激光技术, 2023, 47 (2): 193, 网络出版: 2023-04-12  

飞秒激光致双液滴光学击穿和等离子体分布研究

Optical breakdown and plasma morphology distribution of double droplets induced by femtosecond laser
作者单位
南京理工大学 理学院, 南京 210094
引用该论文

钱天, 陆健, 唐懋, 张冲, 张宏超. 飞秒激光致双液滴光学击穿和等离子体分布研究[J]. 激光技术, 2023, 47(2): 193.

QIAN Tian, LU Jian, TANG Mao, ZHANG Chong, ZHANG Hongchao. Optical breakdown and plasma morphology distribution of double droplets induced by femtosecond laser[J]. Laser Technology, 2023, 47(2): 193.

参考文献

[1] LI M, LIU W R. Multiple-scattering effects on the visibility measurement of laser transmissometers in fog[J]. Laser Technoloy, 2020, 44(4): 503-508 (in Chinese).

[2] RUDENK A, ROSENOW P, HASSON V, et al. Plasma-free water droplet shattering by long-wave infrared ultrashort pulses for efficient fog clearing[J]. Optica, 2020, 7(2): 115-122.

[3] CHEN Z Q, WANG X B, ZUO D L. Experimental research of CO2 laser-induced liquid droplet jet flow plasma[J]. Laser Technology, 2016, 40(6): 888-891 (in Chinese).

[4] KLEIN A L, BOUWHUIS W, VISSER C W, et al. Drop shaping by laser-pulse impact[J]. Physical Review Applied, 2015, 3(4): 044018.

[5] GELDERBLOM H, LHUISSIER H, KLEIN A L, et al. Drop defor-mation by laser-pulse impact[J]. Journal of Fluid Mechanics, 2016, 794: 676-699.

[6] HENIN S, PETIT Y, ROHWETTER P, et al. Field measurements suggest the mechanism of laser-assisted water condensation[J]. Nature Communications, 2011, 2(1): 1-7.

[7] JU J J, LIU J Sh, WANG Ch , et al. Laser-filamentation-induced condensation and snow formation in a cloud chamber[J]. Optics Le-tters, 2012, 37(7): 1214-1216.

[8] GEINTS Y E, KABANOV A M, MATVIENKO G G, et al.Broadband emission spectrum dynamics of large water droplets exposed to intense ultrashort laser radiation[J]. Optics Letters, 2010, 35(16): 2717-2719.

[9] CUI Z W, XIANG Y L, ZHANG Y X, et al. Quantitative study on uranium in uranyl solution by laser-induced breakdown spectroscopy[J]. Laser Technology, 2021, 45(3): 331-335 (in Chinese).

[10] LATZ C, ASSHAUER T, RATHJEN C, et al. Femtosecond-laser assisted surgery of the eye: Overview and impact of the low-energy concept[J]. Micromachines, 2021, 12(2): 122.

[11] INHESTER L, HANASAKI K, HAO Y J, et al. X-ray multiphoton ionization dynamics of a water molecule irradiated by an X-ray free-electron laser pulse[J]. Physical Review, 2016, A94(2): 023422.

[12] WOODBURY D, GOFFIN A, SCHWARTZ R M, et al. Self-guiding of long-wave infrared laser pulses mediated by avalanche ionization[J]. Physical Review Letters, 2020, 125(13): 133201.

[13] GEINTS Y E, ZEMLYANOV A A. Phase explosion of a water drop by a femtosecond laser pulse: I. Dynamics of optical breakdown[J]. Atmospheric and Oceanic Optics, 2009, 22(6): 581-589.

[14] EFIMENKO E S, MALKOV Y A, MURZANEV A A, et al. Femtosecond laser pulse-induced breakdown of a single water microdroplet[J]. Journal of the Optical Society of America, 2014, B31(3): 534-541.

[15] RUDENKO A, MOLONEY J V. Tunable near-to far-infrared optical breakdown in nonlinear interactions of ultrashort laser pulses with water microdroplets in ambient air[J]. Advanced Photonics Research, 2020, 1(2): 2000029.

[16] BOULAIS E, LACHAINE R, MEUNIER M, et al. Plasma mediated off-resonance plasmonicenhanced ultrafast laser-induced nanocavitation[J]. Nano Letters, 2012, 12(9): 4763-4769.

[17] NAZARI M, MIN X, ARONSON M, et al. Plasmon-enhanced pan-microbial pathogen inactivation in the cavitation regime: Selectivity without targeting[J]. ACS Applied Nano Materials, 2019, 2(4): 2548-2558.

[18] DELIBASIC H, PETROVIC V, PETROVIC I. Laser breakdown in water induced by λ=532 nm nanosecond pulses: Analytical calculation of the number density of free electrons[J]. Journal of the Phy-sical Society of Japan, 2020, 89(11): 114501.

[19] BULAT A F, DYRDA V I, LYSYTSYA M I, et al. Numerical simulation of the stress-strain state of thin-layer rubber-metal vibration absorber elements under nonlinear deformation[J]. Strength of Materials, 2018, 50(3): 387-395.

[20] ZHANG Ch, TANG M, ZHANG H C, et al. Optical breakdown during femtosecond laser propagation in water cloud[J]. Optics Express, 2019, 27(6): 8456-8475.

[21] ZHANG Ch, LU J, ZHANG H C, et al. Transient coupling model of plasma and laser field in water[J]. IEEE Journal of Quantum Electronics, 2016, 52(8): 1-9.

[22] JARNAC A, TAMOSAUSKAS G, MAJUS D, et al. Whole life cycle of femtosecond ultraviolet filaments in water[J]. Physical Review A, 2014, 89(3): 033809.

[23] NOACK J, VOGEL A. Laser-induced plasma formation in water at nanosecond to femtosecond time scales: Calculation of thresholds, absorption coefficients, and energy density[J]. IEEE Journal of Quantum Electronics, 1999, 35(8): 1156-1167.

[24] VOGEL A, LINZ N, FREIDANK S, et al. Femtosecond-laser-induced nanocavitation in water: Implications for optical breakdown threshold and cell surgery[J]. Physical Review Letters, 2008, 100(3): 038102.

钱天, 陆健, 唐懋, 张冲, 张宏超. 飞秒激光致双液滴光学击穿和等离子体分布研究[J]. 激光技术, 2023, 47(2): 193. QIAN Tian, LU Jian, TANG Mao, ZHANG Chong, ZHANG Hongchao. Optical breakdown and plasma morphology distribution of double droplets induced by femtosecond laser[J]. Laser Technology, 2023, 47(2): 193.

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