World Journal of Nano Science and Engineering

Volume 5, Issue 4 (December 2015)

ISSN Print: 2161-4954   ISSN Online: 2161-4962

Google-based Impact Factor: 0.83  Citations  

In the Heart of Femtosecond Laser Induced Nanogratings: From Porous Nanoplanes to Form Birefringence

HTML  XML Download Download as PDF (Size: 26671KB)  PP. 115-125  
DOI: 10.4236/wjnse.2015.54014    3,939 Downloads   5,376 Views  Citations

ABSTRACT

It is demonstrated that the form birefringence related to the so-called nanogratings is quantitatively correlated to the porosity-filling factor of these nanostructures. We reveal that matters surrounding the nanopores exhibit significant refractive index decrease which is likely due to the fictive temperature increase and/or the presence of a significant amount of interstitial O2. The control of the porosity was achieved by adjusting the laser pulse energy and the number of pulses/micron i.e. the overlapping rate. Applications can be numerous in fast material processing by the production of nanoporous matter, and photonics by changing the optical properties.

Share and Cite:

Desmarchelier, R. , Poumellec, B. , Brisset, F. , Mazerat, S. and Lancry, M. (2015) In the Heart of Femtosecond Laser Induced Nanogratings: From Porous Nanoplanes to Form Birefringence. World Journal of Nano Science and Engineering, 5, 115-125. doi: 10.4236/wjnse.2015.54014.

Cited by

[1] Formation of nanogratings driven by ultrafast laser irradiation in mid-IR heavy oxide glasses
Ceramics …, 2022
[2] On the Formation of Nanogratings in Commercial Oxide Glasses by Femtosecond Laser Direct Writing
Nanomaterials, 2022
[3] Hierarchical Multi-Scale Coupled Periodical Photonic and Plasmonic Nanopatterns Inscribed by Femtosecond Laser Pulses in Lithium Niobate
Nanomaterials, 2022
[4] Thermal and Electron Plasma Effects on Phase Separation Dynamics Induced by Ultrashort Laser Pulses
Crystals, 2022
[5] Nanohydrodynamic Local Compaction and Nanoplasmonic Form-Birefringence Inscription by Ultrashort Laser Pulses in Nanoporous Fused Silica
Nanomaterials, 2022
[6] 3D laser engineering of molten core optical fibers: toward a new generation of harsh environment sensing devices
Advanced Optical …, 2022
[7] Birefringent microstructures in bulk fluorite produced by ultrafast pulsewidth-dependent laser inscription
Applied Surface …, 2021
[8] Towards a Rationalization of Ultrafast Laser-Induced Crystallization in Lithium Niobium Borosilicate Glasses: The Key Role of The Scanning Speed
2021
[9] Revealing complex optical phenomena through vectorial metrics
2021
[10] An Overview of the Thermal Erasure Mechanisms of Femtosecond Laser‐Induced Nanogratings in Silica Glass
2021
[11] Thermal Stability of Type II Modifications Inscribed by Femtosecond Laser in a Fiber Drawn from a 3D Printed Preform
2021
[12] Three-Dimensional Integrated Photonics in Transparent Substrates Enabled by Femtosecond Laser Fabrication
2020
[13] Erasure of nanopores in silicate glasses induced by femtosecond laser irradiation in the Type II regime
2020
[14] Thermal Stability of Type II Modifications by IR Femtosecond Laser in Silica-based Glasses
2020
[15] Study of femtosecond laser writing in the bulk of Nd3+, Y3+ co-doped CaF2 crystals
2019
[16] Femtosecond Laser-Induced Crystallization in Glasses: Growth Dynamics for Orientable Nanostructure and Nanocrystallization
2019
[17] Overview of high temperature fibre Bragg gratings and potential improvement using highly doped aluminosilicate glass optical fibres
2019
[18] Fiber nanogratings induced by femtosecond pulse laser direct writing for in-line polarizer
Nanoscale, 2018
[19] Light-driven nanoperiodical modulation of alkaline cation distribution inside sodium silicate glass
Journal of Non-Crystalline Solids, 2018
[20] Nanopore-mediated ultrashort laser-induced formation and erasure of volume nanogratings in glass
Physical Chemistry Chemical Physics, 2018
[21] Mach-Zehnder interferometer based on femtosecond laser waveguide inscription
Advanced Photonics 2018 (BGPP, IPR, NP, NOMA, Sensors, Networks, SPPCom, SOF), 2018
[22] Volume nanogratings in glass: from self-organized to well-controlled laser processing
Advanced Photonics 2018 (BGPP, IPR, NP, NOMA, Sensors, Networks, SPPCom, SOF), 2018
[23] Development of functional materials by using ultrafast laser pulses
Proceedings Volume 10456, Nanophotonics Australasia 2017, 2018
[24] Curvature Sensor Based on In-Fiber Mach–Zehnder Interferometer Inscribed With Femtosecond Laser
Journal of Lightwave Technology, 2017
[25] Study of femtosecond laser-induced circular optical properties in silica by Mueller matrix spectropolarimetry
Optics Letters, 2017
[26] Highly resistant zero-order waveplates based on all-silica multilayer coatings
physica status solidi, 2017
[27] Tunability of form birefringence induced by femtosecond laser irradiation in anion‐doped silica glass
Journal of the American Ceramic Society, 2017
[28] Creation and orientation of nano-crystals by femtosecond laser light for controlling optical non-linear response in silica-based glasses
2017
[29] Tunability of form birefringence induced by femtosecond laser irradiation in anion doped silica glass
Journal of the American Ceramic Society, 2017
[30] Влияние химического состава на формирование двулучепреломляющих нанорешеток в силикатных стеклах фемтосекундным лазерным излучением
2017
[31] Creation and orientation of nano-crystals by femtosecond laser light for controlling optical nonlinear response in silica-based glasses
Conference on Lasers …, 2017
[32] Nanogratings formation in multicomponent silicate glasses
Applied Physics B, 2016
[33] Parity violation in chiral structure creation under femtosecond laser irradiation in silica glass?
Light: Science & Applications, 2016
[34] Ultrafast Laser-Induced Nanogratings in Derived Barium Gallo-Germanate Glasses for Mid-Ir Applications

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.