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Pierre-Adrien Mante

Researcher at Lund University

Publications -  39
Citations -  620

Pierre-Adrien Mante is an academic researcher from Lund University. The author has contributed to research in topics: Phonon & Femtosecond. The author has an hindex of 13, co-authored 36 publications receiving 511 citations. Previous affiliations of Pierre-Adrien Mante include Centre national de la recherche scientifique & National Taiwan University.

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Electron–acoustic phonon coupling in single crystal CH3NH3PbI3 perovskites revealed by coherent acoustic phonons

TL;DR: A method to measure the electron and hole deformation potentials using coherent acoustic phonons generated by femtosecond laser pulses and calculates the carrier intrinsic mobility and compares it to the reported experimental and theoretical values is developed.
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Complete thin film mechanical characterization using picosecond ultrasonics and nanostructured transducers: experimental demonstration on SiO2

TL;DR: In this article, the authors performed complete mechanical measurements in submicron films using the picosecond ultrasonic technique, where the Al layer deposited on the top of the sample acting as a transducer was replaced with a nanostructured Al film.
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Probing Hydrophilic Interface of Solid/ Liquid-Water by Nanoultrasonics

TL;DR: This work performed a complete mapping of the viscoelastic properties and of the density in the whole interfacial water region at hydrophilic surfaces and suggests that water in the interfacial region possesses mixed properties.
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THz acoustic phonon spectroscopy and nanoscopy by using piezoelectric semiconductor heterostructures

TL;DR: The first experimental observation of coherent acoustic phonon generated by the absorption of ultrashort light pulses in piezoelectric heterostructures is presented and some methods developed to realize customizable phonon generation are presented.
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Collective acoustic modes in various two-dimensional crystals by ultrafast acoustics : Theory and experiment

TL;DR: In this paper, the elastic properties of two-dimensional phononic crystals made of aluminum nanocube lattices were studied and the collective modes resulting from the coupling between cubes inside the crystal were analyzed using ultrafast acoustics.