A 1.8 to 4 GHz inductor-less highly linear CMOS LNA for wire-less receivers

312 views

Authors

  • Le Thi Luan Academy of Military Science and Technology
  • Nguyen Huu Tho (Corresponding Author) Le Quy Don Technical University

DOI:

https://doi.org/10.54939/1859-1043.j.mst.76.2021.11-20

Keywords:

Inductor-less; Current-reuse; Active feedback; Wide-band; high linearity; Low noise amplifier.

Abstract

This paper presents an inductor-less wide-band highly linear low-noise amplifier (LNA) for wire-less receivers. The inductor-less LNA consists of a complementary current-reuse common source amplifier combined with a low-current active feedback to obtain wide range input impedance matching and low noise figure. In our LNA, a degeneration resistor is utilized to improve linearity of the LNA. Furthermore, we designed a bypass mode for the LNA to extend the range of its applications. The proposed LNA is implemented in 28 nm CMOS process. It has a gain of 14.9 dB and a bandwidth of 2.2 GHz. The noise figure (NF) is 1.95 dB and the third-order input intercept point (IIP3) is 24.8 dBm at 2.3 GHz. It consumes 17.2 mW at a 0.9-V supply and has an area of 0.011 mm2.

References

[1]. R. Bagheri, et al., “An 800-MHz–6-GHz software-defined wireless receiver in 90-nm CMOS,” IEEE J. Solid-State Circuits, vol. 41, no. 12, pp. 2860–2876, Dec. 2006.

[2]. A. Geis, et al., “A 0.5 mm2 power-scalable 0.5–3.8-GHz CMOS DT-SDR receiver with second-order RF band-pass sampler,” IEEE J. Solid-State Circuits, vol. 45, no. 11, pp. 2375–2387, Nov. 2010.

[3]. R. Chen and H. Hashemi, “A 0.5-to-3 GHz software-defined radio receiver using discrete-time RF signal processing,” IEEE J. Solid-State Circuits, vol. 49, no. 5, pp. 1097–1111, May 2014.

[4]. B. G. Perumana, et al. “Resistive-Feedback CMOS Low-Noise Amplifiers for Multiband Applications,” IEEE Transactions on Microwave Theory and Techniques, Vol. 56, No. 5, May 2008.

[5]. S. S. Regulagadda, et al., "A Packaged Noise-Canceling High-Gain Wideband Low Noise Amplifier," IEEE Trans. Circuits Syst. II: Express, DOI 10.1109/TCSII.2018.2828781, 2018.

[6]. A. Pärssinen, “System design for multi-standard radios,” in IEEE ISSCC Girafe Forum, Feb. 2006.

[7]. Ting Ma and Feng Hu, “A Wideband Flat Gain Low Noise Amplifier Using Active Inductor For Input Matching,” IEEE Trans. Circuits Syst. II: Express, DOI 10.1109/TCSII.2018.2872068, 2018.

[8]. H. Yu, et al., “A 0.096-mm2 1–20-GHz Triple-Path Noise-Canceling Common-Gate Common-Source LNA With Dual Complementary pMOS–nMOS Configuration,” IEEE Transactions on Microwave Theory and Techniques, DOI 10.1109/TMTT.2019.2949796, 2019.

[9]. R M. De Souza, A. Mariano, and T. Taris, “Reconfigurable inductorless wideband CMOS LNA for wireless communications,” IEEE Trans. Circuits Syst. I, Reg. Papers, vol. 64, no. 3, pp. 675–685, Mar. 2017.

[10]. G. Guitton, et al., “Design Methodology Based on the Inversion Coefficient and Its Application to Inductorless LNA Implementations,” IEEE Trans. Circuits Syst. I, Reg. Papers, vol. 66, no. 10, Oct. 2019.

[11]. W. Shen, P. Liu, and S. Zhang, “An Inductor-less Highly Linear LNA with Noise Cancelling and Current Reusing for 3-5 GHz Low-Power UWB Receivers,” ICSICT, 2020.

Downloads

Published

12-12-2021

How to Cite

Luan, and Nguyen Huu Tho. “A 1.8 to 4 GHz Inductor-Less Highly Linear CMOS LNA for Wire-Less Receivers”. Journal of Military Science and Technology, no. 76, Dec. 2021, pp. 11-20, doi:10.54939/1859-1043.j.mst.76.2021.11-20.

Issue

Section

Research Articles

Most read articles by the same author(s)