Optical Terahertz Radiation Sources and Terahertz Application in Traumatic Brain Injury

被引:6
|
作者
Xu Degang [1 ,2 ,3 ]
Wang Yuye [1 ,2 ,3 ]
Hu Changhao [1 ,2 ,3 ]
Yan Chao [1 ,2 ,3 ]
Chen Kai [1 ,2 ,3 ]
Wang Zelong [1 ,2 ,3 ]
Nie Gang [1 ,2 ,3 ]
Zhang Jiaxin [1 ,2 ,3 ]
Yao Jianquan [1 ,2 ,3 ]
机构
[1] Tianjin Univ, Sch Precis Instruments & Optoelect Engn, Inst Laser & Optoelect, Tianjin 300072, Peoples R China
[2] Tianjin Univ, Minist Educ, Key Lab Optoelect Informat Technol, Tianjin 300072, Peoples R China
[3] Tianjin Univ, Micro Opt Elect Mech Syst Technol Lab, Tianjin 300072, Peoples R China
来源
CHINESE JOURNAL OF LASERS-ZHONGGUO JIGUANG | 2021年 / 48卷 / 19期
关键词
nonlinear optics; terahertz wave; stimulated polariton scattering; terahertz parametric oscillation; difference frequency; traumatic brain injury; WAVE PARAMETRIC OSCILLATOR; DIFFERENCE-FREQUENCY-GENERATION; TUNABLE THZ; PRISM COUPLER; LINBO3; CRYSTAL;
D O I
10.3788/CJL202148.1914002
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Significance Terahertz wave generation technology has rapidly become efficient recently and is the key, foundational technology to realize a wide application of terahertz band in comprehensive research. The terahertz band, located in the transition region from traditional electronics to photonics, has low energy, water sensitivity, special penetrability and many other unique properties. With respect to these characteristics, terahertz wave has widely used applications in biomedical diagnosis, safety inspection, nondestructive testing, terahertz communication and radar. Terahertz parametric and difference frequency radiation sources, based on optical nonlinear frequency conversion technology, can generate wideband tunable, monochromatic terahertz waves. Terahertz parametric and difference frequency radiation sources also have the advantage of compact structure and utilization at room temperatures(18-30 degrees C). With the improvement of laser technology and crystal growth technology, terahertz parametric radiation source and terahertz difference frequency radiation sources are developing rapidly to expand frequency tuning range, improve output energy, narrow terahertz wave linewidth resulting in a series of new technologies, such as ring cavity, circulating pump, and pulse -seeded injection. Progress Compared with congruent MgO-doped lithium niobite(MgO: CLN) crystal, the upper tuning frequency limit of terahertz parametric oscillator based on near-stoichiometric MgO-doped lithium niobite(MgO: SLN) crystal can be increased from 3 THz to 4.64 THz (Fig. 4). Terahertz parametric oscillator based on KTiOPO4 (KTP) and KTiOAsO4 (KTA) crystal can further improve the frequency tuning upper limit of terahertz wave; even though there are gaps in the frequency tuning range, continuous tuning cannot be achieved ( Fig. 6). Terahertz parametric oscillator based on ring cavity can broaden the frequency tuning range of terahertz wave and improve the output energy ( Fig. 7). Terahertz parametric oscillator based on pump recycling technology can improve the pump efficiency and greatly increase the output energy of terahertz wave in the entire frequency tuning range (Fig. 9). Comparing the pump source with ns pulse width, the terahertz parametric radiation source based on sub-ns pump laser can not only improve the pump peak energy but also effectively suppress the stimulated Brillouin scattering in nonlinear crystal, considerably improving the output energy. Pulse-seeded injection technology not only further improves the frequency tuning upper limit of the terahertz parametric oscillator based on LiNbO3 crystal to 5. 15 THz but also addresses the disadvantage of low output energy in high frequency band to maintain high output energy in a wider range (Fig. 11). Based on dual KTP-optical parametric oscillation (KTP-OPO) technology, terahertz difference frequency radiation source based on inorganic crystal such as GaSe can achieve high repetition rate terahertz wave output (Fig. 12), which can be used in near-field microscopy, rapid scanning THz spectroscopy and other occasions, requiring high repetition rate of terahertz wave. Terahertz difference frequency radiation source based on 4'-dimethylamino-N-methy1-4-stilbazolium tosylate (DAST), 4-N, N-dimethylamino-4'-N'-methyl-stilbazolium 2, 4, 6-trimethylbenzenesulfonate(DSTMS), N-benzy1-2-methyl-4-nitroaniline(BNA), and other organic crystals can achieve ultra-wideband terahertz wave output in the range of 1 THz to 30 THz. Owing to the characteristics of terahertz wave, i.e., low energy, water sensitivity, and fingerprint spectrum, terahertz technology has a good application potential in the field of traumatic brain injury detection. For example, multi depth slice terahertz imaging technology can accurately identify the severity of traumatic brain injury (Fig. 15). Terahertz imaging technology based on machine learning can automatically recognize and classify different degrees of traumatic brain injury samples. Conclusions and Prospects Terahertz parametric and difference frequency sources based on optical nonlinear frequency conversion technology can generate terahertz wave with high output energy, wide frequency tuning range, and narrow linewidth. With the improvement of terahertz radiation source performance, terahertz technology will have greater applications in biomedical detection, nondestructive detection, safety inspection, terahertz radar, and so on.
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页数:14
相关论文
共 60 条
  • [21] Terahertz-wave generation from 4-dimethylamino-N′-methyl-4′-stilbazolium p-bromobenzenesulfonate crystal: Effect of halogen substitution in a counter benzenesulfonate of stilbazolium derivatives
    Matsukawa, Takeshi
    Notake, Takashi
    Nawata, Kouji
    Inada, Shunsuke
    Okada, Shuji
    Minamide, Hiroaki
    [J]. OPTICAL MATERIALS, 2014, 36 (12) : 1995 - 1999
  • [22] Mei L, 2016, J OPTICS EXPRESS, V24
  • [23] Frequency-agile terahertz-wave parametric oscillator in a ring-cavity configuration
    Minamide, Hiroaki
    Ikari, Tomofumi
    Ito, Hiromasa
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2009, 80 (12):
  • [24] Optimized terahertz-wave generation using BNA-DFG
    Miyamoto, Katsuhiko
    Ohno, Seigo
    Fujiwara, Masazumi
    Minamide, Hiroaki
    Hashimoto, Hideki
    Ito, Hiromasa
    [J]. OPTICS EXPRESS, 2009, 17 (17): : 14832 - 14838
  • [25] Frequency-agile injection-seeded terahertz-wave parametric generation
    Moriguchi, Yoshikiyo
    Tokizane, Yu
    Takida, Yuma
    Nawata, Kouji
    Nagano, Shigenori
    Sato, Manabu
    Otsuji, Taiichi
    Minamide, Hiroaki
    [J]. OPTICS LETTERS, 2020, 45 (01) : 77 - 80
  • [26] High-average and high-peak output-power terahertz-wave generation by optical parametric down-conversion in MgO:LiNbO3
    Moriguchi, Yoshikiyo
    Tokizane, Yu
    Takida, Yuma
    Nawata, Kouji
    Eno, Taizo
    Nagano, Shigenori
    Minamide, Hiroaki
    [J]. APPLIED PHYSICS LETTERS, 2018, 113 (12)
  • [27] Multiwavelength terahertz-wave parametric generator for one-pulse spectroscopy
    Murate, Kosuke
    Hayashi, Shin'ichiro
    Kawase, Kodo
    [J]. APPLIED PHYSICS EXPRESS, 2017, 10 (03)
  • [28] Expansion of the tuning range of injection-seeded terahertz-wave parametric generator up to 5 THz
    Murate, Kosuke
    Hayashi, Shin'ichiro
    Kawase, Kodo
    [J]. APPLIED PHYSICS EXPRESS, 2016, 9 (08)
  • [29] Murray CJL., 1996, GLOBAL HLTH STAT COM
  • [30] Effective Terahertz Wave Parametric Generation Depending on the Pump Pulse Width Using a LiNbO3 Crystal
    Nawata, Kouji
    Hayashi, Shin'ichiro
    Ishizuki, Hideki
    Murate, Kousuke
    Imayama, Kazuki
    Takida, Yuma
    Yahia, Vincent
    Taira, Takunori
    Kawase, Kodo
    Minamide, Hiroaki
    [J]. IEEE TRANSACTIONS ON TERAHERTZ SCIENCE AND TECHNOLOGY, 2017, 7 (05) : 617 - 620