By epitaxial layer structure design and key fabrication process optimization,a lattice-matched InP-based In0.53Ga0.47 As-In0.52Al0.48As HEMT with an ultra high maximum oscillation frequency (fmax) of 183GHz was fab-...By epitaxial layer structure design and key fabrication process optimization,a lattice-matched InP-based In0.53Ga0.47 As-In0.52Al0.48As HEMT with an ultra high maximum oscillation frequency (fmax) of 183GHz was fab- ricated. The fmax is the highest value for HEMTs in China. Also, the devices are reported, including the device structure, the fabrication process, and the DC and RF performances.展开更多
为了增加单位增益频率与压摆率,并能够工作在低电源电压下,同时降低偏置电流,提出了一种改进的基于0.18μm CMOS工艺的AB类放大器,其采用多级放大器结构,第一级为具有电流镜负载的NMOS差分对,第二反相级由共源放大器实现,第三极为AB类...为了增加单位增益频率与压摆率,并能够工作在低电源电压下,同时降低偏置电流,提出了一种改进的基于0.18μm CMOS工艺的AB类放大器,其采用多级放大器结构,第一级为具有电流镜负载的NMOS差分对,第二反相级由共源放大器实现,第三极为AB类放大器,其能够在±500 m V电源下工作.电路仿真结果显示该放大器相位裕度为87°;总补偿电容为5 p F,与传统放大器相比减少了50%;单位增益频率为21.17 MHz,比传统放大器增大约10倍;压摆率为7.5和8.57 V/μs,与传统电路相比,分别增加了2.8倍和2.6倍.此外,与其他文献相比,该放大器具有较大的单位增益带宽和压摆率以及较小的功耗.展开更多
In order to effectively control the working state of the gyroscope in drive mode, the drive characteristics of the micro electromechanical system (MEMS) gyroscope are analyzed in principle. A novel drive circuit for...In order to effectively control the working state of the gyroscope in drive mode, the drive characteristics of the micro electromechanical system (MEMS) gyroscope are analyzed in principle. A novel drive circuit for the MEMS gyroscope in digital closed-loop control is proposed, which utilizes a digital phase-locked loop (PLL) in frequency control and an automatic gain control (AGC) method in amplitude control. A digital processing circuit with a field programmable gate array (FPGA) is designed and the experiments are carried out. The results indicate that when the temperature changes, the drive frequency can automatically track the resonant frequency of gyroscope in drive mode and that of the oscillating amplitude holds at a set value. And at room temperature, the relative deviation of the drive frequency is 0.624 ×10^-6 and the oscillating amplitude is 8.0 ×10^-6, which are 0. 094% and 18. 39% of the analog control program, respectively. Therefore, the control solution of the digital PLL in frequency and the AGC in amplitude is feasible.展开更多
文摘By epitaxial layer structure design and key fabrication process optimization,a lattice-matched InP-based In0.53Ga0.47 As-In0.52Al0.48As HEMT with an ultra high maximum oscillation frequency (fmax) of 183GHz was fab- ricated. The fmax is the highest value for HEMTs in China. Also, the devices are reported, including the device structure, the fabrication process, and the DC and RF performances.
文摘为了增加单位增益频率与压摆率,并能够工作在低电源电压下,同时降低偏置电流,提出了一种改进的基于0.18μm CMOS工艺的AB类放大器,其采用多级放大器结构,第一级为具有电流镜负载的NMOS差分对,第二反相级由共源放大器实现,第三极为AB类放大器,其能够在±500 m V电源下工作.电路仿真结果显示该放大器相位裕度为87°;总补偿电容为5 p F,与传统放大器相比减少了50%;单位增益频率为21.17 MHz,比传统放大器增大约10倍;压摆率为7.5和8.57 V/μs,与传统电路相比,分别增加了2.8倍和2.6倍.此外,与其他文献相比,该放大器具有较大的单位增益带宽和压摆率以及较小的功耗.
基金The National Natural Science Foundation of China(No. 60974116 )the Research Fund of Aeronautics Science (No.20090869007)Specialized Research Fund for the Doctoral Program of Higher Education (No. 200902861063)
文摘In order to effectively control the working state of the gyroscope in drive mode, the drive characteristics of the micro electromechanical system (MEMS) gyroscope are analyzed in principle. A novel drive circuit for the MEMS gyroscope in digital closed-loop control is proposed, which utilizes a digital phase-locked loop (PLL) in frequency control and an automatic gain control (AGC) method in amplitude control. A digital processing circuit with a field programmable gate array (FPGA) is designed and the experiments are carried out. The results indicate that when the temperature changes, the drive frequency can automatically track the resonant frequency of gyroscope in drive mode and that of the oscillating amplitude holds at a set value. And at room temperature, the relative deviation of the drive frequency is 0.624 ×10^-6 and the oscillating amplitude is 8.0 ×10^-6, which are 0. 094% and 18. 39% of the analog control program, respectively. Therefore, the control solution of the digital PLL in frequency and the AGC in amplitude is feasible.