The combination of Radio Frequency and Optical Fiber has resulted high capacity transmission at lower costs components and makes Radio over Fiber as a current trend of large broadband communication. In Fiber optics fi...The combination of Radio Frequency and Optical Fiber has resulted high capacity transmission at lower costs components and makes Radio over Fiber as a current trend of large broadband communication. In Fiber optics field, the use of Fiber Bragg Grating (FBG) was been proposed in recent research with different purpose of uses. However, the compensation of dispersion method of Fiber Bragg Grating (FBG) can boost significantly the system performance. This paper investigates the performance capacity improvement of adaptive Radio over Fiber system. The system design was performed using OptiSystem 7.0 software, which 10 Gb/s Non Return to Zero (NRZ) signal was launched into 50 Km Universal Mode Fiber and Fiber Bragg Grating was used as a compensator of dispersion before frequency up conversion. Therefore, the system performances were investigated by comparing the Bit Error Rate (BER) and Q-factors of Positive Intrinsic Negative (PIN) and Ultrafast Avalanche Photodiode (APD) as optical receivers. The Eye diagram analyzer showed acceptable improvement due to use of Fiber Bragg Grating as a compensator of dispersion.展开更多
通过仿真优化探测器的结构参数和性能,设计了基于0.25μm标准BCD(Biplor,CMOS and DMOS)工艺的大面积多叉指状PIN光电探测器.选择已优化的大面积光电探测器用于和跨阻放大器以及后端放大器单片集成,采用0.25μm BCD工艺实现了一个用于65...通过仿真优化探测器的结构参数和性能,设计了基于0.25μm标准BCD(Biplor,CMOS and DMOS)工艺的大面积多叉指状PIN光电探测器.选择已优化的大面积光电探测器用于和跨阻放大器以及后端放大器单片集成,采用0.25μm BCD工艺实现了一个用于650nm塑料光纤通信的单片集成光接收芯片.结果表明:多叉指状PIN光电探测器对650nm入射光的响应度提高至0.260A/W,其结电容降低至4.39pF.对于650nm的入射光,在速率250 Mb/s、误码率小于10-9的条件下,光接收芯片的灵敏度为-23.3dBm,并得到清晰的眼图.该光电探测器可用于宽带接入网中的高速塑料光纤通信系统的光接收芯片中.展开更多
抑制电磁干扰是解决光纤陀螺尤其是轻小型光纤陀螺低速灵敏度的关键问题,为了从电源完整性角度研究光纤陀螺检测电路干扰传导特性,需要对光电探测组件的电源抑制比进行测试。针对光纤陀螺微弱信号检测的特点,提出一种基于锁相放大器的...抑制电磁干扰是解决光纤陀螺尤其是轻小型光纤陀螺低速灵敏度的关键问题,为了从电源完整性角度研究光纤陀螺检测电路干扰传导特性,需要对光电探测组件的电源抑制比进行测试。针对光纤陀螺微弱信号检测的特点,提出一种基于锁相放大器的光电探测组件电源抑制比测试方案,通过测量普通运算放大器的电源抑制比并与手册给定的典型值进行对比,校验了测试系统的准确性。以中低精度光纤陀螺调制-解调频率范围为例,利用该测试系统测量了光电探测组件100 k Hz^3 MHz内电源抑制比频率特性曲线。实验结果表明,光电探测组件的电源抑制比呈明显的高通特性,在100 k Hz频率点处+PSRR约为29.5 d B,到达3 MHz处衰减为17.8 d B,为后续计算电源传导干扰抑制要求和优化电源退耦网络提供了依据。展开更多
文摘The combination of Radio Frequency and Optical Fiber has resulted high capacity transmission at lower costs components and makes Radio over Fiber as a current trend of large broadband communication. In Fiber optics field, the use of Fiber Bragg Grating (FBG) was been proposed in recent research with different purpose of uses. However, the compensation of dispersion method of Fiber Bragg Grating (FBG) can boost significantly the system performance. This paper investigates the performance capacity improvement of adaptive Radio over Fiber system. The system design was performed using OptiSystem 7.0 software, which 10 Gb/s Non Return to Zero (NRZ) signal was launched into 50 Km Universal Mode Fiber and Fiber Bragg Grating was used as a compensator of dispersion before frequency up conversion. Therefore, the system performances were investigated by comparing the Bit Error Rate (BER) and Q-factors of Positive Intrinsic Negative (PIN) and Ultrafast Avalanche Photodiode (APD) as optical receivers. The Eye diagram analyzer showed acceptable improvement due to use of Fiber Bragg Grating as a compensator of dispersion.
基金The National Natural Science Foundation of China(No:61205060)Key Project of Science and Technology of Fujian Province,China(No.2013H0047)
文摘通过仿真优化探测器的结构参数和性能,设计了基于0.25μm标准BCD(Biplor,CMOS and DMOS)工艺的大面积多叉指状PIN光电探测器.选择已优化的大面积光电探测器用于和跨阻放大器以及后端放大器单片集成,采用0.25μm BCD工艺实现了一个用于650nm塑料光纤通信的单片集成光接收芯片.结果表明:多叉指状PIN光电探测器对650nm入射光的响应度提高至0.260A/W,其结电容降低至4.39pF.对于650nm的入射光,在速率250 Mb/s、误码率小于10-9的条件下,光接收芯片的灵敏度为-23.3dBm,并得到清晰的眼图.该光电探测器可用于宽带接入网中的高速塑料光纤通信系统的光接收芯片中.
文摘抑制电磁干扰是解决光纤陀螺尤其是轻小型光纤陀螺低速灵敏度的关键问题,为了从电源完整性角度研究光纤陀螺检测电路干扰传导特性,需要对光电探测组件的电源抑制比进行测试。针对光纤陀螺微弱信号检测的特点,提出一种基于锁相放大器的光电探测组件电源抑制比测试方案,通过测量普通运算放大器的电源抑制比并与手册给定的典型值进行对比,校验了测试系统的准确性。以中低精度光纤陀螺调制-解调频率范围为例,利用该测试系统测量了光电探测组件100 k Hz^3 MHz内电源抑制比频率特性曲线。实验结果表明,光电探测组件的电源抑制比呈明显的高通特性,在100 k Hz频率点处+PSRR约为29.5 d B,到达3 MHz处衰减为17.8 d B,为后续计算电源传导干扰抑制要求和优化电源退耦网络提供了依据。