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 共查询到19条相似文献,搜索用时 156 毫秒
1.
提出了一种采用共栅频率补偿的轨到轨输入/输出放大器,与传统的Miller补偿相比,该放大器不仅可以消除相平面右边的低频零点,减少频率补偿所需要的电容,还可获得较高的单位增益带宽.所提出的放大器通过CSMC 0.6μm CMOS数模混合工艺进行了仿真设计和流片测试:当供电电压为5V,偏置电流为20μA,负载电容为10pF时,其功耗为1.34mW,单位增益带宽为25MHz;当该放大器作为缓冲器,供电电压为3V,负载电容为150pF,输入2.66 Vpp10kHz正弦信号时,总谐波失真THD为-51.6dB.  相似文献   

2.
本文提出了一种低压工作的轨到轨输入/输出缓冲级放大器。利用电阻产生的输入共模电平移动,该放大器可以在低于传统轨到轨输入级所限制的最小电压下工作,并在整个输入共模电压范围内获得恒定的输入跨导;它的输出级由电流镜驱动,实现了轨到轨电压输出,具有较强的负载驱动能力。该放大器在CSMCO.6-μmCMOS数模混合工艺下进行了HSPICE仿真和流片测试,结果表明:当供电电压为5V,偏置电流为60uA,负载电容为10pF时,开环增益为87.7dB,功耗为579uw,单位增益带宽为3.3MHz;当该放大器作为缓冲级时,输入3VPP10kHz正弦信号,总谐波失真THD为53.2dB。  相似文献   

3.
针对传统全差分运算放大器电路存在输入输出摆幅小和共模抑制比低的问题,提出了一种高共模抑制比轨到轨全差分运算放大器电路。电路的输入级采用基于电流补偿技术的互补差分输入对,实现较大的输入信号摆幅;中间级采用折叠式共源共栅结构,获得较大的增益和输出摆幅;输出级采用共模反馈环路控制的A类输出结构,同时对共模反馈环路进行密勒补偿,提高电路的共模抑制比和环路稳定性。提出的全差分运算放大器电路基于中芯国际(SMIC) 0.13μm CMOS工艺设计,结果表明,该电路在3.3 V供电电压下,负载电容为5 pF时,可实现轨到轨的输入输出信号摆幅;当输入共模电平为1.65 V时,直流增益为108.9 dB,相位裕度为77.5°,单位增益带宽为12.71 MHz;共模反馈环路增益为97.7 dB,相位裕度为71.3°;共模抑制比为237.7 dB,电源抑制比为209.6 dB,等效输入参考噪声为37.9 nV/Hz1/2@100 kHz。  相似文献   

4.
曹正州  孙佩 《电子与封装》2019,19(11):22-25
设计了一种低电压恒定跨导的轨到轨运算放大器,作为误差放大器用在BUCK型DC-DC上实现对输出电压的调节。该运算放大器采用两级结构,输入级采用互补差分对的结构,实现了轨到轨电压的输入,并且利用2倍电流镜技术实现了跨导的恒定;输出级采用AB类放大器的结构,提高了输出电压摆幅和效率,实现了轨到轨电压的输出。该电路基于CSMC 0.25μm EN BCDMOS工艺进行设计,仿真结果表明:电源电压为2.8 V时,在输出端负载电容为160 pF、负载电阻为10 kΩ的情况下,增益为124 dB,单位增益带宽积为5.76 MHz,相位裕度为59.9℃,输入跨导为5.2 mΩ~(-1),共模抑制比为123 dB,输入共模信号范围为0~2.8V,输出电压摆幅为0~2.8 V。  相似文献   

5.
为适应低压低功耗设计的应用,设计了一种超低电源电压的轨至轨CMOS运算放大器。采用N沟道差分对和共模电平偏移的P沟道差分对来实现轨至轨信号输入.。当输入信号的共模电平处于中间时,P沟道差分对的输入共模电平会由共模电平偏移电路降低,以使得P沟道差分对工作。采用对称运算放大器结构,并结合电平偏移电路来构成互补输入差分对。采用0.13μm的CMOS工艺制程,在0.6V电源电压下,HSpice模拟结果表明,带10pF电容负载时,运算放大器能实现轨至轨输入,其性能为:功耗390μw,直流增益60dB,单位增益带宽22MHz,相位裕度80°。  相似文献   

6.
刘华珠  黄海云  宋瑞 《半导体技术》2011,36(6):463-465,482
设计了一个1.5 V低功耗轨至轨CMOS运算放大器。电路设计中为了使输入共模电压范围达到轨至轨性能,采用了NMOS管和PMOS管并联的互补差动对输入结构,并采用成比例的电流镜技术实现了输入级跨导的恒定。在中间增益级设计中,采用了适合在低压工作的低压宽摆幅共源共栅结构;在输出级设计时,为了提高效率,采用了简单的推挽共源级放大器作为输出级,使得输出电压摆幅基本上达到了轨至轨。当接100 pF电容负载和1 kΩ电阻负载时,运放的静态功耗只有290μW,直流开环增益约为76 dB,相位裕度约为69°,单位增益带宽约为1 MHz。  相似文献   

7.
基于TSMC 0.18 μm CMOS工艺,设计了一种新颖的恒跨导高增益轨到轨运算放大器。输入级仅由NMOS管差分对构成,采用电平移位及两路复用选择器控制技术,在轨到轨共模输入范围内实现了输入级恒跨导。中间级采用折叠式共源共栅放大器结构,运算放大器能获得高增益。输出级采用前馈型AB类推挽放大器,实现轨到轨全摆幅输出。利用密勒补偿技术进行频率补偿,运算放大器工作稳定。仿真结果表明,在1.8 V电源电压下,该运算放大器的直流开环增益为129.3 dB,单位增益带宽为7.22 MHz,相位裕度为60.1°,整个轨到轨共模输入范围内跨导的变化率为1.44%。  相似文献   

8.
赵毅  梁蓓 《电子设计工程》2013,21(8):122-125
基于CSMC的0.5μmCMOS工艺,设计了一个高增益、低功耗、恒跨导轨到轨CMOS运算放大器,采用最大电流选择电路作为输入级,AB类结构作为输出级。通过cadence仿真,其输入输出均能达到轨到轨,整个电路工作在3 V电源电压下,静态功耗仅为0.206 mW,驱动10pF的容性负载时,增益高达100.4 dB,单位增益带宽约为4.2MHz,相位裕度为63°。  相似文献   

9.
龚正辉  常昌远 《电子与封装》2007,7(10):37-39,43
文章设计了一种低压、恒定增益、Rail-to-rail的CMOS运算放大器。该放大器采用直接交迭工作区的互补并联输入对作为输入级,在2V单电源下,负载电容为25pF时,静态功耗为0.9mW,直流开环增益、单位增益带宽、相位裕度分别为74dB、2.7MHz、60°。  相似文献   

10.
一种轨对轨CMOS运算放大器的设计   总被引:1,自引:0,他引:1  
程梦璋 《微电子学与计算机》2007,24(11):124-126,130
基于0.6μmCMOS工艺,设计了一种轨对轨运算放大器。该运算放大器采用了3.3V单电源供电,其输入共模范围和输出信号摆幅接近于地和电源电压,即所谓输入和输出电压范围轨对轨。该运放的小信号增益为77dB,单位增益带宽为4.32MHz,相位裕度为79°。由于电路简单,工作稳定,输入输出线性动态范围宽,非常适合于SOC芯片内集成。  相似文献   

11.
A low-voltage fully differential CMOS operational amplifier withconstant-gmand rail-to-rail input and output stages ispresented. It is the fully differential version of a previously realizedsingle-ended operational amplifier where a novel circuit to ensure constanttransconductance has been implemented [1]. The input stage is a rail-to-railstructure formed by two symmetrical OTAs in parallel (the input transistorsare operating in weak inversion). The class-AB output stages have also afull voltage swing. A rail-to-rail input common mode feedback structureallows the output voltage control. Measurements in a 0.7 µ standardCMOS process with threshold voltages of about 0.7 V have been done. Theminimum experimental supply voltage is about 1.1 V. The circuit provides a60 dB low frequency voltage gain and about 1.5 MHz unity gain frequency fora total power consumption of about 0.72 mW at a 1.5 V supply voltage.  相似文献   

12.
针对微电容超声换能器(CMUT)微弱电流信号检测的要求,设计了一种用于CMUT的前端专用集成电路——运算放大器(OPA)电路。运算放大器电路采用两级放大结构,第一级采用全差分折叠-共源共栅结构,输出级采用AB类控制的轨到轨输出级,在运算放大器电路反相输入端和输出端通过一个反馈电阻实现CMUT电流信号到电压信号的转换。采用GlobalFoundries 0.18μm的标准CMOS工艺进行了仿真设计和流片,芯片尺寸为226μm×75μm。仿真结果表明,运算放大器的开环增益为62 dB,单位增益带宽为30 MHz,在3 MHz处的输入参考噪声电压为2.9μV/Hz1/2,电路采用±3.3 V供电,静态功耗为11 mW。测试结果表明仿真与实测结果相符,该运算放大器电路能够实现CMUT微弱电流信号检测功能。  相似文献   

13.
设计实现了一个具有温度补偿的宽带CMOS可变增益放大器,该可变增益放大器的核心电路由三级基于改进型Cherry-Hooper结构的可变增益单元级联而成,并通过一种温度系数增强的且可编程的偏置电路和增益控制电路对可变增益放大器的增益进行温度补偿。采用中芯国际0.13μm CMOS工艺流片,测试结果表明可变增益放大器的可变增益范围为-13~27dB,经过温度补偿后,在相同增益控制电压下其增益在0~75°C温度范围内的变化范围不超过3dB。可变增益放大器的3dB带宽为0.8~3GHz,输入1dB压缩点为-50~-21dBm,在1.2V电压下,功耗为21.6mW。  相似文献   

14.
Low Voltage CMOS Power Amplifier with Rail-to-Rail Input and Output   总被引:2,自引:0,他引:2  
This paper describes a CMOS power amplifier with rail-to-rail input and output, also suitable for low voltage applications. The amplifier uses Simple Miller Compensation with high bandwidth stage to robustly and power efficiently compensate the amplifier. Circuit also includes a common mode adapter block, based on resistive level shift network, to implement rail-to-rail input and optional adaptive biasing block, which can be used to extend bandwidth of the amplifier for large high frequency inputs in continuous-time applications. Measurement results show that the amplifier is capable of driving heavy resistive and capacitive loads having maximum output current exceeding 100 mA, when driving 1 nF ‖ 10 Ω load from 3.0 V supply. Without adaptive biasing the linear amplifier achieves 5.7 MHz unity gain frequency and 61 phase margin when driving 1 nF ‖ 1 kΩ load, while drawing 2.4 mA from 1.5 V supply.  相似文献   

15.
薛超耀  韩志超  欧健  黄冲 《电子科技》2013,26(9):121-123,130
设计了一种新颖的恒跨导轨对轨CMOS运算放大器结构。输入级采用轨对轨的结构,在输入级采用4个虚拟差分对管来对输入差分对的电流进行限制,使运放的输入级跨导在工作范围内保持恒定。输出级采用前馈式AB类输出结构,以使输出达到全摆幅。仿真结果显示,在5 V电源电压和带有10 pF电容与10 kΩ电阻并联的负载下,该运放在共模输入范围内实现了恒跨导,在整个共模输入范围内跨导变化率仅为3%,输出摆幅也达到了轨对轨全摆幅,运放的开环增益为108.5 dB,增益带宽积为26.7 MHz,相位裕度为76.3°。  相似文献   

16.
This paper reports a high-temperature integrated linear voltage regulator implemented in a 0.8-??m BCD (bipolar, CMOS and DMOS)-on-silicon-on-insulator process. This step-down voltage regulator converts an unregulated high input DC voltage to a regulated nominal CMOS voltage (i.e. 5?V) for the low-side buffer (pre-driver) and other digital and analog building blocks of a high-temperature integrated gate driver circuit. An error amplifier inside the regulator has been designed using inversion coefficient methodology, and a temperature stable current reference has been used to bias the error amplifier. The linear regulator provides an output voltage of 5.3?V at room temperature and can supply a maximum load current of 200?mA. The linear voltage regulator integrated circuit has been tested at ambient temperatures from 25 to 200?°C with the input voltage varying from 10 to 30?V. A compensation method (pole swap) that extends the range of the system stability has been implemented and analyzed in detail. The simulated unity gain bandwidth can reach approximately 4?MHz when the load current is 200?mA and the measured transient response time is less than 150?nS when the load current is 50?mA and the ambient temperature is 200?°C.  相似文献   

17.
This paper presents an operational amplifier for a 1-V supply voltage. It comprises three gain stages with ac-boosting and buffered Miller feedback compensation circuits. The implementation uses a standard 0.35-mum CMOS process ( V and V). To accommodate maximum voltage headroom between power rails, a pseudo-differential structure is adopted in this amplifier. The large common-mode gain associated with the structure is suppressed by two common-mode stabilization loops. The amplifier driving 100-pF loads achieves a 4.3-MHz gain-bandwidth product. The settling time of a 1- input step signal is 1.1s. The amplifier consumes 249 muW and occupies 0.06-mm silicon area.  相似文献   

18.
This work presents a micro-power low-offset CMOS instrumentation amplifier integrated circuit with a large operating range for biomedical system applications. The equivalent input offset voltage is improved using a new circuit technique of offset cancellation that involves a two-phase clocking scheme with a frequency of 20 kHz. Channel charge injection is cancelled by the symmetrical circuit topology. With the wide-swing cascode bias circuit design, this amplifier realizes a very high power-supply rejection ratio (PSRR), and can be operated at single supply voltage in the range between 2.5-7.5 V. It was fabricated using 0.5-/spl mu/m double-poly double-metal n-well CMOS technology, and occupies a die area of 0.2 mm/sup 2/. This amplifier achieves a 160-/spl mu/V typical input offset voltage, 0.05% gain linearity, greater than 102-dB PSRR, an input-referred rms noise voltage of 45 /spl mu/V, and a current consumption of 61 /spl mu/A at a low supply voltage of 2.5 V. Experimental results indicate that the proposed amplifier can process the input electrocardiogram signal of a patient monitoring system and other portable biomedical devices.  相似文献   

19.
In this paper, we present an AC-boosting compensation topology with double pole-zero cancellation (ACBC-DPZ) for a multistage amplifier driving a very large capacitive load. The proposed technique modifies the original AC-boosting compensation (ACBC) topology to increase the power-bandwidth efficiency and reduce the size for the output power transistor and compensation capacitor. Simulation results show that the ACBC-DPZ amplifier using a CSM 0.18 μm CMOS process can achieve a unity gain bandwidth of 14 MHz and an average slew rate of 3.88 V/μs at 1500 pF load. The amplifier dissipates 2.55 mW at a 1.8 V supply.  相似文献   

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