红外与激光工程
紅外與激光工程
홍외여격광공정
INFRARED AND LASER ENGINEERING
2009年
6期
1033-1038
,共6页
窄线宽激光器%半导体激光器%光纤激光器%稳频
窄線寬激光器%半導體激光器%光纖激光器%穩頻
착선관격광기%반도체격광기%광섬격광기%은빈
Narrow linewidth laser%Diode laser%Fiber laser%Frequency stabilized
介绍了3种不同类型的高稳定度窄线宽激光器的研究进展.基于Littman结构和饱和吸收光谱稳频技术,研制了稳频外腔半导体激光器系统,输出波长为780.2 nm,频率稳定度1 MHz,不失锁时间大于12 h.利用边带稳频技术将分布反馈(DFB)激光器的输出波长稳定在Cs原子的吸收谱线的边带处,引入数字信号处理器(DSP)全数字稳频控制技术,实现了自动找频和稳频,获得波长为852.3 nm的稳频激光输出,24 h内频率漂移为±2 MHz.利用国产磷酸盐玻璃光纤作为增益介质,实现了一台高功率单纵模光纤激光器,制作的厘米级激光器实现了最大输出功率100 mW,利用外部光反馈实现单偏振运转,测得输出线宽为2 kHz,偏振消光比优于35 dB.
介紹瞭3種不同類型的高穩定度窄線寬激光器的研究進展.基于Littman結構和飽和吸收光譜穩頻技術,研製瞭穩頻外腔半導體激光器繫統,輸齣波長為780.2 nm,頻率穩定度1 MHz,不失鎖時間大于12 h.利用邊帶穩頻技術將分佈反饋(DFB)激光器的輸齣波長穩定在Cs原子的吸收譜線的邊帶處,引入數字信號處理器(DSP)全數字穩頻控製技術,實現瞭自動找頻和穩頻,穫得波長為852.3 nm的穩頻激光輸齣,24 h內頻率漂移為±2 MHz.利用國產燐痠鹽玻璃光纖作為增益介質,實現瞭一檯高功率單縱模光纖激光器,製作的釐米級激光器實現瞭最大輸齣功率100 mW,利用外部光反饋實現單偏振運轉,測得輸齣線寬為2 kHz,偏振消光比優于35 dB.
개소료3충불동류형적고은정도착선관격광기적연구진전.기우Littman결구화포화흡수광보은빈기술,연제료은빈외강반도체격광기계통,수출파장위780.2 nm,빈솔은정도1 MHz,불실쇄시간대우12 h.이용변대은빈기술장분포반궤(DFB)격광기적수출파장은정재Cs원자적흡수보선적변대처,인입수자신호처리기(DSP)전수자은빈공제기술,실현료자동조빈화은빈,획득파장위852.3 nm적은빈격광수출,24 h내빈솔표이위±2 MHz.이용국산린산염파리광섬작위증익개질,실현료일태고공솔단종모광섬격광기,제작적전미급격광기실현료최대수출공솔100 mW,이용외부광반궤실현단편진운전,측득수출선관위2 kHz,편진소광비우우35 dB.
Three types of narrow linewidth lasers with high stability were introduced. A frequency stabilized external cavity diode laser was constructed based on Littman structure and saturated absorption spectrum freqency stabilized technique. The output wavelength was 780.2 nm. The frequency fluctuation was below 1 MHz in short term, and the phenomena of losing lock were not observed in 12 h. A frequency stabilized distributed feedback diode laser at 852.32 nm was constructed by locking its frequency to the side of the molecular absorption lines of Cesium. Fully automatic lock in the selected transition was realized with a digital signal processor (DSP). The maximum frequency variation was ±2 MHz in 24 h. By regulating external feedback, single frequency and single polarization fiber laser was realized using a domestic Er:Yb co-doped phosphate fiber as gain medium. Up to 100 mW output power was achieved. The polarization extinction ratio (PER) was superior to 35 dB and the linewidth was near 2 kHz.