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Atomistic Structural Evolution and Glass Transition in Ni-Mn Alloy under Different Cooling and Annealing Conditions

Sep 2026 · International Journal of Modern Physics B · 0 citations

Abstract

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.

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