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Structural evolution and stability of PtCo clusters from global optimization and DFT insights

2026 · Vol 101 · 0 citations · 44 references
Physics

Abstract

The structural optimization of bimetallic clusters requires the simultaneous exploration of atomic coordinates and chemical ordering. Here, an improved differential evolution algorithm with a multi-subpopulation collaborative architecture is applied to PtCo clusters at two representative magic sizes, N= 13 and N= 38. The algorithm combines differentiated mutation strategies, adaptive Pt–Co atom exchange, inter-subpopulation information sharing, and local relaxation. Benchmark and ablation tests show that the atom-exchange operation is particularly important for improving the reliability and convergence rate of the search. The optimized structures reveal a marked contrast between the two sizes: the N =13 clusters retain an icosahedral framework across the compositional range, whereas the N = 38 clusters exhibit composition-dependent fcc-like, mixed, and disordered motifs. The calculated excess energies indicate favorable Pt–Co mixing over a broad range of compositions. Structural descriptors and electronic-structure calculations further associate the enhanced stability of mixed clusters with abundant heteroatomic coordination, charge redistribution, and Pt–Co d-state interactions. These results provide a computational framework for examining how composition influences structure and stability in bimetallic clusters.

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