In this study, molecular dynamics simulations were used to examine glass formation in equiatomic Ni.Mn alloy across system sizes of 4000–16384 atoms, cooling rates of 5×10
12
–10
14
K s
–1
, and isothermal annealing at 600, 700, and 800 K. Increasing the model size improves the statistical sampling of local structural ordering and reduces finite-size fluctuations, although the degree of local structural order does not increase monotonically with system size. An apparent glass transition temperature of approximately 708 K was determined from the energy-versus-temperature curve at a cooling rate of 10
13
K s
–1
, with the data-fitting window spanning roughly 680–780 K; indicating that this value represents a protocol-dependent kinetic crossover rather than an equilibrium glass-transition temperature. The Warren–Cowley parameter reaches α
1
≈ –0.09 at 300 K, indicating a moderate yet persistent tendency toward the formation of unlike Ni–Mn bonds—a tendency that becomes kinetically arrested as the transition temperature is approached. Common-neighbor analysis shows that the combined fraction of FCC/HCP/BCC-like environments increases from ≈ 3% under rapid quenching (10
14
K s
–1
) to ≈ 48% under slower cooling, corresponding to an approximately sixteen-fold increase in the fraction of CNA-identified locally ordered environments. Meanwhile, the bond-orientational order parameter (〈Q
6
〉 ≈ 0.15–0.17) remains substantially below that of ideal crystals, indicating enhanced short-range ordering without long-range crystallization. These findings demonstrate that system size, thermal history, and cooling rate collectively regulate local structural ordering and glass formation in binary Ni–Mn alloys.
Mai Van Dung· International Journal of Mod...· 0 citations
In this work, the melting behavior of equiatomic Ag-Zr is investigated by molecular dynamics simulations through a combined analysis of thermodynamic response, local structure, chemical short-range order, and atomic dynamics. A characteristic thermodynamic melting temperature near 1400 K is identified from the heat-capacity maximum within a broader melting interval of ~1350-1500 K, as supported by the consistent evolution of energy, heat capacity, and atomicscale descriptors. The transition is initiated by the destabilization of the first-neighbor coordination structure, manifested by a reduction in coordination number, collapse of chemical short-range order, and increased heteroatomic mixing. This local instability is accompanied by the attenuation of medium-range correlations, the depletion of CNA-identified crystalline environments, and a reduction in bond-orientational order. These structural and chemical changes occur within the same melting range of ~1350-1500 K and are accompanied by a pronounced dynamical crossover, characterized by a rapid decrease in structural relaxation time and the onset of fast configurational decorrelation. The results demonstrate that melting in Ag-Zr is governed by a cooperative structural-chemical-dynamical instability rather than by a single thermodynamic or displacement-based criterion.
Mai Van Dung· Modelling and Simulation in...· 0 citations
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