由于在很多特殊应用领域要求980 nm泵浦源半导体激光器具有光谱稳定、低功耗等,本文通过对980nm单模半导体激光器的腔长、腔面反射率及光纤光栅反射率等优化设计,研制出低阈值、高功率980 nm光纤光栅外腔波长稳定半导体激光器。该低功...由于在很多特殊应用领域要求980 nm泵浦源半导体激光器具有光谱稳定、低功耗等,本文通过对980nm单模半导体激光器的腔长、腔面反射率及光纤光栅反射率等优化设计,研制出低阈值、高功率980 nm光纤光栅外腔波长稳定半导体激光器。该低功耗、波长稳定的单模半导体激光器,在100 m A工作电流下尾纤输出功率达到51 m W,3 d B带宽为0.16 nm,边模抑制比大于40 d B,器件在250 m A工作电流下,尾纤输出功率达到120 m W。展开更多
In the work of developing extrinsic fabry perot interferometric (EFPI), the key technology of polishing fiber optic endfaces and coating the multilayer of dielectric films on them is raised and resolved to settle the...In the work of developing extrinsic fabry perot interferometric (EFPI), the key technology of polishing fiber optic endfaces and coating the multilayer of dielectric films on them is raised and resolved to settle the disturbance and stability problem of EFPI, which simplifies the sensing system, improves the sensor performance and reduces the cost. In this paper, the relations between the output interferential light intensity and the F P cavity length are calculated based on the theory of mode field coupling. The EFPI fiber optic sensor is adhered to a distributed smart laminate beam to detect vibration frequency and axial strain value, the results coincident with the results tested by PZT.展开更多
文摘由于在很多特殊应用领域要求980 nm泵浦源半导体激光器具有光谱稳定、低功耗等,本文通过对980nm单模半导体激光器的腔长、腔面反射率及光纤光栅反射率等优化设计,研制出低阈值、高功率980 nm光纤光栅外腔波长稳定半导体激光器。该低功耗、波长稳定的单模半导体激光器,在100 m A工作电流下尾纤输出功率达到51 m W,3 d B带宽为0.16 nm,边模抑制比大于40 d B,器件在250 m A工作电流下,尾纤输出功率达到120 m W。
文摘In the work of developing extrinsic fabry perot interferometric (EFPI), the key technology of polishing fiber optic endfaces and coating the multilayer of dielectric films on them is raised and resolved to settle the disturbance and stability problem of EFPI, which simplifies the sensing system, improves the sensor performance and reduces the cost. In this paper, the relations between the output interferential light intensity and the F P cavity length are calculated based on the theory of mode field coupling. The EFPI fiber optic sensor is adhered to a distributed smart laminate beam to detect vibration frequency and axial strain value, the results coincident with the results tested by PZT.