Optimization of laser energy deposition for single-shot high aspect-ratio microstructuring of thick BK7 glass
Оптимизация энерговклада лазерного излучения для одноимпульсного формирования микроструктур с высоким отношением длины к поперечному размеру в толстом стекле BK7
2016-07-01
SCID: 54.1/u9tkgqbu
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BK7 glassBessel beam laser direct writinghigh aspect-ratio microstructuringsingle-shot laser energy depositionspectrally resolved transmission diagnostics
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Abstract (AI)
We investigate the generation of high aspect ratio microstructures across 0.7 mm thick glass by means of single shot Bessel beam laser direct writing. We study the effect on the photoinscription of the cone angle, as well as of the energy and duration of the ultrashort laser pulse. The aim of the study is to optimize the parameters for the writing of a regular microstructure due to index modification along the whole sample thickness. By using a spectrally resolved single pulse transmission diagnostics at the output surface of the glass, we correlate the single shot material modification with observations of the absorption in different portions of the retrieved spectra, and with the absence or presence of spectral modulation. Numerical simulations of the evolution of the Bessel pulse intensity and of the energy deposition inside the sample help us interpret the experimental results that suggest to use picosecond pulses for an efficient and more regular energy deposition. Picosecond pulses take advantage of nonlinear plasma absorption and avoid temporal dynamics effects which can compromise the stationarity of the Bessel beam propagation.
Key Findings
1
Numerical simulations of Bessel-pulse propagation and energy deposition support interpreting the observed microstructuring behavior.
2
Photoinscription depends on the Bessel beam cone angle, ultrashort-pulse energy, and pulse duration.
3
Picosecond pulses enable more efficient and regular energy deposition by exploiting nonlinear plasma absorption while avoiding temporal dynamics that disrupt stationary Bessel-beam propagation.
4
Single-shot Bessel-beam laser writing generates high-aspect-ratio microstructures through 0.7 mm-thick BK7 glass.
5
Spectrally resolved single-pulse transmission diagnostics correlate material modification with wavelength-dependent absorption and spectral modulation.
Research Object
0.7 mm-thick BK7 glass subjected to single-shot Bessel beam laser direct writing
Research Subject
Optimization of cone angle, pulse energy, and pulse duration for regular high-aspect-ratio microstructure formation through uniform refractive-index modification across the glass thickness, including the role of nonlinear plasma absorption and temporal propagation dynamics
Publication Details
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2016-07-01
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