We report results of a systematic study for vibrational thermodynamic functions of Cu-Ni alloys, in the harmonic approximation, using interaction potentials based on the embedded atom method with improved optimization techniques. The vibrational density of states of the systems is calculated using real space Green’s function method. From an investigation of local force fields we found that increasing Ni concentration in the alloy substantially stiffens the force experienced by Cu atoms compared to that of Ni atoms. Our calculations also reveal that vibrational entropy change between ordered and disordered crystals of Cu-Ni is negligible. However, the mixing entropy of the...
The binding energy, equilibrium geometry, and vibration frequencies of free clusters Cu n (2 ≤ n ≤ 2...
The activity of nickel in solid Cu–Ni alloys has been measured at 1000 K using a solid state galvani...
We present vibrational dynamics and thermodynamics for the (1 0 0) surfaces of Cu, Ag, Pd, Pt and Au...
We report results of a systematic study for vibrational thermodynamic functions of Cu-Ni alloys, in ...
The heat capacities of two samples of a fcc CuZn alloy with the composition CuZn15 and CuZn34 were m...
Thesis (Ph.D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2...
The structure, vibrational dynamics and thermodynamics of a chiral surface, Cu(532), have been calcu...
The activity of Ni in solid Cu-Ni alloys was measured at 1000 K using a solid state galvanic cell in...
The structure, vibrational dynamics and thermodynamics of a chiral surface, Cu(532), have been calcu...
AbstractThe heat capacities of two samples of a fcc Cu–Zn alloy with the composition CuZn15 and CuZn...
L12 ordered Cu3Au and fcc-disordered samples with different degrees of short-range order were synthe...
A semi-empirical interatomic potential, the MEAM, has been applied to obtain an interatomic potentia...
The literature on vibrational thermodynamics of materials is reviewed. The emphasis is on metals and...
We report results of a systematic study of structural, vibrational and thermodynamical properties of...
Phonon frequencies of Pd-Ni alloys are calculated by molecular dynamics (MD) simulation. Lattice dyn...
The binding energy, equilibrium geometry, and vibration frequencies of free clusters Cu n (2 ≤ n ≤ 2...
The activity of nickel in solid Cu–Ni alloys has been measured at 1000 K using a solid state galvani...
We present vibrational dynamics and thermodynamics for the (1 0 0) surfaces of Cu, Ag, Pd, Pt and Au...
We report results of a systematic study for vibrational thermodynamic functions of Cu-Ni alloys, in ...
The heat capacities of two samples of a fcc CuZn alloy with the composition CuZn15 and CuZn34 were m...
Thesis (Ph.D.)--Massachusetts Institute of Technology, Dept. of Materials Science and Engineering, 2...
The structure, vibrational dynamics and thermodynamics of a chiral surface, Cu(532), have been calcu...
The activity of Ni in solid Cu-Ni alloys was measured at 1000 K using a solid state galvanic cell in...
The structure, vibrational dynamics and thermodynamics of a chiral surface, Cu(532), have been calcu...
AbstractThe heat capacities of two samples of a fcc Cu–Zn alloy with the composition CuZn15 and CuZn...
L12 ordered Cu3Au and fcc-disordered samples with different degrees of short-range order were synthe...
A semi-empirical interatomic potential, the MEAM, has been applied to obtain an interatomic potentia...
The literature on vibrational thermodynamics of materials is reviewed. The emphasis is on metals and...
We report results of a systematic study of structural, vibrational and thermodynamical properties of...
Phonon frequencies of Pd-Ni alloys are calculated by molecular dynamics (MD) simulation. Lattice dyn...
The binding energy, equilibrium geometry, and vibration frequencies of free clusters Cu n (2 ≤ n ≤ 2...
The activity of nickel in solid Cu–Ni alloys has been measured at 1000 K using a solid state galvani...
We present vibrational dynamics and thermodynamics for the (1 0 0) surfaces of Cu, Ag, Pd, Pt and Au...