Coupled Sublattice Melting and Charge-Order Transition in Two Dimensions

Two-dimensional melting is one of the most fascinating and poorly understood phase transitions in nature. Theoretical investigations often point to a two-step melting scenario involving unbinding of topological defects at two distinct temperatures. Here, we report on a novel melting transition of a...

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Veröffentlicht in:Physical review letters 2020-03, Vol.124 (9), p.097602-097602, Article 097602
Hauptverfasser: Smith, T S, Ming, F, Trabada, D G, Gonzalez, C, Soler-Polo, D, Flores, F, Ortega, J, Weitering, H H
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Sprache:eng
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Zusammenfassung:Two-dimensional melting is one of the most fascinating and poorly understood phase transitions in nature. Theoretical investigations often point to a two-step melting scenario involving unbinding of topological defects at two distinct temperatures. Here, we report on a novel melting transition of a charge-ordered K-Sn alloy monolayer on a silicon substrate. Melting starts with short-range positional fluctuations in the K sublattice while maintaining long-range order, followed by longer-range K diffusion over small domains, and ultimately resulting in a molten sublattice. Concomitantly, the charge order of the Sn host lattice collapses in a multistep process with both displacive and order-disorder transition characteristics. Our combined experimental and theoretical analysis provides a rare insight into the atomistic processes of a multistep melting transition of a two-dimensional materials system.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.124.097602