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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

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Publications (20/20 displayed)

  • 2024Automated discovery of reprogrammable nonlinear dynamic metamaterials18citations
  • 2024Sono-Activated RAFT Ab Initio Emulsion Polymerization of Methyl Methacrylate: Toward an Exogenous Initiator-Free and Surfactant-Free Process1citations
  • 2021Analytical modeling of one-dimensional resonant asymmetric and reciprocal acoustic structures as Willis materials19citations
  • 2020Guided transition waves in multistable mechanical metamaterials200citations
  • 2020Imaging grain microstructure in a model ceramic energy material with optically generated coherent acoustic phonons37citations
  • 2020Imaging grain microstructure in a model ceramic energy material with optically generated coherent acoustic phonons37citations
  • 2020Nondestructive evaluation of structural adhesive bonding using the attenuation of zero-group-velocity Lamb modes20citations
  • 2020Cumulative fatigue damage in thin aluminum films evaluated non-destructively with lasers via zero-group-velocity Lamb modes22citations
  • 2019Three-dimensional imaging of inhomogeneities in transparent solids compressed in a DAC by time-domain Brillouin scatteringcitations
  • 2019Three-dimensional imaging of inhomogeneities in transparent solids compressed in a DAC by time-domain Brillouin scatteringcitations
  • 2019Elastic anisotropy and single-crystal moduli of solid argon up to 64 GPa from time-domain Brillouin scattering14citations
  • 2017Beam shaping to enhance zero group velocity Lamb mode generation in a composite plate and nondestructive testing application20citations
  • 2016Small-Scale Seismic Monitoring of Varying Water Levels in Granular Media19citations
  • 2016Monitoring of autogenous crack healing in cementitious materials by the nonlinear modulation of ultrasonic coda waves, 3D microscopy and X-ray microtomography50citations
  • 2014Small crack detection in cementitious materials using nonlinear coda wave modulation72citations
  • 2012Study of stress-induced velocity variation in concrete under direct tensile force and monitoring of the damage level by using thermally-compensated Coda Wave Interferometry91citations
  • 2012Elastic waves in phononic granular membranescitations
  • 2011Experimental Evidence of Rotational Elastic Waves in Granular Phononic Crystals122citations
  • 2010Nonlinear Biot waves in porous media with application to unconsolidated granular media22citations
  • 2003Effet non linéaire d'auto-démodulation d'amplitude dans les milieux granulaires: théories et expériencescitations

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Bösch, Cyrill
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Medina, Eder
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Piogé, Sandie
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1 / 1 shared
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1 / 2 shared
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1 / 14 shared
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1 / 1 shared
Groby, Jean-Philippe
2 / 12 shared
Malléjac, Matthieu
1 / 1 shared
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1 / 6 shared
Li, Jensen
1 / 3 shared
Merkel, Aurélien
2 / 3 shared
Torrent, Daniel
1 / 5 shared
Mueller, Jochen
1 / 2 shared
Khajehtourian, Romik
1 / 1 shared
Jin, Lishuai
1 / 1 shared
Rafsanjani Abbasi, Ahmad
1 / 5 shared
Kochmann, Dennis M.
1 / 1 shared
Hua, Zilong
2 / 2 shared
Khafizov, Marat
2 / 2 shared
Raetz, Samuel
8 / 14 shared
Wang, Yuzhou
2 / 2 shared
Hurley, David H.
1 / 1 shared
Goussev, Vitali
8 / 18 shared
Pezeril, Thomas
1 / 4 shared
Hurley, David, H.
1 / 1 shared
Blondeau, J.
1 / 1 shared
Ducousso, Mathieu
1 / 2 shared
Chigarev, N.
1 / 1 shared
Cuvillier, N.
1 / 1 shared
Hodé, R.
1 / 2 shared
Blondeau, James
2 / 2 shared
Yan, Guqi
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Chigarev, Nikolay
5 / 14 shared
Savi, E. L.
2 / 2 shared
Gusev, Vitaly
1 / 2 shared
Bulou, Alain
3 / 9 shared
Zerr, Andreas
2 / 12 shared
Nikitin, Sergey
1 / 3 shared
Lomonosov, Alexey
1 / 7 shared
Djemia, Philippe
1 / 30 shared
Kuriakose, Maju
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Campagne, Benjamin
1 / 5 shared
Mechri, Charfeddine
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Faëse, Frédéric
1 / 1 shared
Pasquet, Sylvain
1 / 1 shared
Mourgues, Régis
1 / 1 shared
Bodet, Ludovic
1 / 1 shared
Martin, Roland
1 / 3 shared
Guérin, Roger
1 / 4 shared
Bergamo, Paolo
1 / 1 shared
Lys, Elisabeth
1 / 3 shared
Durand, Olivier
3 / 40 shared
Hilloulin, Benoit
2 / 7 shared
Legland, Jean-Baptiste
1 / 1 shared
Loukili, Ahmed
3 / 34 shared
Grondin, Frederic
2 / 6 shared
Abraham, Odile
3 / 8 shared
Zhang, Yuxiang
2 / 2 shared
Le Duff, Alain
1 / 1 shared
Lascoup, Bertrand
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Co-Authors (by relevance)

  • Bordiga, Giovanni
  • Jafarzadeh, Sina
  • Bertoldi, Katia
  • Adams, Ryan P.
  • Bösch, Cyrill
  • Medina, Eder
  • Duclos, Aroune
  • Piogé, Sandie
  • Pascual, Sagrario
  • Passin, Amandine
  • Sensan, Tharin
  • Khalil, Ali
  • Fontaine, Laurent
  • Ben Belaiche, Mehdi
  • Groby, Jean-Philippe
  • Malléjac, Matthieu
  • Romero-García, Vicente
  • Li, Jensen
  • Merkel, Aurélien
  • Torrent, Daniel
  • Mueller, Jochen
  • Khajehtourian, Romik
  • Jin, Lishuai
  • Rafsanjani Abbasi, Ahmad
  • Kochmann, Dennis M.
  • Hua, Zilong
  • Khafizov, Marat
  • Raetz, Samuel
  • Wang, Yuzhou
  • Hurley, David H.
  • Goussev, Vitali
  • Pezeril, Thomas
  • Hurley, David, H.
  • Blondeau, J.
  • Ducousso, Mathieu
  • Chigarev, N.
  • Cuvillier, N.
  • Hodé, R.
  • Blondeau, James
  • Yan, Guqi
  • Chigarev, Nikolay
  • Savi, E. L.
  • Gusev, Vitaly
  • Bulou, Alain
  • Zerr, Andreas
  • Nikitin, Sergey
  • Lomonosov, Alexey
  • Djemia, Philippe
  • Kuriakose, Maju
  • Campagne, Benjamin
  • Mechri, Charfeddine
  • Faëse, Frédéric
  • Pasquet, Sylvain
  • Mourgues, Régis
  • Bodet, Ludovic
  • Martin, Roland
  • Guérin, Roger
  • Bergamo, Paolo
  • Lys, Elisabeth
  • Durand, Olivier
  • Hilloulin, Benoit
  • Legland, Jean-Baptiste
  • Loukili, Ahmed
  • Grondin, Frederic
  • Abraham, Odile
  • Zhang, Yuxiang
  • Le Duff, Alain
  • Lascoup, Bertrand
  • Grondin, Frédéric
  • Pichard, Hélène
  • Dazel, Olivier
OrganizationsLocationPeople

document

Three-dimensional imaging of inhomogeneities in transparent solids compressed in a DAC by time-domain Brillouin scattering

  • Savi, E. L.
  • Gusev, Vitaly
  • Bulou, Alain
  • Chigarev, Nikolay
  • Raetz, Samuel
  • Tournat, Vincent
Abstract

The time-domain Brillouin scattering (TDBS) is a non-destructive opto-acousto-optic pump-probe technique [1] which allows the study of a variety of transparent materials [2]. In this technique, a femtosecond pump laser pulse, absorbed by an optoacoustic transducer, emits a picosecond acoustic pulse into the sample. The width of this pulse is in nanometric spatial scale. The acoustic pulse reflects a time-delayed probe laser pulse generated by the same or another femtosecond laser. The detected transient reflectivity signal is a result of the interference at the photodetector of probe light reflected by stationary surfaces/interfaces of the sample and of probe light reflected by acoustic pulse. It contains the information on the properties of the material in a time-dependent spatially localized position of the acoustic pulse. Therefore, the technique allows imaging of materials along the acoustic pulse propagation path with a spatial resolution better than optical one. Two dimensional TDBS imaging has been earlier applied for revealing the texture of solid H 2 O [3] and Ar [4], the phase transitions [5] and the pressure dependences of single crystal elastic moduli C ij (P) in water ice up to 82 GPa [6]. We report here the extension of the TDBS technique to the 3D imaging of transparent materials compressed in a DAC. To accelerate the data acquisition and thus to make 3D imaging possible in a reasonable time, we have applied an ultrafast laser technique based on an asynchronous optical sampling (ASOPS). In the ASOPS technique, the time delay between the pump and the probe pulses is controlled electronically by an offset of the repetition rate frequency of two lasers without the use of a mechanical optical delay line. The TBDS experiments described here have been performed using an ASOPS-based picosecond acoustic microscope (JAX-M1, NETA, France). First, TBDS experiments have been realised on water ice compressed in a DAC to 2.1 GPa. An iron plate of ~40 µm thickness and ~110 µm in diameter has been used as an optoacoustic generator. The diameter of the pump and probe laser beams at the surface of the generator was ~1.4 µm. Irradiated by pump laser pulse at 515 nm wavelength, the optoacoustic generator emits picosecond acoustic pulses into the 14.5 µm layer of water ice [5]. The obtained 3D distribution of the Brillouin frequencies in the sample volume with dimensions of 40×40×10 µm 3 is represented in Figure 1 in form of its 3 cross sectional slices. The slices correspond to the average delay times of 0.11 ns, 0.36 ns and 0.74 ns , corresponding to the average depths around Figure 1. 2D maps of the Brillouin frequencies distribution in the 40×40 µm 2 cross sections of the tested ice volume at 2.1 GPa for three shifting time slices. The red line highlights one of the lateral regions with important variations of the Brillouin frequency as a function of the axial distance from the generator, which increases with time delay. 0.6 µm, 2 µm, and 4 µm, respectively. The time durations of the presented cross sectional slices are 0.08 ns, 0.08 ns and 0.14 ns, corresponding to spatial thicknesses of approximately 400 nm, 400 nm, and 750 nm, respectively. The lateral resolution within each cross-section was 2 µm. The total time, needed for the collection of this 3D distribution, was of about 2 hours. The maps of the Brillouin frequencies have been obtained using a time-frequency analysis based on the synchronous detection principle [6]. It is worth noting that while each cross sectional time slice has a constant duration for any lateral coordinate, its spatial thickness and the average axial depth are different in different lateral points because acoustic waves propagate with different velocities in different lateral points. The estimations demonstrate that the highest and the lowest detected Brillouin frequencies correspond to the ice VII,

Topics
  • impedance spectroscopy
  • surface
  • single crystal
  • phase
  • experiment
  • phase transition
  • texture
  • iron