An effort has been made to reassess the phase predicting capability of various thermodynamic and topological parameters across a wide range of HEA systems. These parameters are valence electron concentration, atomic mismatch (delta), electronegativity difference (Delta chi), mixing entropy (Delta S (mix)), entropy of fusion (Delta S (f)), and mismatch entropy (S (sigma) ). In continuation of that, two new parameters (a) Modified Darken-Gurry parameter (A = S sigma * chi) and (b) Modified Mismatch Entropy parameter (B = delta* S sigma) have been designed to predict the stable crystal structure that would form in the HEA systems considered for assessment. (C) The Minerals, Metals & Materials Society and ASM International 201
High Entropy Alloys (HEA) are alloy systems that are formed with five or more principal elements of ...
International audienceHigh Entropy Alloys (HEA) can be classified in three domains according to thei...
This chapter gives an overview of existing active phase formation rules for high-entropy alloys (HEA...
We develop a strategy to design and evaluate high-entropy alloys (HEAs) for structural use in the tr...
High Entropy Alloys (HEAs) are multicomponent systems incorporating several elements in a nearly equ...
Multi-principal elemental alloys, commonly referred to as high-entropy alloys (HEAs), are a new clas...
The stability of topological close-packed (TCP) phases were found to be well related to the average ...
The stability of topological close-packed (TCP) phases were found to be well related to the average ...
International audienceAccording to a recent Hume-Rothery approach, the electron concentration, e/a, ...
Lattice distortion in high entropy alloys (HEAs) is one of their main crystallographic features. Its...
International audienceAccording to a recent Hume-Rothery approach, the electron concentration, e/a, ...
High-entropy alloys (HEAs) are composed of multi-principal elements with equal or near-equal concent...
In recent years, people have tended to adjust the degree of order/disorder to explore new materials....
Abstract The novel class of alloys known as high entropy alloys (HEAs) present two fundamental p...
High-entropy alloys (HEAs) are described as alloys containing multi-principal elements in equal or c...
High Entropy Alloys (HEA) are alloy systems that are formed with five or more principal elements of ...
International audienceHigh Entropy Alloys (HEA) can be classified in three domains according to thei...
This chapter gives an overview of existing active phase formation rules for high-entropy alloys (HEA...
We develop a strategy to design and evaluate high-entropy alloys (HEAs) for structural use in the tr...
High Entropy Alloys (HEAs) are multicomponent systems incorporating several elements in a nearly equ...
Multi-principal elemental alloys, commonly referred to as high-entropy alloys (HEAs), are a new clas...
The stability of topological close-packed (TCP) phases were found to be well related to the average ...
The stability of topological close-packed (TCP) phases were found to be well related to the average ...
International audienceAccording to a recent Hume-Rothery approach, the electron concentration, e/a, ...
Lattice distortion in high entropy alloys (HEAs) is one of their main crystallographic features. Its...
International audienceAccording to a recent Hume-Rothery approach, the electron concentration, e/a, ...
High-entropy alloys (HEAs) are composed of multi-principal elements with equal or near-equal concent...
In recent years, people have tended to adjust the degree of order/disorder to explore new materials....
Abstract The novel class of alloys known as high entropy alloys (HEAs) present two fundamental p...
High-entropy alloys (HEAs) are described as alloys containing multi-principal elements in equal or c...
High Entropy Alloys (HEA) are alloy systems that are formed with five or more principal elements of ...
International audienceHigh Entropy Alloys (HEA) can be classified in three domains according to thei...
This chapter gives an overview of existing active phase formation rules for high-entropy alloys (HEA...