Area of research
Ceramics and Composites · Materials Chemistry
Research interest
Research interests include Materials science, Ceramic, Phase (matter), Eutectic system, Chemistry, and Solid solution.
Sterically Stabilized (Zr,Ti)-(Al,Sn,Pb,Bi)-C MAX Phase Solid Solutions with Zn Additions and Enhanced Chemical Complexity on the A-Site
Upscaled Synthesis Protocol for Phase‐Pure, Colloidally Stable MXenes with Long Shelf Lives
Chemically complex double solid solution MAX phase-based ceramics in the (Ti,Zr,Hf,V,Nb)-(Al,Sn)-C system
Synthesis of MAX phase-based ceramics from early transition metal hydride powders
Early stages of dissolution corrosion in 316L and DIN 1.4970 austenitic stainless steels with and without anticorrosion coatings in static liquid lead-bismuth eutectic (LBE) at 500 °C
Compatibility of Zr2AlC MAX phase-based ceramics with oxygen-poor, static liquid lead–bismuth eutectic
Synthesis and Characterization of Double Solid Solution (Zr,Ti)<sub>2</sub>(Al,Sn)C MAX Phase Ceramics
Interaction of Mn+1AXn phases with oxygen-poor, static and fast-flowing liquid lead-bismuth eutectic
Synthesis, properties and thermal decomposition of the Ta<sub>4</sub>AlC<sub>3</sub> MAX phase
The stability of irradiation-induced defects in Zr3AlC2, Nb4AlC3 and (Zr0.5,Ti0.5)3AlC2 MAX phase-based ceramics
Ta-based 413 and 211 MAX phase solid solutions with Hf and Nb
Orientation relationship of the austenite-to-ferrite transformation in austenitic stainless steels due to dissolution corrosion in contact with liquid Pb-Bi eutectic
Theoretical Prediction and Synthesis of (Cr<sub>2/3</sub>Zr<sub>1/3</sub>)<sub>2</sub>AlC <i>i</i>-MAX Phase
The double solid solution (Zr, Nb)2(Al, Sn)C MAX phase: a steric stability approach
Effect of deformation twinning on dissolution corrosion of 316L stainless steels in contact with static liquid lead-bismuth eutectic (LBE) at 500 °C
Dissolution corrosion of 316L austenitic stainless steels in contact with static liquid lead-bismuth eutectic (LBE) at 500 °C
Synthesis of MAX Phases in the Zr-Ti-Al-C System
Reactive spark plasma sintering of Ti3SnC2, Zr3SnC2 and Hf3SnC2 using Fe, Co or Ni additives
Nanolaminated ternary carbide (MAX phase) materials for high temperature applications
Synthesis of the new MAX phase Zr 2 AlC
Synthesis of MAX Phases in the Hf–Al–C System
(Nb<sub><i>x</i></sub>, Zr<sub>1–<i>x</i></sub>)<sub>4</sub>AlC<sub>3</sub> MAX Phase Solid Solutions: Processing, Mechanical Properties, and Density Functional Theory Calculations
Synthesis of the novel Zr 3 AlC 2 MAX phase
A new method to texture dense M+1AX ceramics by spark plasma deformation