Corneal ablation with short pulse mid-IR laser radiation

被引:1
|
作者
Hoffman, HJ [1 ]
Telfair, WB [1 ]
Plaessmann, H [1 ]
机构
[1] IRVis Inc, San Jose, CA 95131 USA
来源
LASER-TISSUE INTERACTION X: PHOTOCHEMICAL, PHOTOTHERMAL, AND PHOTOMECHANICAL, PROCEEDINGS OF | 1999年 / 3601卷
关键词
mid-infrared; corneal ablation; photorefractive surgery; photospallation; thermoelastic stress;
D O I
10.1117/12.350028
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Photospallation is proposed as the mechanism behind recent animal studies involving corneal ablation by nanosecond-pulse mid-IR laser beams. Following a brief summary of earlier work directed to refractive procedures in the mid-IR, a preliminary analysis is performed based on simple ID models of thermoelastic expansion developed previously. The results of the analysis indicate that front surface spallation is consistent with the striking tissue ablation characteristics observed in the most recent work with short pulse mid-IR radiation, including very small ablation rates and submicron thermal damage zones. This is because spallation is a mechanical - rather than a thermal - process, allowing tissue to be removed in thin layers at fluences far lower than those used in the earlier corneal studies with mid-IR beams, resulting in minimal heating. We conclude that the existing theoretical basis supports the use of nanosecond pulses as an effective approach to achieving controlled ablation in the presence of very high absorption. We further suggest that such domain of operation may in fact be preferred over shorter pulses, both from a practical standpoint and to mitigate against potential damage from shock waves. Additional validation of the precise nature of corneal ablation with mid-IR nanosecond pulses was obtained from recent ablation rate experiments conducted in gel models, which resulted in submicron ablation rates of magnitudes very similar to those achieved with excimer. A brief summary of these preliminary results is given.
引用
收藏
页码:408 / 417
页数:10
相关论文
共 50 条
  • [31] High resolution mid-IR spectrally resolved interferometry
    Grosz, T.
    Kurucz, M.
    Flender, R.
    Borzsonyi, A.
    Gimzevskis, U.
    Samalius, A.
    Hoff, D.
    Kiss, B.
    NONLINEAR OPTICS AND APPLICATIONS XII, 2021, 11770
  • [32] Neuron Absorption Study and Mid-IR Optical Excitations
    Guo, Dingkai
    Chen, Xing
    Vadala, Shilpa
    Leach, Jennie
    Kostov, Yordan
    Bewley, William W.
    Kim, Chul-Soo
    Kim, Mijin
    Canedy, Chadwick L.
    Merritt, Charles D.
    Vurgaftman, Igor
    Meyer, Jerry R.
    Choa, Fow-Sen
    PHOTONIC THERAPEUTICS AND DIAGNOSTICS VIII, PTS 1 AND 2, 2012, 8207
  • [33] MIRIFS: a mid-IR integral field spectrograph for NGST
    Wells, M
    Atad-Ettedgui, E
    Hastings, P
    Posselt, W
    Wright, G
    Lagage, PO
    Le Fevre, O
    UV, OPTICAL, AND IR SPACE TELESCOPES AND INSTRUMENTS, 2000, 4013 : 872 - 882
  • [34] Design and development of MIRI, the mid-IR instrument for JWST
    Wright, G. S.
    Reike, G.
    Barella, P.
    Boeker, T.
    Colina, L.
    van Dishoeck, E.
    Driggers, P.
    Goodson, G.
    Greene, T.
    Heske, A.
    Henning, T.
    Lagage, P-O.
    Meixner, M.
    Norgaard-Nielsen, H.
    Oloffson, G.
    Ray, T.
    Ressler, M.
    Thatcher, J.
    Waelkens, C.
    Wright, D.
    Zehnder, A.
    SPACE TELESCOPES AND INSTRUMENTATION 2008: OPTICAL, INFRARED, AND MILLIMETER, PTS 1 AND 2, 2008, 7010
  • [35] Ultra-stable Mid-IR Quantum Cascade Laser for high-resolution spectroscopy and metrology
    Mejri, Sinda
    Sow, P. L. T.
    Tokunaga, S. K.
    Lopez, O.
    Goncharov, A.
    Argence, B.
    Chardonnet, C.
    Amy-Klein, A.
    Daussy, C.
    Darquie, B.
    2014 European Frequency and Time Forum (EFTF), 2014, : 239 - 240
  • [36] Exploring Mid-IR FSO Communications With Unipolar Quantum Optoelectronics
    Joharifar, Mahdieh
    Dely, Hamza
    Durupt, Laureline
    Schatz, Richard
    Maisons, Gregory
    Gacemi, Djamal
    Ostrovskis, Armands
    Zhang, Lu
    Salgals, Toms
    Sun, Yan-Ting
    Spolitis, Sandis
    Bobrovs, Vjaceslavs
    Yu, Xianbin
    Vasanelli, Angela
    Sirtori, Carlo
    Ozolins, Oskars
    Pang, Xiaodan
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2025, 43 (04) : 1633 - 1643
  • [37] Comparison of mid-IR nonlinear crystals with integral figure of merit
    Ionin, A. A.
    Kinyaevskiy, I. O.
    Sagitova, A. M.
    INTERNATIONAL CONFERENCE LASER OPTICS 2020 (ICLO 2020), 2020,
  • [38] Mid-IR Distributed-Feedback Interband Cascade Lasers
    Kim, C. S.
    Kim, M.
    Abell, J.
    Bewley, W. W.
    Merritt, C. D.
    Canedy, C. L.
    Vurgaftman, I.
    Meyer, J. R.
    QUANTUM SENSING AND NANOPHOTONIC DEVICES X, 2013, 8631
  • [39] MOVPE growth of InAs quantum dots for mid-IR applications
    Tang Xiao-hong
    Yin Zong-you
    Du An-yan
    Zhao Jing-hua
    Deny, S.
    TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA, 2006, 16 : S25 - S28
  • [40] MOVPE growth of InAs quantum dots for mid-IR applications
    DENY S
    TransactionsofNonferrousMetalsSocietyofChina, 2006, (S1) : 25 - 28