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Evidence of directional structural superlubricity and L\'evy flights in a van der Waals heterostructure

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arxiv 2406.16709 v2 pith:EJGPBZXF submitted 2024-06-24 cond-mat.mes-hall cond-mat.mtrl-sci

Evidence of directional structural superlubricity and L\'evy flights in a van der Waals heterostructure

classification cond-mat.mes-hall cond-mat.mtrl-sci
keywords structuralsuperlubricitycrystalsdirectionalwaalsalphabismutheneevidence
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Structural superlubricity is a special frictionless contact in which two crystals are in incommensurate arrangement such that relative in-plane translation is associated with vanishing energy barrier crossing. So far, it has been realized in multilayer graphene and other van der Waals two-dimensional crystals with hexagonal or triangular crystalline symmetries, leading to isotropic frictionless contacts. Directional structural superlubricity, to date unrealized in two-dimensional systems, is possible when the reciprocal lattices of the two crystals coincide in one direction only. Here, we evidence directional structural superlubricity a $\alpha$-bismuthene/graphite van der Waals system, manifested by spontaneous hopping of the islands over hundreds of nanometres at room temperature, resolved by low-energy electron microscopy and supported by registry simulations. Statistical analysis of individual and collective $\alpha$-bismuthene islands populations reveal a heavy-tailed distribution of the hopping lengths and sticking times indicative of L{\'e}vy flight dynamics, largely unobserved in condensed-matter systems.

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