High hardness and toughness are generally considered mutually exclusive properties for single-crystal ceramics. Combining experiments and ab initio molecular dynamics (AIMD) atomistic simulations at room temperature, we demonstrate that both the hardness and toughness of single-crystal NaCl-structure VNx/MgO(001) thin films are simultaneously enhanced through the incorporation of anion vacancies. Nanoindentation results show that VN0.8, here considered as representative understoichiometric VNx system, is approximate to 20% harder, as well as more resistant to fracture than stoichiometric VN samples. AIMD modeling of VN and VN0.8 supercells subjected to [001] and [110] elongation reveal that the tensile strengths of the two materials are sim...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Transition metal (TM) nitrides, due to their unique combination of remarkable physical properties an...
High hardness and toughness are generally considered mutually exclusive properties for single-crysta...
High hardness and toughness are generally considered mutually exclusive properties for single-crysta...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Over the past decades, enormous effort has been dedicated to enhancing the hardness of refractory ce...
Over the past decades, enormous effort has been dedicated to enhancing the hardness of refractory ce...
Interfaces between components of a material govern its mechanical strength and fracture resistance. ...
Interfaces between components of a material govern its mechanical strength and fracture resistance. ...
iii Transition-metal nitrides are known for their high hardness, good wear resistance, high-temperat...
Bottom-up design of high-entropy ceramics is a promising approach for realizing materials with uniqu...
Bottom-up design of high-entropy ceramics is a promising approach for realizing materials with uniqu...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Transition metal (TM) nitrides, due to their unique combination of remarkable physical properties an...
High hardness and toughness are generally considered mutually exclusive properties for single-crysta...
High hardness and toughness are generally considered mutually exclusive properties for single-crysta...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Hard refractory transition-metal nitrides possess unique combinations of outstanding mechanical and ...
Over the past decades, enormous effort has been dedicated to enhancing the hardness of refractory ce...
Over the past decades, enormous effort has been dedicated to enhancing the hardness of refractory ce...
Interfaces between components of a material govern its mechanical strength and fracture resistance. ...
Interfaces between components of a material govern its mechanical strength and fracture resistance. ...
iii Transition-metal nitrides are known for their high hardness, good wear resistance, high-temperat...
Bottom-up design of high-entropy ceramics is a promising approach for realizing materials with uniqu...
Bottom-up design of high-entropy ceramics is a promising approach for realizing materials with uniqu...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Structural phase transitions in epitaxial stoichiometric VN/MgO(011) thin films are investigated usi...
Transition metal (TM) nitrides, due to their unique combination of remarkable physical properties an...