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设计了一种高能量微片激光光源。其利用808 nm激光器作为泵浦源,采用掺钕钇铝石榴石/掺铬钇铝石榴石(Nd∶YAG/Cr∶YAG)键合晶体作为激光系统的增益介质和被动调制元件,实现1 064 nm激光输出。通过设计仿真,确定键合晶体的饱和吸收体初始透过率、谐振腔长度和输出镜反射率参数。将泵浦源、键合晶体等元件进行集成封装组成光学系统,通过实验测试,最终获得了3 ns脉宽、1 k Hz重频、208.7μJ能量的脉冲激光输出。
Abstract:A high-energy microchip laser source was designed.The system employs an 808 nm laser as the pump,utilizing Nd doped yttrium aluminum garnet/Cr doped yttrium aluminum garnet(Nd∶YAG/Cr∶YAG)bonded crystals as gain medium and passive modulation element of the laser system to achieve 1 064 nm laser output.Through design simulations,key parameters such as the initial transmittance of the saturable absorber in the bonded crystal,resonator length,and output mirror reflectivity were determined.The pump,bonded crystals,and other components were integrated into a compact optical system via holistic packaging.Experimental testing of this system ultimately achieved pulsed laser output with a pulse width of 3 ns,a repetition rate of 1 k Hz,and a high-energy level of 208.7 μJ.
[1]高恒,刘佳铭,杨闯,等.用于远程激光测距机的小体积高功率固体激光器[J].激光技术,2019,43(5):597.GAO H,LIU J M,YANG C,et al.Compact solid-state lasers with high peak power used for remote laser rangefinders[J].Laser Technology,2019,43(5):597(in Chinese).
[2]高勇,黄飞波,陈丽达.脉冲式激光测距机测距能力研究[J].电子产品可靠性与环境试验,2020,38(5):44-47.GAO Y,HUANG F B,CHEN L D.Study on the ranging ability of pulse laser rangefinder[J].Electronic Product Reliability and Environmental Testing,2020,38(5):44-47(in Chinese).
[3]韦符平.面向单兵作战的枪械辅助瞄准系统研究[D].重庆:重庆理工大学,2024.
[4]张向阳,郎野.用于远程激光测距机的板条激光器[J].激光与红外,2019,49(5):549-552.ZHANG X Y,LANG Y.A diode pumped slab laser used in long-range pulse laser rangefinder[J].Laser&Infrared,2019,49(5):549-552(in Chinese).
[5]李庭权.人眼安全激光测距关键技术研究[D].成都:电子科技大学,2018.
[6]孙晓晖.百/千赫兹亚纳秒微片激光器特性研究[D].济南:山东大学,2023.
[7]孙晓晖,宋海鹏,叶帅,等.小型化亚纳秒YAG/Nd∶YAG/Cr4+∶YAG微片激光器[J].光电技术应用,2022,37(6):38-44.SUN X H,SONG H P,YE S,et al.Miniatured sub-nanosecond YAG/Nd∶YAG/Cr4+∶YAG microchip laser[J].Electro-Optic Technology Application,2022,37(6):38-44(in Chinese).
[8]刘爽,秘国江,毛小洁,等.10 k Hz窄脉宽固体激光器[J].激光与红外,2019,49(11):1333-1337.LIU S,BI G J,MAO X J,et al.A solid state laser with narrow pulse time on the repetition of 10 k Hz[J].Laser&Infrared,2019,49(11):1333-1337(in Chinese).
[9]陈宏泰,张世祖,杨红伟,等.高斜率效率隧道结叠层激光器的研制[J].微纳电子技术,2008,45(5):260-263.CHEN H T,ZHANG S Z,YANG H W,et al.Development of a high slope efficiency tunnel junction stacks laser[J].Micronanoelectronic Technology,2008,45(5):260-263(in Chinese).
[10]陈海滨,吕文涛,王可宁.大功率半导体激光器脉冲式恒流驱动电路设计[J].电测与仪表,2019,56(2):129-133.CHEN H B,LüW T,WANG K N.Design of pulsed constant current driver for high power semiconductor laser[J].Electrical Measurement&Instrumentation,2019,56(2):129-133(in Chinese).
[11]颜颖颖,陈志文,邱剑,等.封装对大功率VCSEL窄脉冲发光特性的影响[J].光学学报,2020,40(8):0814001.YAN Y Y,CHEN Z W,QIU J,et al.Effect of package on luminescence characteristics of high-power VCSEL with narrow pulse[J].Acta Optica Sinica,2020,40(8):0814001(in Chinese).
[12]程义涛,王英顺,吴浩仑,等.内置温控多模耦合半导体激光器研究[J].微纳电子技术,2024,61(7):68-75.CHENG Y T,WANG Y S,WU H L,et al.Research on multi-mode coupled semiconductor lasers with built-in temperature control[J]. Micronanoelectronic Technology,2024,61(7):68-75(in Chinese).
[13]沈牧,房玉锁,申正坤.封装工艺对半导体激光器偏振特性的影响[J].微纳电子技术,2024,61(8):158-164.SHEN M,FANG Y S,SHEN Z K.Influence of packaging technology on polarization characteristics of semiconductor laser[J].Micronanoelectronic Technology,2024,61(8):158-164(in Chinese).
[14]闫立华,程义涛,张厚博.固体激光器晶体吸收光场的设计仿真[J].半导体光电,2023,44(2):181-186.YAN L H,CHENG Y T,ZHANG H B.Design and simulation of crystal absorption light field in solid-state laser[J].Semiconductor Optoelectronics,2023,44(2):181-186(in Chinese).
[15]张厚博,王晓燕,崔璐,等.16线集成窄脉冲半导体激光器模块的研制[J].半导体技术,2020,45(9):696-700.ZHANG H B,WANG X Y,CUI L,et al.Development of a 16-line integrated narrow pulse semiconductor laser module[J].Semiconductor Technology,2020,45(9):696-700(in Chinese).
[16]胡峥,邵莉芬,李川,等.窄脉冲阵列激光器峰值功率测试的研究[J].激光与红外,2019,49(6):670-674.HU Z,SHAO L F,LI C,et al.Study on the technique for measuring the peak power of narrow pulsed semiconductor laser arrays[J].Laser&Infrared,2019,49(6):670-674(in Chinese).
[17]廖林炜.紧凑型人眼安全1.5μm铒玻璃激光器[J].光学与光电技术,2024,22(5):108-112.LIAO L W.Compact eye safety 1.5μm erbium glass laser[J].Optics&Optoelectronic Technology,2024,22(5):108-112(in Chinese).
基本信息:
DOI:10.13250/j.cnki.wndz.25060203
中图分类号:TN248
引用信息:
[1]张厚博,崔璐,王媛媛等.一种高能量微片激光器的设计与研究[J].微纳电子技术,2025,62(06):41-47.DOI:10.13250/j.cnki.wndz.25060203.
基金信息: