Area of research
Materials Chemistry · Mechanical Engineering
Research interest
Research focused on Dislocation and Ductility (Earth science), with related work in Ultimate tensile strength, Ferroelectricity, Pseudoelasticity. Notable publications include 'Nanostructured high-strength molybdenum alloys with unprecedented tensile ductility', 'The evolving quality of frictional contact with graphene', and 'Super-elastic ferroelectric single-crystal membrane with continuous electric dipole rotation'.
Giant negative thermal expansion exceeding 1000 K in PrMnO3 via synergy of local structure distortion and orbital disordering
Uniting tensile ductility with ultrahigh strength via composition undulation
Highly stable coherent nanoprecipitates via diffusion-dominated solute uptake and interstitial ordering
Solute cluster evolution during deformation and high strain hardening capability in naturally aged Al–Zn–Mg alloy
Nanoscale bubble domains with polar topologies in bulk ferroelectrics
Unusual activated processes controlling dislocation motion in body-centered-cubic high-entropy alloys
Periodic Wrinkle‐Patterned Single‐Crystalline Ferroelectric Oxide Membranes with Enhanced Piezoelectricity
Super-elastic ferroelectric single-crystal membrane with continuous electric dipole rotation
Stabilizing nanoprecipitates in Al-Cu alloys for creep resistance at 300°C
The evolving quality of frictional contact with graphene
Hydrogenated vacancies lock dislocations in aluminium
Sample size effects on strength and deformation mechanism of Sc75Fe25 nanoglass and metallic glass
The interaction of dislocations and hydrogen-vacancy complexes and its importance for deformation-induced proto nano-voids formation in α-Fe
Liquid-like pseudoelasticity of sub-10-nm crystalline silver particles
Plasticity of a scandium-based nanoglass
Nanostructured high-strength molybdenum alloys with unprecedented tensile ductility
Visualizing size-dependent deformation mechanism transition in Sn
Real-time, high-resolution study of nanocrystallization and fatigue cracking in a cyclically strained metallic glass
Sample size matters for Al88Fe7Gd5 metallic glass: Smaller is stronger
Sample size effects on the large strain bursts in submicron aluminum pillars