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Dive into the research topics where Razvan Stoian is active.

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Featured researches published by Razvan Stoian.


Applied Surface Science | 1999

Surface damage threshold and structuring of dielectrics using femtosecond laser pulses: the role of incubation

D Ashkenasi; M Lorenz; Razvan Stoian; Arkadi Rosenfeld

Abstract We present results on the surface damage threshold of a-SiO2 and YLF after single and multiple laser pulse irradiation at a pulse duration of 100 fs and radiation wavelength of 800 nm. The surface damage threshold drops dramatically after the first laser shots until reaching an almost constant level. The threshold reduction at low shot numbers is attributed to laser induced defect formation. This has important consequences for applications, such as laser machining and the lifetime of optical components. As an example of relevance to applications, we discuss the generation of high quality micro pockets in a-SiO2 and YLF.


Optics Express | 2008

Ultrafast laser writing of homogeneous longitudinal waveguides in glasses using dynamic wavefront correction.

Cyril Mauclair; Alexandre Mermillod-Blondin; Nicolas Huot; Eric Audouard; Razvan Stoian

Laser writing of longitudinal waveguides in bulk transparent materials degrades with the focusing depth due to wavefront distortions generated at the air-dielectric interface. Using adaptive spatial tailoring of ultrashort laser pulses, we show that spherical aberrations can be dynamically compensated in optical glasses, in synchronization with the writing procedure. Aberration-free structures can thus be induced at different depths, showing higher flexibility for 3D processing. This enables optimal writing of homogeneous longitudinal waveguides over more significant lengths. The corrective process becomes increasingly important when laser energy has to be transported without losses at arbitrary depths, with the purpose of triggering mechanisms of positive refractive index change.


Optics Express | 2009

Dynamic ultrafast laser spatial tailoring for parallel micromachining of photonic devices in transparent materials.

Cyril Mauclair; Guanghua Cheng; Nicolas Huot; Eric Audouard; Arkadi Rosenfeld; I. V. Hertel; Razvan Stoian

Femtosecond laser processing of bulk transparent materials can generate localized positive changes of the refractive index. Thus, by translation of the laser spot, light-guiding structures are achievable in three dimensions. Increasing the number of laser processing spots can consequently reduce the machining effort. In this paper, we report on a procedure of dynamic ultrafast laser beam spatial tailoring for parallel photoinscription of photonic functions. Multispot operation is achieved by spatially modulating the wavefront of the beam with a time-evolutive periodical binary phase mask. The parallel longitudinal writing of multiple waveguides is demonstrated in fused silica. Using this technique, light dividers in three dimensions and wavelength-division demultiplexing (WDD) devices relying on evanescent wave coupling are demonstrated.


Optics Express | 2009

Ultrafast laser photoinscription of polarization sensitive devices in bulk silica glass.

Guanghua Cheng; Konstantin Mishchik; Cyril Mauclair; Eric Audouard; Razvan Stoian

Ultrashort pulsed laser irradiation of bulk fused silica may result under specific energetic conditions in the self-organization of subwavelength material redistribution regions within the laser trace. The modulated structures have birefringent properties and show unusual anisotropic light scattering and reflection characteristics. We report here on the formation of waveguiding structures with remarkable polarization effects for infrared light. The photoinscription process using 800 nm femtosecond laser pulses is accompanied by third harmonic generation and polarization dependent anisotropic scattering of UV photons. The photowritten structures can be arranged in three-dimensional patterns generating complex propagation and polarization effects due to the anisotropic optical properties.


Journal of Applied Physics | 2007

Spatial distribution of refractive index variations induced in bulk fused silica by single ultrashort and short laser pulses

Igor M. Burakov; Nadezhda M. Bulgakova; Razvan Stoian; Alexandre Mermillod-Blondin; Eric Audouard; Arkadi Rosenfeld; Anton Husakou; I. V. Hertel

We correlate phase-contrast microscopy of modification tracks induced by tightly focused single ultrashort and short laser pulses inside fused silica with numerical simulations of nonlinear laser excitation footprints. Different pulse durations on the femtosecond and picosecond range are compared in order to validate the experimental and theoretical observations on the subsequent refractive index variations in a regime where linear and nonlinear contributions play a comparable role. The nature of the laser-induced structural changes depends essentially on the characteristics of pulse propagation in different regions of the irradiated zone. Numerical simulations of laser pulse propagation in the excited region show that accumulation of excess energy and swift nonlinear absorption contribute to the formation of either positive or negative phase-shift regions within the same single-pulse-induced damage trace. The decrease in the refractive index can be unambiguously correlated with the regions of maximum energy deposition during prolonged exposure times.


Applied Physics Letters | 2014

Single-shot high aspect ratio bulk nanostructuring of fused silica using chirp-controlled ultrafast laser Bessel beams

Manoj Bhuyan; Praveen Kumar Velpula; Jean-Philippe Colombier; Thomas Olivier; Nicolas Faure; Razvan Stoian

We report single-shot, high aspect ratio nanovoid fabrication in bulk fused silica using zeroth order chirp-controlled ultrafast laser Bessel beams. We identify a unique laser pulse length and energy dependence of the physical characteristics of machined structures over which nanovoids of diameter in the range 200–400 nm and aspect ratios exceeding 1000 can be fabricated. A mechanism based on the axial energy deposition of nonlinear ultrashort Bessel beams and subsequent material densification or rarefaction in fused silica is proposed, intricating the non-diffractive nature with the diffusing character of laser-generated free carriers. Fluid flow through nanochannel is also demonstrated.


Applied Physics Letters | 2009

Dynamics of femtosecond laser induced voidlike structures in fused silica

Alexandre Mermillod-Blondin; J. Bonse; Arkadi Rosenfeld; I. V. Hertel; Yu. P. Meshcheryakov; Nadezhda M. Bulgakova; Eric Audouard; Razvan Stoian

Focused ultrafast laser irradiation of fused silica usually induces a spatially modulated refractive index variation in the bulk material. Strong energy concentration leads to the localized formation of a lower-density cavitylike depressed structure surrounded by compacted matter. We report on applying time-resolved phase contrast microscopy to investigate the timescale of the void formation. We indicate a temporal behavior consistent with shock wave generation and subsequent rarefaction.


Journal of Applied Physics | 2012

Effects of electron-phonon coupling and electron diffusion on ripples growth on ultrafast-laser-irradiated metals

J. P. Colombier; Florence Garrelie; N. Faure; S. Reynaud; M. Bounhalli; Eric Audouard; Razvan Stoian; F. Pigeon

Metals exposed to ultrafast laser irradiation close to ablative regimes show often a submicron-scale (near 0.5 μm) periodic organization of the surface as ripples. Using two classes of metallic materials (transition and noble), we have determined that the ripples amplitude is strongly correlated to the material transport properties, namely electron-phonon relaxation strength, electronic diffusion, and to the energy band characteristics of the electronic laser excitation. This particularly depends on the topology of the electronic structure, including d-band effects on electronic excitation. Comparing the effects of electron-phonon nonequilibrium lifetimes for the different metals under similar irradiation conditions, we indicate how the electron-phonon coupling strength affects the electronic thermal diffusion, the speed of phase transformation and impacts on the ripples contrast. The highest contrast is observed for ruthenium, where the electron-phonon coupling is the strongest, followed by tungsten, nic...


Journal of Applied Physics | 2013

Ultrafast laser induced electronic and structural modifications in bulk fused silica

K. Mishchik; C. D'Amico; P. K. Velpula; C. Mauclair; A. Boukenter; Youcef Ouerdane; Razvan Stoian

Ultrashort laser pulses can modify the inner structure of fused silica, generating refractive index changes varying from soft positive (type I) light guiding forms to negative (type II) values with void presence and anisotropic sub-wavelength modulation. We investigate electronic and structural material changes in the type I to type II transition via coherent and incoherent secondary light emission reflecting free carrier behavior and post-irradiation material relaxation in the index change patterns. Using phase contrast microscopy, photoluminescence, and Raman spectroscopy, we determine in a space-resolved manner defect formation, redistribution and spatial segregation, and glass network reorganization paths in conditions marking the changeover between type I and type II photoinscription regimes. We first show characteristic patterns of second harmonic generation in type I and type II traces, indicating the collective involvement of free carriers and polarization memory. Second, incoherent photoemission ...


Journal of Laser Micro Nanoengineering | 2007

Theoretical Models and Qualitative Interpretations of Fs Laser Material Processing

Nadezhda M. Bulgakova; Igor M. Burakov; Yuri P. Meshcheryakov; Razvan Stoian; Arkadi Rosenfeld; I. V. Hertel; Sb Ras

In this paper a number of numerical models are presented which have been developed to describe the processes taking place at different time and length scales in different classes of materials under the irradiation by ultrashort laser pulses. A unified drift-diffusion approach for modeling charge- carrier transport in metals, semiconductors, and dielectrics allows to elucidate the dynamics of the electric field generated in the target due to photo-emission and to get insight into the origin of the Coulomb explosion process. The widely known two-temperature model is used to follow heating dynamics of irradiated matter and to analyze its phase transformations on the basis of thermodynamic concepts. Being modified for semiconductors, this model has allowed to establish the nature of high-energeti c ion emission using laser pulse tailoring and to undertake a simplified modeling of consequences of ultrafast melting of silicon. A two-dimensiona l model of dielectric breakdown has made possible to uncover the mechanisms which enable the spatial modulation of the structures induced by temporally modulated laser pulses in wide-band-gap dielectric materials. A combined thermal/elasto-plastic model has provided a deep insight into the mechanisms and dynamics of the microbump and nanojet formation on nanosize gold films under femtosecond laser irradiation.

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Arkadi Rosenfeld

Chalmers University of Technology

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I. V. Hertel

Free University of Berlin

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Guanghua Cheng

Centre national de la recherche scientifique

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