期刊文献+

A reconfigurable passive mixer for multimode multistandard receivers in 0.18 μm CMOS

A reconfigurable passive mixer for multimode multistandard receivers in 0.18 μm CMOS
原文传递
导出
摘要 This paper presents a reconfigurable quadrature passive mixer for multimode multistandard receivers. By using controllable transconductor and transimpedance-amplifier stages, the voltage conversion gain of the mixer is reconfigured according to the requirement of the selected communication standard Other characteristics such as noises figure, linearity and power consumption are also reconfigured consequently. The design concept is verified by implementing a quadrature passive mixer in 0.18 μm CMOS technology. On wafer measurement results show that, with the input radio frequency ranges from 700 MHz to 2.3 GHz, the mixer achieves a controllable voltage conversion gain from 4 to 22 dB with a step size of 6 dB. The measured maximum IIP3 is 8.5 dBm and the minimum noise figure is 8.0 dB. The consumed current for a single branch (I or Q) ranges from 3.1 to 5.6 mA from a 1.8 V supply voltage. The chip occupies an area of 0.71 mm2 including pads. This paper presents a reconfigurable quadrature passive mixer for multimode multistandard receivers. By using controllable transconductor and transimpedance-amplifier stages, the voltage conversion gain of the mixer is reconfigured according to the requirement of the selected communication standard Other characteristics such as noises figure, linearity and power consumption are also reconfigured consequently. The design concept is verified by implementing a quadrature passive mixer in 0.18 μm CMOS technology. On wafer measurement results show that, with the input radio frequency ranges from 700 MHz to 2.3 GHz, the mixer achieves a controllable voltage conversion gain from 4 to 22 dB with a step size of 6 dB. The measured maximum IIP3 is 8.5 dBm and the minimum noise figure is 8.0 dB. The consumed current for a single branch (I or Q) ranges from 3.1 to 5.6 mA from a 1.8 V supply voltage. The chip occupies an area of 0.71 mm2 including pads.
出处 《Journal of Semiconductors》 EI CAS CSCD 2016年第8期77-84,共8页 半导体学报(英文版)
基金 supported by the State Key Development Program for Basic Research of China(No.2010CB327404)
关键词 RECONFIGURABLE passive mixer MULTI-STANDARD current-commutating RECEIVERS CMOS reconfigurable passive mixer multi-standard current-commutating receivers CMOS
  • 相关文献

参考文献19

  • 1Lin F, Mak P, Martins R. Wideband receivers: design challenges, tradeoffs and state-of-the-art.Circuits and Systems Magazine, 2015, 15(1): 12 doi:10.1109/MCAS.2014.2385571.
  • 2Murphy D, Mikhemar M, Mirzaei A, et al. Advances in the design of wideband receivers.IEEE Custom Integrated Circuits Conference (CICC), 2013: 1.
  • 3Abidi A. The path to SDR receiver.IEEE J Solid-State Circuits, 2007, 42(5): 954 doi:10.1109/JSSC.2007.894307.
  • 4Chen R, Hashemi H. A 0.5-to-3 GHz software-defined radio receiver using discrete-time RF signal processing.IEEE J Solid State Circuits, 2014, 49(5): 1097 doi:10.1109/JSSC.2014.2303791.
  • 5El-Nozahi M, Sánchez-Sinencio E, Entesari K. Power-aware multiband multistandard CMOS receiver system-level budgeting. IEEE Trans Circuits Syst-Ⅱ, 2009, 56(7): 570.
  • 6Bao Kuan, Fan Xiangning, Li Wei, et al. A wideband current-commutating passive mixer for multi-standard receivers in a 0.18μm CMOS.Journal of Semiconductors, 2013, 34(1): 015003.
  • 7Wu Chenjian, Li Zhiqun, Sun Ge. A low voltage low power up-conversion mixer for WSN application.Journal of Semiconductors, 2014, 35(4): 045006 doi:10.1088/1674-4926/35/4/045006.
  • 8Tang Xusheng, Wang Xiaoyu, Yang Jiang, et al. A high linearity dual-band mixer for IMT-A and UWB systems.Journal of Semiconductors, 2014, 35(11): 115006.
  • 9Huang Y, Li W, Hu S, et al. A High-linearity WCDMA/GSM reconfigurable transceiver in 0.13μm CMOS.IEEE Trans Microw Theory Tech, 2013, 61(1): 204 doi:10.1109/TMTT.2012.2222913.
  • 10Wang X, Sturm J, Yan N, et al. 0.6-3 GHz wideband receiver RF front-end with a feedforward noise and distortion cancellation resistive-feedback LNA.IEEE Trans Microw Theory Tech, 2012, 60(2): 387.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部