Search

Article

x

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

Research of continuous wave pumping waveguide to generate terahertz laser

Zhang Hui-Yun Liu Meng Zhang Yu-Ping Shen Duan-Long Wu Zhi-Xin Yin Yi-Heng Li De-Hua

Citation:

Research of continuous wave pumping waveguide to generate terahertz laser

Zhang Hui-Yun, Liu Meng, Zhang Yu-Ping, Shen Duan-Long, Wu Zhi-Xin, Yin Yi-Heng, Li De-Hua
PDF
Get Citation

(PLEASE TRANSLATE TO ENGLISH

BY GOOGLE TRANSLATE IF NEEDED.)

  • This paper, based on the rate equation theory, astablishes a model for optical pump waveguides to generate terahertz laser. By analyzing and solving the rate equation, the expressions of pump absorption coefficient, terahertz small-signal gain coefficient and terahertz output power are obtained. The calculation shows that the THz power increases first and reduces gradually with the increase of pressure of the working material, and it will increase with the increase of pumping power and the decrease of the output mirror reflectivity. The best working pressure increases with the rise of the pumping power. The number of particles in the excited state and the THz flux increase in the waveguide radial direction from the center, while the small-signal gain coefficient shows the opposite trend. Pump saturation, weak pump absorption and excited state terahertz absorption are the primary cause limiting the increase of the laser conversion efficiency. Results based on this model are in good agreement with the data from the relevant literature.
    • Funds: Project supported by the National Natural Science Foundation of China (Grant No. 61001018), the Natural Science Foundation of Shandong Province, China (Grant Nos. ZR2011FM009, ZR2012FM011), the Research Fund of Shandong University of Science and Technology (SDUST), China (Grant No. 2010KYJQ103), Project of Shandong Province Higher Educational Science and Technology Program (Grant No. J11LG20), the Qingdao Science and Technology Project China (Grant No. 11-2-4-4-(8)-jch), the Shandong University of Science and Technology Foundation, China (Grant No. YCB120173)
    [1]

    Ferguson B, Zhang X C 2002 Nature 1 26

    [2]

    Zhang X B, Shi W 2006 Acta Phys. Sin. 55 5237 (in Chinese) [张显斌, 施卫 2006 物理学报 55 5237]

    [3]

    He Z H, Yao J Q, Shi H F, Huang X, Luo X Z, Jiang S J, Wang P 2007 Acta Phys. Sin. 56 5802 (in Chinese) [何志红, 姚建铨, 时华锋, 黄晓, 罗锡璋, 江绍基, 王鹏 2007 物理学报 56 5802]

    [4]

    Cheo P K 1987 Handbook of Molecular Laser (New York: Marcel Dekker Inc.) pp497–636

    [5]

    Jiu Z X, Zuo D L, Miao L, Qi C C, Cheng Z H 2010 Chin. Phys. Lett. 27 024211

    [6]

    Tobin M S 1985 Proc. IEEE 73 61

    [7]

    Zhong K, Yao J Q, Xu D G, Zhang H Y, Wang P 2011 Acta Phys. Sin. 60 034210 (in Chinese) [钟凯, 姚建铨, 徐德刚, 张会云, 王鹏 2011 物理学报 60 034210]

    [8]

    Zhang T Y, Cao J C 2004 Chin. Phys. B 13 1742

    [9]

    Zhang C H, Wang Y Y, Gai B, Chen J, Tang L, Xu W W, Wu P H 2007 Cryogenics and Superconductivity 35 245 (in Chinese) [张彩虹, 王媛媛, 盖博, 陈健, 康琳, 许伟伟, 吴培亨 2007 低温与超导 35 245]

    [10]

    He Z H 2007 Ph. D. Dissertation (Tianjin; Tianjin University) (in Chinese) [何志红 2007 博士学位论文 (天津: 天津大学)]

    [11]

    Shen J E, Rong J, Liu W X 2006 Infrared and Laser Engineering 35 342 (in Chinese) [申金娥, 荣健, 刘文鑫 2006 激光与红外 35 342]

    [12]

    Yao J Q, Chi N, Yang P F, Cui H X, Wang J L, Li J S, Xu D G, Ding X 2009 Chinese Journal of Laser 36 2213 (in Chinese) [姚建铨, 迟楠, 杨鹏飞, 崔海霞, 汪静丽, 李九生, 徐德刚, 丁鑫 2009 中国激光 36 2213]

    [13]

    Gregory S, Herman 1994 SPIE 2379 291

    [14]

    Xie H Y, Wang L, Zhao L J, Zhu H L, Wang W 2007 Chin. Phys. B 16 1459

    [15]

    Henningsen J O, Jensen H G 1975 IEEE J. Quantum Elect. 11 248

    [16]

    Mansfield D K, Horlbeck E, Bennett C L, Chouinard R 1985 International Journal of Infrared and Millimeter Waves 6 867

    [17]

    DeTemple T, Danielewicz E 1976 IEEE J. Quantum Elect. 12 40

    [18]

    Christenen C P, Freed C, Haus H A 1969 IEEE J. Quantum Elect. 5 276

    [19]

    Zhou B K, Gao Y Z, Chen T R, Chen J H 2010 Principles of Laser (Vol.6) (Beijing: National Defence Industry Press) pp123–158 (in Chinese) [周炳琨, 高以智, 陈倜嵘, 陈家骅 2010 激光原理 (第6版) (北京: 国防工业出版社) 第123–158 页]

    [20]

    Freund S M, Duxbury G, Romheld M, Tiedje J T, Oka T 1974 J. Mol. Spectrosc. 52 38

    [21]

    Weitz E, Flynn G W 1973 J. Chem. Phys. 58 2781

    [22]

    Frenkel L, Marantz H, Sullivan T 1971 Phys. Rev. A 3 1640

    [23]

    Abrams R L 1972 IEEE J. Quantum Elect. 8 838

    [24]

    Marcatili E A J, Schmeltzer R A 1964 Bell Syst. Tech. J. 62 1783

  • [1]

    Ferguson B, Zhang X C 2002 Nature 1 26

    [2]

    Zhang X B, Shi W 2006 Acta Phys. Sin. 55 5237 (in Chinese) [张显斌, 施卫 2006 物理学报 55 5237]

    [3]

    He Z H, Yao J Q, Shi H F, Huang X, Luo X Z, Jiang S J, Wang P 2007 Acta Phys. Sin. 56 5802 (in Chinese) [何志红, 姚建铨, 时华锋, 黄晓, 罗锡璋, 江绍基, 王鹏 2007 物理学报 56 5802]

    [4]

    Cheo P K 1987 Handbook of Molecular Laser (New York: Marcel Dekker Inc.) pp497–636

    [5]

    Jiu Z X, Zuo D L, Miao L, Qi C C, Cheng Z H 2010 Chin. Phys. Lett. 27 024211

    [6]

    Tobin M S 1985 Proc. IEEE 73 61

    [7]

    Zhong K, Yao J Q, Xu D G, Zhang H Y, Wang P 2011 Acta Phys. Sin. 60 034210 (in Chinese) [钟凯, 姚建铨, 徐德刚, 张会云, 王鹏 2011 物理学报 60 034210]

    [8]

    Zhang T Y, Cao J C 2004 Chin. Phys. B 13 1742

    [9]

    Zhang C H, Wang Y Y, Gai B, Chen J, Tang L, Xu W W, Wu P H 2007 Cryogenics and Superconductivity 35 245 (in Chinese) [张彩虹, 王媛媛, 盖博, 陈健, 康琳, 许伟伟, 吴培亨 2007 低温与超导 35 245]

    [10]

    He Z H 2007 Ph. D. Dissertation (Tianjin; Tianjin University) (in Chinese) [何志红 2007 博士学位论文 (天津: 天津大学)]

    [11]

    Shen J E, Rong J, Liu W X 2006 Infrared and Laser Engineering 35 342 (in Chinese) [申金娥, 荣健, 刘文鑫 2006 激光与红外 35 342]

    [12]

    Yao J Q, Chi N, Yang P F, Cui H X, Wang J L, Li J S, Xu D G, Ding X 2009 Chinese Journal of Laser 36 2213 (in Chinese) [姚建铨, 迟楠, 杨鹏飞, 崔海霞, 汪静丽, 李九生, 徐德刚, 丁鑫 2009 中国激光 36 2213]

    [13]

    Gregory S, Herman 1994 SPIE 2379 291

    [14]

    Xie H Y, Wang L, Zhao L J, Zhu H L, Wang W 2007 Chin. Phys. B 16 1459

    [15]

    Henningsen J O, Jensen H G 1975 IEEE J. Quantum Elect. 11 248

    [16]

    Mansfield D K, Horlbeck E, Bennett C L, Chouinard R 1985 International Journal of Infrared and Millimeter Waves 6 867

    [17]

    DeTemple T, Danielewicz E 1976 IEEE J. Quantum Elect. 12 40

    [18]

    Christenen C P, Freed C, Haus H A 1969 IEEE J. Quantum Elect. 5 276

    [19]

    Zhou B K, Gao Y Z, Chen T R, Chen J H 2010 Principles of Laser (Vol.6) (Beijing: National Defence Industry Press) pp123–158 (in Chinese) [周炳琨, 高以智, 陈倜嵘, 陈家骅 2010 激光原理 (第6版) (北京: 国防工业出版社) 第123–158 页]

    [20]

    Freund S M, Duxbury G, Romheld M, Tiedje J T, Oka T 1974 J. Mol. Spectrosc. 52 38

    [21]

    Weitz E, Flynn G W 1973 J. Chem. Phys. 58 2781

    [22]

    Frenkel L, Marantz H, Sullivan T 1971 Phys. Rev. A 3 1640

    [23]

    Abrams R L 1972 IEEE J. Quantum Elect. 8 838

    [24]

    Marcatili E A J, Schmeltzer R A 1964 Bell Syst. Tech. J. 62 1783

  • [1] Xu Zhen, Luo Man, Li Ji-Ning, Liu Long-Hai, Xu De-Gang. Experimental study and simulation analysis of transmission characteristics of terahertz metal wire waveguides. Acta Physica Sinica, 2024, 73(11): 114203. doi: 10.7498/aps.73.20240279
    [2] Ge Hong-Yi, Li Li, Jiang Yu-Ying, Li Guang-Ming, Wang Fei, Lü Ming, Zhang Yuan, Li Zhi. Double-opening metal ring based terahertz metamaterial absorber sensor. Acta Physica Sinica, 2022, 71(10): 108701. doi: 10.7498/aps.71.20212303
    [3] Pang Hui-Zhong, Wang Xin, Wang Jun-Lin, Wang Zong-Li, Liu Su-Yalatu, Tian Hu-Qiang. Sensing characteristics of dual band terahertz metamaterial absorber sensor. Acta Physica Sinica, 2021, 70(16): 168101. doi: 10.7498/aps.70.20210062
    [4] Yan Hao-Lan, Cheng Ya-Qing, Wang Kai-Li, Wang Ya-Xin, Chen Yang-Wei, Yuan Qiu-Lin, Ma Heng. Terahertz wave absorption for alkylcyclohexyl-isothiocyanatobenzene liquid crystal materials. Acta Physica Sinica, 2019, 68(11): 116102. doi: 10.7498/aps.68.20190209
    [5] Zhang Yun-Chuan, Fan Li, Wei Chen-Fei, Gu Xiao-Min, Ren Si-Xian. Continuous-wave intracavity YVO4/BaWO4 Raman laser pumped by a wavelength-locked 878.9 nm laser diode. Acta Physica Sinica, 2018, 67(2): 024206. doi: 10.7498/aps.67.20171848
    [6] Jiang Yue-Song, Nie Meng-Yao, Zhang Chong-Hui, Xin Can-Wei, Hua Hou-Qiang. Terahertz scattering property for the coated object of rough surface. Acta Physica Sinica, 2015, 64(2): 024101. doi: 10.7498/aps.64.024101
    [7] Yu Yong-Ji, Chen Xin-Yu, Cheng Li-Bo, Wang Chao, Wu Chun-Ting, Dong Yuan, Li Shu-Tao, Jin Guang-Yong. Continuous-wave 1.57 m/3.84 m intra-cavity multiple optical parametric oscillator based on MgO:APLN. Acta Physica Sinica, 2015, 64(22): 224215. doi: 10.7498/aps.64.224215
    [8] Chen Zai-Gao, Wang Jian-Guo, Wang Guang-Qiang, Li Shuang, Wang Yue, Zhang Dian-Hui, Qiao Hai-Liang. A 0.14 THz coaxial surface wave oscillator. Acta Physica Sinica, 2014, 63(11): 110703. doi: 10.7498/aps.63.110703
    [9] Zhang Hui-Yun, Liu Meng, Zhang Yu-Ping, He Zhi-Hong, Shen Duan-Long, Wu Zhi-Xin, Yin Yi-Heng, Li De-Hua. Improvement of the output power of optical pumping THz lasers based on the theory of vibrational relaxation. Acta Physica Sinica, 2014, 63(1): 010702. doi: 10.7498/aps.63.010702
    [10] Liu Ya-Qing, Zhang Yu-Ping, Zhang Hui-Yun, Lü Huan-Huan, Li Tong-Tong, Ren Guang-Jun. Study on the gain characteristics of terahertz surface plasma in optically pumped graphene multi-layer structures. Acta Physica Sinica, 2014, 63(7): 075201. doi: 10.7498/aps.63.075201
    [11] Fan Li, Chen Hai-Tao, Zhu Jun. Laser diode end-pumped continuous-wave Nd:YVO4 self-Raman laser at 1175 nm. Acta Physica Sinica, 2014, 63(15): 154208. doi: 10.7498/aps.63.154208
    [12] Liu Huan, Wang Wei, Gong Ma-Li. Corner-pumped Nd:YAG/YAG composite slab continuous-wave 946 nm laser. Acta Physica Sinica, 2013, 62(14): 144205. doi: 10.7498/aps.62.144205
    [13] Wan Wen-Jian, Yin Rong, Tan Zhi-Yong, Wang Feng, Han Ying-Jun, Cao Jun-Cheng. Study of 2.9 THz quantum cascade laser based on bound-to-continuum transition. Acta Physica Sinica, 2013, 62(21): 210701. doi: 10.7498/aps.62.210701
    [14] Han Yu, Yuan Xue-Song, Ma Chun-Yan, Yan Yang. Study of a gyrotron oscillator with corrugated interaction cavity. Acta Physica Sinica, 2012, 61(6): 064102. doi: 10.7498/aps.61.064102
    [15] Chen Yuan-Yuan, Zou Ren-Hua, Song Gang, Zhang Kai, Yu Li, Zhao Yu-Fang, Xiao Jing-Hua. The polarization characteristics of the excitation and emission of surface plasmon polarization in the Ag nanowires. Acta Physica Sinica, 2012, 61(24): 247301. doi: 10.7498/aps.61.247301
    [16] Zhao Dong-Mei, Shi Yu-Lei, Zhou Qing-Li, Li Lei, Sun Hui-Juan, Zhang Cun-Lin. Direct fabrication of terahertz dual-band resonator. Acta Physica Sinica, 2011, 60(9): 093301. doi: 10.7498/aps.60.093301
    [17] Zhao Guo-Zhong, Wang Xin-Qiang, Wang Hai-Yan. Terahertz radiations from narrow band gap of semiconductor irradiated by femtosecond pulses with different pump intensities. Acta Physica Sinica, 2011, 60(4): 043202. doi: 10.7498/aps.60.043202
    [18] Li Hua, Han Ying-Jun, Tan Zhi-Yong, Zhang Rong, Cao Jun-Cheng. Device fabrication of semi-insulating surface-plasmon terahertz quantum-cascade lasers. Acta Physica Sinica, 2010, 59(3): 2169-2172. doi: 10.7498/aps.59.2169
    [19] Zhang Yu-Ping, Zhang Hui-Yun, He Zhi-Hong, Wang Peng, Li Xi-Fu, Yao Jian-Quan. A 36 W intracavity-frequency-doubled diode-side-pumped Nd:YAG/KTP continuous wave green laser. Acta Physica Sinica, 2009, 58(7): 4647-4651. doi: 10.7498/aps.58.4647
    [20] Liu Huan, Gong Ma-Li. Compact laser diode end-pumped Nd:YAG intracavity frequency-tripled quasi-continuous 355 nm laser. Acta Physica Sinica, 2009, 58(10): 7000-7004. doi: 10.7498/aps.58.7000
Metrics
  • Abstract views:  7032
  • PDF Downloads:  400
  • Cited By: 0
Publishing process
  • Received Date:  26 August 2013
  • Accepted Date:  09 November 2013
  • Published Online:  05 January 2014

/

返回文章
返回