Please wait a minute...
Chin. Phys. B, 2019, Vol. 28(9): 094205    DOI: 10.1088/1674-1056/ab33f1
ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS Prev   Next  

Passively Q-switched diode-pumped Tm, Ho: LuVO4 laser with a black phosphorus saturable absorber

Linjun Li(李林军)1,2, Tianxin Li(李天鑫)1, Long Zhou(周龙)1, Jianying Fan(范剑英)1, Yuqiang Yang(杨玉强)1, Wenqiang Xie(谢文强)2, Shasha Li(李莎莎)2
1 The Higher Educational Key Laboratory for Measuring & Control Technology and Instrumentations of Heilongjiang Province, Harbin University of Science and Technology, Harbin 150080, China;
2 Heilongjiang Province Key Laboratory of Optoelectronics and Laser Technology & Heilongjiang Province Engineering Technology Research Center of Solid-state Laser Technology and Application, Heilongjiang Institute of Technology, Harbin 150050, China
Abstract  

We presented a passively Q-switched (PQS) diode-pumped c-cut Tm, Ho:LuVO4 laser with a black phosphorus saturable absorber for the first time. Under PQS mode, an average output power of 0.86 W and a peak power of 2.32 W were acquired from the Tm, Ho:LuVO4 laser with the pump power of 14.55 W, corresponding to a pulse width of 2.89 μs, a pulse repetition rate of 71.84 kHz, and a pulse energy of about 6.70 μJ.

Keywords:  passively Q-switched (PQS) technology      Tm      Ho:LuVO4 crystal      pulse width  
Received:  27 May 2019      Revised:  11 June 2019      Accepted manuscript online: 
PACS:  42.60.Gd (Q-switching)  
  42.55.Rz (Doped-insulator lasers and other solid state lasers)  
  42.70.Hj (Laser materials)  
Fund: 

Project supported by the National Natural Science Foundation of China (Grant Nos. 61775053, 51572053, 51777046, and 61705140).

Corresponding Authors:  Jianying Fan, Yuqiang Yang, Shasha Li     E-mail:  fanjianying@hrbust.edu.cn;yuqiangy110@sina.com;yuqiangy110@sina.com

Cite this article: 

Linjun Li(李林军), Tianxin Li(李天鑫), Long Zhou(周龙), Jianying Fan(范剑英), Yuqiang Yang(杨玉强), Wenqiang Xie(谢文强), Shasha Li(李莎莎) Passively Q-switched diode-pumped Tm, Ho: LuVO4 laser with a black phosphorus saturable absorber 2019 Chin. Phys. B 28 094205

[1] Scholle K, Heumann E and Huber G 2004 Laser Phys. Lett. 1 285
[2] Nishioka N S and Domankevitz Y 1990 IEEE J. Quantum Electron. 26 2271
[3] Lagatsky A A, Fusari F, Kurilchik S V, et al. 2009 Appl. Phys. B 97 321
[4] Spiers G D, Menzies R T, Jacob J, et al. 2011 Appl. Opt. 50 2098
[5] Queiåer M, Burton M and Fiorani L 2015 Opt. Express 23 6634
[6] Yao B Q, Shen Y J, Duan X M, et al. 2014 Opt. Lett. 39 6589
[7] Lin W M, Duan X M, Cui Z, et al. 2016 Appl. Sci. 6 128
[8] Li L J, Yang X N, Zhou L, et al. 2018 Photon. Res. 6 614
[9] Hisamuddin N, Zulkifli M Z, Latiff A A, et al. 2016 Chin. Phys. Lett. 33 74208
[10] Wang X, Wang Y G, Li J P, et al. 2017 Chin. Phys. B 26 044203
[11] Liu X Y, Yang K J, Zhao S Z, et al. 2018 IEEE J. Sel. Top. Quantum Electron. 24 1600306
[12] Liu X Y, Yang K J, Zhao S Z, et al. 2017 Photon. Res. 5 461
[13] Koenig S P, Doganov R A, Schmidt H, et al. 2014 Appl. Phys. Lett. 104 103106
[14] Morita A 1986 Appl. Phys. A:Mater. Sci. Process 39 227
[15] Zhang H, He J and Wang Z 2016 Opt. Express 6 2328
[16] Nie H, Zhang P, Zhang B, et al. 2018 IEEE. J. Sel. Top. Quantum Electron. 24 1600205
[17] Guo Z N, Zhang H, Lu S B, et al. 2015 Adv. Funct. Mater. 25 6996
[18] Tran V, Soklaski R, Liang Y F, et al. 2014 Phys. Rev. B 89 235319
[1] Selective formation of ultrathin PbSe on Ag(111)
Jing Wang(王静), Meysam Bagheri Tagani, Li Zhang(张力), Yu Xia(夏雨), Qilong Wu(吴奇龙), Bo Li(黎博), Qiwei Tian(田麒玮), Yuan Tian(田园), Long-Jing Yin(殷隆晶), Lijie Zhang(张利杰), and Zhihui Qin(秦志辉). Chin. Phys. B, 2022, 31(9): 096801.
[2] Measurement of CO, HCN, and NO productions in atmospheric reaction induced by femtosecond laser filament
Xiao-Dong Huang(黄晓东), Meng Zhang(张梦), Lun-Hua Deng(邓伦华), Shan-Biao Pang(庞山彪), Ke Liu(刘珂), and Huai-Liang Xu(徐淮良). Chin. Phys. B, 2022, 31(9): 097801.
[3] Numerical simulation of the thermal non-equilibrium flow-field characteristics of a hypersonic Apollo-like vehicle
Minghao Yu(喻明浩), Zeyang Qiu(邱泽洋), Bo Lv(吕博), and Zhe Wang(王哲). Chin. Phys. B, 2022, 31(9): 094702.
[4] Monolayer MoS2 of high mobility grown on SiO2 substrate by two-step chemical vapor deposition
Jia-Jun Ma(马佳俊), Kang Wu(吴康), Zhen-Yu Wang(王振宇), Rui-Song Ma(马瑞松), Li-Hong Bao(鲍丽宏), Qing Dai(戴庆), Jin-Dong Ren(任金东), and Hong-Jun Gao(高鸿钧). Chin. Phys. B, 2022, 31(8): 088105.
[5] Theoretical and experimental study of phase optimization of tapping mode atomic force microscope
Zheng Wei(魏征), An-Jie Peng(彭安杰), Feng-Jiao Bin(宾凤姣), Ya-Xin Chen(陈亚鑫), and Rui Guan(关睿). Chin. Phys. B, 2022, 31(7): 076801.
[6] Experimental observation of pseudogap in a modulation-doped Mott insulator: Sn/Si(111)-(√30×√30)R30°
Yan-Ling Xiong(熊艳翎), Jia-Qi Guan(关佳其), Rui-Feng Wang(汪瑞峰), Can-Li Song(宋灿立), Xu-Cun Ma(马旭村), and Qi-Kun Xue(薛其坤). Chin. Phys. B, 2022, 31(6): 067401.
[7] Improved device performance of recessed-gate AlGaN/GaN HEMTs by using in-situ N2O radical treatment
Xinchuang Zhang(张新创), Mei Wu(武玫), Bin Hou(侯斌), Xuerui Niu(牛雪锐), Hao Lu(芦浩), Fuchun Jia(贾富春), Meng Zhang(张濛), Jiale Du(杜佳乐), Ling Yang(杨凌), Xiaohua Ma(马晓华), and Yue Hao(郝跃). Chin. Phys. B, 2022, 31(5): 057301.
[8] A low-cost invasive microwave ablation antenna with a directional heating pattern
Zhang Wen(文章), Xian-Qi Lin(林先其), Chen-Nan Li(李晨楠), and Yu-Lu Fan(樊钰璐). Chin. Phys. B, 2022, 31(3): 038401.
[9] Graphene-based heterojunction for enhanced photodetectors
Haiting Yao(姚海婷), Xin Guo(郭鑫), Aida Bao(鲍爱达), Haiyang Mao(毛海央),Youchun Ma(马游春), and Xuechao Li(李学超). Chin. Phys. B, 2022, 31(3): 038501.
[10] The 266-nm ultraviolet-beam generation of all-fiberized super-large-mode-area narrow-linewidth nanosecond amplifier with tunable pulse width and repetition rate
Shun Li(李舜), Ping-Xue Li(李平雪), Min Yang(杨敏), Ke-Xin Yu(于可新), Yun-Chen Zhu(朱云晨), Xue-Yan Dong(董雪岩), and Chuan-Fei Yao(姚传飞). Chin. Phys. B, 2022, 31(3): 034207.
[11] Estimation of co-channel interference between cities caused by ducting and turbulence
Kai Yang(杨凯), Zhensen Wu(吴振森), Xing Guo(郭兴), Jiaji Wu(吴家骥), Yunhua Cao(曹运华), Tan Qu(屈檀), and Jiyu Xue(薛积禹). Chin. Phys. B, 2022, 31(2): 024102.
[12] Spatial characteristics of nanosecond pulsed micro-discharges in atmospheric pressure He/H2O mixture by optical emission spectroscopy
Chuanjie Chen(陈传杰), Zhongqing Fang(方忠庆), Xiaofang Yang(杨晓芳), Yongsheng Fan(樊永胜), Feng Zhou(周锋), and Rugang Wang(王如刚). Chin. Phys. B, 2022, 31(2): 025204.
[13] Magnetic properties and magnetocaloric effects of Tm1-xErxCuAl (x = 0.25, 0.5, and 0.75) compounds
Hao Sun(孙浩), Junfeng Wang(王俊峰), Lu Tian(田路), Jianjian Gong(巩建建), Zhaojun Mo(莫兆军), Jun Shen(沈俊), and Baogen Shen(沈保根). Chin. Phys. B, 2022, 31(12): 127501.
[14] Single-frequency distributed Bragg reflector Tm:YAG ceramic derived all-glass fiber laser at 1.95 μm
Guo-Quan Qian(钱国权), Min-Bo Wu(吴敏波), Guo-Wu Tang(唐国武), Min Sun(孙敏),Dong-Dan Chen(陈东丹), Zhi-Bin Zhang(张志斌), Hui Luo(罗辉), and Qi Qian(钱奇). Chin. Phys. B, 2022, 31(12): 124205.
[15] Luminescent characteristics of Tm3+/Tb3+/Eu3+ tri-doped Na5Y9F32 single crystals for white emission with high thermal stability
Lizhi Fang(方立志), Xiong Zhou(周雄), Zhiwei Zhao(赵志伟), Biao Zheng(郑标), Haiping Xia(夏海平), Jun Wang(王军), Hongwei Song(宋宏伟), and Baojiu Chen(陈宝玖). Chin. Phys. B, 2022, 31(12): 127802.
No Suggested Reading articles found!