SEMICONDUCTOR INTEGRATED CIRCUITS

Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver

Li Ma, Zhigong Wang, Jian Xu, Yiqiang Wu, Junliang Wang, Mi Tian and Jianping Chen

+ Author Affiliations

 Corresponding author: Li Ma, E-mail: lionel.ma.ic@gmail.com; Zhigong Wang, E-mail: zgwang@seu.edu.cn

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Abstract: An analog baseband circuit of high linearity and high gain accuracy for a digital audio broadcasting receiver is implemented in a 0.18-μm RFCMOS process. The circuit comprises a 3rd-order active-RC complex filter (CF) and a programmable gain amplifier (PGA). An automatic tuning circuit is also designed to tune the CF's pass band. Instead of the class-A fully differential operational amplifier (FDOPA) adopted in the conventional CF and PGA design, a class-AB FDOPA is specially employed in this circuit to achieve a higher linearity and gain accuracy for its large current swing capability with lower static current consumption. In the PGA circuit, a novel DC offset cancellation technique based on the MOS resistor is introduced to reduce the settling time significantly. A reformative switching network is proposed, which can eliminate the switch resistor's influence on the gain accuracy of the PGA.The measurement result shows the gain range of the circuit is 10—50 dB with a 1-dB step size, and the gain accuracy is less than ± 0.3 dB. The OIP3 is 23.3 dBm at the gain of 10 dB. Simulation results show that the settling time is reduced from 100 to 1 ms. The image band rejection is about 40 dB. It only draws 4.5 mA current from a 1.8 V supply voltage.

Key words: complex filterautomatic tuningPGAreceiverDABDCOC



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Fig. 1.  Block diagram of low-IF architecture.

Fig. 2.  (a) Poles shift. (b) Transfer function shift.

Fig. 3.  A simplified schematic of the analog baseband circuit.

Fig. 4.  Block diagram of ATC.

Fig. 5.  The two-stage Miller class-AB FDOPA.

Fig. 6.  The flow chart of the AT.

Fig. 7.  (a) Traditional switch network. (b) The switch network in this design.

Fig. 8.  (a) Diode connected MOS resistors. (b) MOS resistors biased to $V_{\rm cm}$.

Fig. 9.  Chip micrograph.

Fig. 10.  Amplitude response. (a) Before tuning. (b) After tuning.

Fig. 11.  The gain and gain deviation at 2 MHz.

Fig. 12.  IP3 of the analog baseband circuit.

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Table 1.   Measurement result summary.

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    Received: 03 July 2014 Revised: Online: Published: 01 February 2015

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      Li Ma, Zhigong Wang, Jian Xu, Yiqiang Wu, Junliang Wang, Mi Tian, Jianping Chen. Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver[J]. Journal of Semiconductors, 2015, 36(2): 025002. doi: 10.1088/1674-4926/36/2/025002 L Ma, Z G Wang, J Xu, Y Q Wu, J L Wang, M Tian, J P Chen. Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver[J]. J. Semicond., 2015, 36(2): 025002. doi: 10.1088/1674-4926/36/2/025002.Export: BibTex EndNote
      Citation:
      Li Ma, Zhigong Wang, Jian Xu, Yiqiang Wu, Junliang Wang, Mi Tian, Jianping Chen. Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver[J]. Journal of Semiconductors, 2015, 36(2): 025002. doi: 10.1088/1674-4926/36/2/025002

      L Ma, Z G Wang, J Xu, Y Q Wu, J L Wang, M Tian, J P Chen. Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver[J]. J. Semicond., 2015, 36(2): 025002. doi: 10.1088/1674-4926/36/2/025002.
      Export: BibTex EndNote

      Design of a high linearity and high gain accuracy analog baseband circuit for DAB receiver

      doi: 10.1088/1674-4926/36/2/025002
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      Project supported by the National Natural Science Foundation of China (Nos. 61106024, 61201176), the Specialized Research Fund for the Doctoral Program of Higher Education, China (No. 20090092120012), and the Special Fund of Jiangsu Province for the Transformation of Scientific and Technological Achievements (No. BA2011009).

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