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
设计实现一种应用于CMOS图像传感器的10bit模数转换器(ADC),采用基于逐次逼近的新型流水线结构(Pipelined SAR ADC).提出了一种优化选取其中高精度倍增数模转换器(MDAC)和单位电容值的解析方法.通过采用第一级高精度、半增益MDAC和动态...设计实现一种应用于CMOS图像传感器的10bit模数转换器(ADC),采用基于逐次逼近的新型流水线结构(Pipelined SAR ADC).提出了一种优化选取其中高精度倍增数模转换器(MDAC)和单位电容值的解析方法.通过采用第一级高精度、半增益MDAC和动态比较器等技术提高了整体电路的线性度,并降低了系统功耗.通过对版图面积的优化设计,满足了CMOS图像传感器对芯片面积的要求.本设计基于180nm CMOS工艺,仿真结果显示电路实现了60.37dB的信噪失真比(SNDR)和76.37dB的无杂散动态范围(SFDR),有效精度(ENOB)达到了9.74bit.ADC的核心面积仅为140μmⅹ280μm,约为0.04mm2.在2.8V电压下,功耗为9.8mW.展开更多
设计了一种应用于12 bit 250 MS/s采样频率的流水线模数转换器(ADC)的运算放大器电路。该电路采用全差分两级结构以达到足够的增益和信号摆幅;采用一种改进的频率米勒补偿方法实现次极点的"外推",减小了第二级支路所需的电流...设计了一种应用于12 bit 250 MS/s采样频率的流水线模数转换器(ADC)的运算放大器电路。该电路采用全差分两级结构以达到足够的增益和信号摆幅;采用一种改进的频率米勒补偿方法实现次极点的"外推",减小了第二级支路所需的电流,并达到了更大的单位增益带宽。该电路运用于一种12 bit 250 MS/s流水线ADC的各级余量增益放大器(MDAC),并采用0.18μm 1P5M 1.8 V CMOS工艺实现。测试结果表明,该ADC电路在全速采样条件下对于20 MHz的输入信号得到的信噪比(SNR)为69.92 d B,无杂散动态范围(SFDR)为81.17 d B,整个ADC电路的功耗为320 m W。展开更多
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.
文摘设计实现一种应用于CMOS图像传感器的10bit模数转换器(ADC),采用基于逐次逼近的新型流水线结构(Pipelined SAR ADC).提出了一种优化选取其中高精度倍增数模转换器(MDAC)和单位电容值的解析方法.通过采用第一级高精度、半增益MDAC和动态比较器等技术提高了整体电路的线性度,并降低了系统功耗.通过对版图面积的优化设计,满足了CMOS图像传感器对芯片面积的要求.本设计基于180nm CMOS工艺,仿真结果显示电路实现了60.37dB的信噪失真比(SNDR)和76.37dB的无杂散动态范围(SFDR),有效精度(ENOB)达到了9.74bit.ADC的核心面积仅为140μmⅹ280μm,约为0.04mm2.在2.8V电压下,功耗为9.8mW.
文摘设计了一种应用于12 bit 250 MS/s采样频率的流水线模数转换器(ADC)的运算放大器电路。该电路采用全差分两级结构以达到足够的增益和信号摆幅;采用一种改进的频率米勒补偿方法实现次极点的"外推",减小了第二级支路所需的电流,并达到了更大的单位增益带宽。该电路运用于一种12 bit 250 MS/s流水线ADC的各级余量增益放大器(MDAC),并采用0.18μm 1P5M 1.8 V CMOS工艺实现。测试结果表明,该ADC电路在全速采样条件下对于20 MHz的输入信号得到的信噪比(SNR)为69.92 d B,无杂散动态范围(SFDR)为81.17 d B,整个ADC电路的功耗为320 m W。