Chinese Journal of Lasers, Volume. 50, Issue 9, 0907205(2023)

Dynamic Characteristics and Application of Pulsed CO2 Laser Induced Liquid Micro‐Jet

Lingjin Wu, Lü Mingxuan, Jianwei Xue, Hang Liang, and Xianzeng Zhang*
Author Affiliations
  • Key Laboratory of Opto-Electronic Science and Technology for Medicine of Ministry of Education, Fujian Provincial Key Laboratory of Photonics Technology, College of Photonic and Electronic Engineering, Fujian Normal University, Fuzhou 350007, Fujian, China
  • show less
    References(37)

    [1] Papachristou D N, Barters R. Resection of the liver with a water jet[J]. British Journal of Surgery, 69, 93-94(2005).

    [2] Delius M, Gambihler S. Sonographic imaging of extracorporeal shock wave effects in the liver and gallbladder of dogs[J]. Digestion, 52, 55-60(1992).

    [3] Schelling G, Delius M, Gschwender M et al. Extracorporeal shock waves stimulate frog sciatic nerves indirectly via a cavitation-mediated mechanism[J]. Biophysical Journal, 66, 133-140(1994).

    [4] Delius M, Enders G, Xuan Z et al. Biological effects of shock waves: kidney damage by shock waves in dogs-dose dependence[J]. Ultrasound in Medicine & Biology, 14, 117-122(1988).

    [5] Zhong P, Zhou Y F, Zhu S L et al. Dynamics of bubble oscillation in constrained media and mechanisms of vessel rupture in SWL[J]. Ultrasound in Medicine & Biology, 27, 119-134(2001).

    [6] Nakagawa A, Kumabe T, Ogawa Y et al. Pulsed laser-induced liquid jet: evolution from shock/bubble interaction to neurosurgical application[J]. Shock Waves, 27, 1-14(2017).

    [7] Kawaguchi T, Nakagawa A, Endo T et al. Ventricle wall dissection and vascular preservation with the pulsed water jet device: novel tissue dissector for flexible neuroendoscopic surgery[J]. Journal of Neurosurgery, 124, 817-822(2016).

    [8] Rennekampff H O, Schaller H E, Wisser D et al. Debridement of burn wounds with a water jet surgical tool[J]. Burns, 32, 64-69(2006).

    [9] Kwon T R, Seok J, Jang J H et al. Needle-free jet injection of hyaluronic acid improves skin remodeling in a mouse model[J]. European Journal of Pharmaceutics and Biopharmaceutics, 105, 69-74(2016).

    [10] Shekarriz H, Shekarriz B, Bürk C G et al. Hydro-jet-assisted pneumonectomy: a new technique in a porcine model[J]. Journal of Laparoendoscopic & Advanced Surgical Techniques, 12, 371-376(2002).

    [11] Aroussi A A, Sami I M, Leguerrier A et al. The blower: a useful tool to complete thrombectomy of the mechanical prosthetic valve[J]. The Annals of Thoracic Surgery, 81, 1911-1912(2006).

    [12] Izumi R, Yabushita K, Shimizu K et al. Hepatic resection using a water jet dissector[J]. Surgery Today, 23, 31-35(1993).

    [13] Rau H G, Duessel A P, Wurzbacher S. The use of water-jet dissection in open and laparoscopic liver resection[J]. HPB, 10, 275-280(2008).

    [14] Shekarriz B, Upadhyay J, Jewett M A S. Nerve-sparing retroperitoneal lymphadenectomy using hydro-jet dissection: initial experience[J]. Journal of Endourology, 18, 273-276(2004).

    [15] Shekarriz B. Hydro-Jet technology in urologic surgery[J]. Expert Review of Medical Devices, 2, 287-291(2005).

    [16] Terzis A J, Nowak G, Rentzsch O et al. A new system for cutting brain tissue preserving vessels: water jet cutting[J]. British Journal of Neurosurgery, 3, 361-366(1989).

    [17] Nakagawa A, Ogawa Y, Amano K et al. Pulsed laser-induced liquid jet system for treatment of sellar and parasellar tumors: safety evaluation[J]. Journal of Neurological Surgery. Part A, Central European Neurosurgery, 76, 473-482(2015).

    [18] Ogawa Y, Nakagawa A, Washio T et al. Tissue dissection before direct manipulation to the pathology with pulsed laser-induced liquid jet system in skull base surgery-preservation of fine vessels and maintained optic nerve function[J]. Acta Neurochirurgica, 155, 1879-1886(2013).

    [19] Krizek J, Delrot P, Moser C. Repetitive regime of highly focused liquid micro‑jets for needle-free injection[J]. Scientific Reports, 10, 5067(2020).

    [20] Cu K, Bansal R, Mitragotri S et al. Delivery strategies for skin: comparison of nanoliter jets, needles and topical solutions[J]. Annals of Biomedical Engineering, 48, 2028-2039(2020).

    [21] Nakagawa A, Hirano T, Kusaka Y et al. Biological effect of shock waves on rat brain: pathological evaluation by compact Ho∶ YAG laser-induced cavitational shock wave generator[J]. Proceedings of SPIE, 4948, 263-268(2003).

    [22] Cui Z H, Fu S Y, Li Y M et al. Research on laser tracking system based on 905 nm laser[J]. Laser&Infrared, 40, 950-953(2010).

    [23] Han T H, Yoh J J. A laser based reusable micro‑jet injector for transdermal drug delivery[J]. Journal of Applied Physics, 107, 103110(2010).

    [24] Han T H, Hah J M, Yoh J J. Drug injection into fat tissue with a laser based micro‑jet injector[J]. Journal of Applied Physics, 109, 093105(2011).

    [25] Battula N, Menezes V, Hosseini H. A miniature shock wave driven micro-jet injector for needle-free vaccine/drug delivery[J]. Biotechnology and Bioengineering, 113, 2507-2512(2016).

    [26] Lu T J, Xu F. Mechanical properties of skin: a review[J]. Advances in Mechanics, 38, 393-426(2008).

    [27] Omens J H. Stress and strain as regulators of myocardial growth[J]. Progress in Biophysics and Molecular Biology, 69, 559-572(1998).

    [28] Zhou Z Y, Zhao C L, Chen H et al. The development and preliminary performance test of laser-driven needle-free injection system[J]. Laser Journal, 32, 69-70(2011).

    [29] Zhu L, Gamez G, Schmitz T A et al. Material ejection and redeposition following atmospheric pressure near-field laser ablation on molecular solids[J]. Analytical and Bioanalytical Chemistry, 396, 163-172(2010).

    [30] Musapelo T, Murray K K. Particle formation by infrared laser ablation of MALDI matrix compounds[J]. Journal of Mass Spectrometry: JMS, 49, 543-549(2014).

    [31] Fu L, Wang P, Wang S J et al. Dynamics of bubble pairs in water induced by focused nanosecond laser pulse[J]. Chinese Journal of Lasers, 49, 0407001(2022).

    [32] Peters I R, Tagawa Y, Oudalov N et al. Highly focused supersonic micro‑jets: numerical simulations[J]. Journal of Fluid Mechanics, 719, 587-605(2013).

    [33] Tagawa Y, Oudalov N, Ghalbzouri A E et al. Needle-free injection into skin and soft matter with highly focused micro‑jets[J]. Lab on a Chip, 13, 1357-1363(2013).

    [34] Padilla-Martinez J P, Ramirez-San-Juan J C, Korneev N et al. Breaking the Rayleigh-plateau instability limit using thermocavitation within a droplet[J]. Atomization and Sprays, 23, 487-503(2013).

    [35] Thoroddsen S T, Takehara K, Etoh T G et al. Spray and micro‑jets produced by focusing a laser pulse into a hemispherical drop[J]. Physics of Fluids, 21, 112101(2009).

    [36] Rohilla P, Marston J. Feasibility of laser induced jets in needle free jet injections[J]. International Journal of Pharmaceutics, 589, 119714(2020).

    [37] Hayasaka K, Kiyama A, Tagawa Y. Effects of pressure impulse and peak pressure of a shockwave on micro‑jet velocity in a microchannel[J]. Microfluidics and Nanofluidics, 21, 166(2017).

    Tools

    Get Citation

    Copy Citation Text

    Lingjin Wu, Lü Mingxuan, Jianwei Xue, Hang Liang, Xianzeng Zhang. Dynamic Characteristics and Application of Pulsed CO2 Laser Induced Liquid Micro‐Jet[J]. Chinese Journal of Lasers, 2023, 50(9): 0907205

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Optical Diagnostics and Therapy

    Received: Oct. 5, 2022

    Accepted: Dec. 12, 2022

    Published Online: Apr. 14, 2023

    The Author Email: Zhang Xianzeng (xzzhang@fjnu.edu.cn)

    DOI:10.3788/CJL221292

    Topics