems
,
2019,
Integr..
[7]
Mohammad Yavari,et al.
A UWB CMOS low-noise amplifier with noise reduction and linearity improvement techniques
,
2015,
Microelectron. J..
[8]
Mostafa Yargholi.
A highly linear squarer design for energy-detection RF receivers
,
2013,
Microelectron. J..