针对软件无线电架构的导航接收机对模数转换器的高输入带宽、高速及低功耗的需求,通过集成低功耗宽带采样保持电路及新型非二进制权重的电容阵列数模转换器电路,采用逐次逼近型模数转换器架构,设计实现了一款射频直接采样SAR模数转换器...针对软件无线电架构的导航接收机对模数转换器的高输入带宽、高速及低功耗的需求,通过集成低功耗宽带采样保持电路及新型非二进制权重的电容阵列数模转换器电路,采用逐次逼近型模数转换器架构,设计实现了一款射频直接采样SAR模数转换器。采用55 nm CMOS工艺电路设计、版图设计、仿真及硅流片验证,测试结果表明,该ADC实现了34 dB SNDR、36 dB SFDR和1.6 GHz的模拟输入信号带宽。该ADC的版图面积为670μm×390μm,功耗为9.6 mW。展开更多
A low-power 14-bit 150MS/s an- alog-to-digital converter (ADC) is present- ed for communication applications. Range scaling enables a maximal 2-Vp-p input with a single-stage opamp adopted. Opamp and capacitor shari...A low-power 14-bit 150MS/s an- alog-to-digital converter (ADC) is present- ed for communication applications. Range scaling enables a maximal 2-Vp-p input with a single-stage opamp adopted. Opamp and capacitor sharing between the first multi- plying digital-to-analog converter (MDAC) and the second one reduces the total opamp power further. The dedicated sample-and- hold amplifier (SHA) is removed to lower the power and the noise. The blind calibration of linearity errors is proposed to improve the per- formance. The prototype ADC is fabricated in a 130rim CMOS process with a 1.3-V supply voltage. The SNDR of the ADC is 71.3 dB with a 2.4 MHz input and remains 68.5 dB for a 120 MHz input. It consumes 85 roW, which includes 57 mW for the ADC core, 11 mW for the low jitter clock receiver and 17 mW for the high-speed reference buffer.展开更多
文摘针对软件无线电架构的导航接收机对模数转换器的高输入带宽、高速及低功耗的需求,通过集成低功耗宽带采样保持电路及新型非二进制权重的电容阵列数模转换器电路,采用逐次逼近型模数转换器架构,设计实现了一款射频直接采样SAR模数转换器。采用55 nm CMOS工艺电路设计、版图设计、仿真及硅流片验证,测试结果表明,该ADC实现了34 dB SNDR、36 dB SFDR和1.6 GHz的模拟输入信号带宽。该ADC的版图面积为670μm×390μm,功耗为9.6 mW。
基金supported by the Major National Science & Technology Program of China under Grant No.2012ZX03004004-002National High Technology Research and Development Program of China under Grant No. 2013AA014302
文摘A low-power 14-bit 150MS/s an- alog-to-digital converter (ADC) is present- ed for communication applications. Range scaling enables a maximal 2-Vp-p input with a single-stage opamp adopted. Opamp and capacitor sharing between the first multi- plying digital-to-analog converter (MDAC) and the second one reduces the total opamp power further. The dedicated sample-and- hold amplifier (SHA) is removed to lower the power and the noise. The blind calibration of linearity errors is proposed to improve the per- formance. The prototype ADC is fabricated in a 130rim CMOS process with a 1.3-V supply voltage. The SNDR of the ADC is 71.3 dB with a 2.4 MHz input and remains 68.5 dB for a 120 MHz input. It consumes 85 roW, which includes 57 mW for the ADC core, 11 mW for the low jitter clock receiver and 17 mW for the high-speed reference buffer.