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David Veysset

Massachusetts General Hospital · US
Area of research
Materials Chemistry · Ocean Engineering
Research interest
Research interests include High-Velocity Impact and Material Behavior, Particle Dynamics in Fluid Flows, Planetary Science and Exploration, and High-Temperature Coating Behaviors.
h-index
27
citations
3,496
works
106
NIH funding
primary concept
email

Recent publications

Strength gradient in impact-induced metallic bonding
Nature Communications 2024cited by 24position: middledoi
Metasurface‐Enabled Holographic Lithography for Impact‐Absorbing Nanoarchitected Sheets
Advanced Materials 2023cited by 26position: middledoi
Supersonic impact resilience of nanoarchitected carbon
Nature Materials 2021cited by 162position: middledoi
Strong fatigue-resistant nanofibrous hydrogels inspired by lobster underbelly
Matter 2021cited by 132position: middledoi
High-velocity micro-projectile impact testing
Applied Physics Reviews 2021cited by 109position: firstdoi
Bottom-up design toward dynamically robust polyurethane elastomers
Polymer 2021cited by 24position: middledoi
Modelling of micro-particles perforations into human tissue surrogate: Numerical and analytical aspects
Extreme Mechanics Letters 2021cited by 9position: middledoi
Cleavable comonomers enable degradable, recyclable thermoset plastics
Nature 2020cited by 478position: middledoi
Particle size effects in metallic microparticle impact-bonding
Acta Materialia 2020cited by 88position: middledoi
Microparticle impact-bonding modes for mismatched metals: From co-deformation to splatting and penetration
Acta Materialia 2020cited by 73position: middledoi
The Transition From Rebound to Bonding in High-Velocity Metallic Microparticle Impacts: Jetting-Associated Power-Law Divergence
Journal of Applied Mechanics 2020cited by 69position: middledoi
Surface oxide and hydroxide effects on aluminum microparticle impact bonding
Acta Materialia 2020cited by 67position: middledoi
Publisher Correction: Cleavable comonomers enable degradable, recyclable thermoset plastics
Nature 2020cited by 6position: middledoi
Impact-bonding with aluminum, silver, and gold microparticles: Toward understanding the role of native oxide layer
Applied Surface Science 2019cited by 108position: middledoi
Material hardness at strain rates beyond 106 s−1 via high velocity microparticle impact indentation
Scripta Materialia 2019cited by 102position: middledoi
Laser-driven high-velocity microparticle launcher in atmosphere and under vacuum
International Journal of Impact Engineering 2019cited by 51position: firstdoi
Molecular dependencies of dynamic stiffening and strengthening through high strain rate microparticle impact of polyurethane and polyurea elastomers
Applied Physics Letters 2019cited by 42position: middledoi
Unraveling the high strain-rate dynamic stiffening in select model polyurethanes − the role of intermolecular hydrogen bonding
Polymer 2019cited by 36position: middledoi
Adiabatic shear instability is not necessary for adhesion in cold spray
Acta Materialia 2018cited by 345position: middledoi
Melt-driven erosion in microparticle impact
Nature Communications 2018cited by 126position: middledoi
Extreme Energy Absorption in Glassy Polymer Thin Films by Supersonic Micro-projectile Impact
Materials Today 2018cited by 90position: middledoi
Response to Comment on “Adiabatic shear instability is not necessary for adhesion in cold spray”
Scripta Materialia 2018cited by 89position: middledoi
Molecular influence in the glass/polymer interface design: The role of segmental dynamics
Polymer 2018cited by 24position: middledoi
Simulation of polyurea shock response under high-velocity microparticle impact
AIP conference proceedings 2018cited by 1position: middledoi
In-situ observations of single micro-particle impact bonding
Scripta Materialia 2017cited by 253position: middledoi
Molecular influence in high-strain-rate microparticle impact response of poly(urethane urea) elastomers
Polymer 2017cited by 52position: firstdoi
Acoustical breakdown of materials by focusing of laser-generated Rayleigh surface waves
Applied Physics Letters 2017cited by 16position: firstdoi
Melting Can Hinder Impact-Induced Adhesion
Physical Review Letters 2017cited by 0position: middledoi
Dynamics of supersonic microparticle impact on elastomers revealed by real–time multi–frame imaging
Scientific Reports 2016cited by 102position: firstdoi
Interferometric analysis of laser-driven cylindrically focusing shock waves in a thin liquid layer
Scientific Reports 2016cited by 32position: firstdoi

Grants

No grants ingested yet.

Frequent collaborators

Keith A. Nelson · Massachusetts Institute of Technology28 papers (2012–2021)Steven E. Kooi · Institute for Soldier Nanotechnologies11 papers (2016–2021)Christopher A. Schuh · Massachusetts Institute of Technology11 papers (2017–2020)Yu‐Chen Sun · Beijing Information Science & Technology University10 papers (2019–2021) · 7 papers (2016–2021)Mostafa Hassani · Cornell University6 papers (2019–2024)Mostafa Hassani-Gangaraj · IIT@MIT6 papers (2017–2019)Victor K. Champagne · University of Massachusetts Amherst3 papers (2018–2020)Thomas Pézeril · Massachusetts Institute of Technology3 papers (2012–2017)Timothy M. Swager · Massachusetts Institute of Technology3 papers (2019–2021)A. A. Maznev · Massachusetts Institute of Technology3 papers (2016–2017)Edwin L. Thomas · Texas A&M University3 papers (2012–2021)You-Chi Mason Wu · Massachusetts Institute of Technology3 papers (2019–2021)Weiguo Hu · Ningbo University3 papers (2019–2021)Jet Lem · New York University3 papers (2019–2020)Desirée L. Plata · Massachusetts Institute of Technology2 papers (2020–2020)Wenxu Zhang · Northwest Normal University2 papers (2020–2020)Julia R. Greer · California Institute of Technology2 papers (2021–2023)Peyton Shieh · Massachusetts Institute of Technology2 papers (2020–2020)Keith E. L. Husted · Massachusetts Institute of Technology2 papers (2020–2020)