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Plasma formation in water by picosecond and nanosecond Nd:YAG laser pulses. I. Optical breakdown at threshold and superthreshold irradiance

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TLDR
In this article, the authors investigated plasma formation in distilled water by 30-ps and 6-ns Nd:YAG laser pulses of 1064-nm and 532-nm wavelength for focusing angles between 1.7° and 32°.
Abstract
We investigated plasma formation in distilled water by 30-ps and 6-ns Nd:YAG laser pulses of 1064-nm and 532-nm wavelength for focusing angles between 1.7° and 32°. We determined the optical breakdown thresholds and analyzed the plasma length achieved at superthreshold irradiance, The parameter range investigated covers the parameters used for intraocular laser surgery. The experimental results are compared to theoretical models for the calculation of breakdown thresholds and the description of plasma growth for superthreshold breakdown. We found that at λ=1064 nm the measured thresholds for both pulse durations coincide with the calculated thresholds for the generation of seed electrons by multiphoton ionization. The breakdown process is completed by avalanche ionization. The seed electron density required for breakdown is about 4×10/sup 9/ cm for the 6-ns pulses, and 1.4×10/sup 11/ cm/sup -3/ for the 30-ps pulses. No spot size dependence of the irradiance threshold for breakdown was observed. The average threshold is by a factor of 5.9 higher for 30-ps pulses (I/sub th/=4.5×1011 W/cm2) than for 6-ns pulses (Ith=0.76×10/sup 11/ W/cm/sup 2/). At angles below approximately 2°, the threshold is influenced by self-focusing effects. The breakdown thresholds at 532 nm are slightly lower than at 1064 nm. Here, multiphoton ionization contributes considerably to the generation of free electrons throughout the whole process of plasma formation. Our results for plasma formation at superthreshold energies support a "breakdown wave" mechanism of plasma growth. For picosecond pulses, the breakdown threshold can be considered to be time-invariant, but for nanosecond pulses there is probably a decrease of the threshold during the laser pulse which may be due to UV-radiation emitted from plasma created at the beginning of the pulse.

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Citations
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Mechanisms of pulsed laser ablation of biological tissues.

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Mechanisms of femtosecond laser nanosurgery of cells and tissues

TL;DR: In this article, the working mechanisms of femtosecond laser nanoprocessing in biomaterials with oscillator pulses of 80-MHz repetition rate and with amplified pulses of 1-kHz repetition rate were investigated.
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Laser-induced plasma formation in water at nanosecond to femtosecond time scales: calculation of thresholds, absorption coefficients, and energy density

TL;DR: In this article, a rate equation for the free electron density was numerically solved to calculate the evolution of the electron density during the laser pulse and to determine the absorption coefficient and energy density of the plasma.
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Dynamics of laser-induced cavitation bubbles near an elastic boundary

TL;DR: In this article, the interaction of a laser-induced cavitation bubble with an elastic boundary and its dependence on the distance between bubble and boundary is investigated experimentally, and it is shown by means of high-speed photography with up to 5 million frames s−1 that bubble splitting, formation of liquid jets away from and towards the boundary, and jet-like ejection of the boundary material into the liquid are the main features of this interaction.
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Laser-induced breakdown in aqueous media

TL;DR: In this paper, the effects of laser-induced breakdown in aqueous media were investigated and applications of laser induced breakdown in liquids in liquids were discussed. But none of these applications were considered in this paper.
References
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Book

The Principles of Nonlinear Optics

Y. R. Shen
TL;DR: In this article, the authors present a general description of wave propagation in nonlinear media, including high-resolution nonlinear optical spectroscopy, and four-wave mixing and mixing.
Book

Solid-state laser engineering

TL;DR: In this article, the characteristics, design, construction and performance of solid-state lasers are discussed from an industrial perspective, focusing on engineering and practical considerations; phenomenological aspects using models are preferred to abstract mathematical derivations.
Journal ArticleDOI

Shock wave emission and cavitation bubble generation by picosecond and nanosecond optical breakdown in water

TL;DR: In this paper, the authors used time-resolved photography to measure the position of the bubble front and the bubble wall as a function of time and the photographs were used to determine the shock front and bubble wall velocity as well as the shock wave pressure.
Journal ArticleDOI

Laser-induced electric breakdown in solids

TL;DR: In this article, a review of recent experimental results on laser-induced electric breakdown in transparent optical solid materials is given, where a fundamental breakdown threshold exists characteristic for each material, which is determined by the same physical process as dc breakdown, namely, avalanche ionization.
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