A Thermodynamic-Limit Pinning Criterion for Two-Dimensional Structural Superlubricity
Li Wang, Yunjie Ye
Abstract
Incommensurability and elastic reconstruction do not by themselves define a structurally superlubric phase. We define fully sliding and pinned zero-temperature phases by A∞τ dep(A)=0 and A∞τ dep(A)>0, respectively; Λn=|Vn|Gn,i[D rel-1( qn)]ijGn,j measures only reconstruction susceptibility. Translational covariance then proves that a clean, smooth, infinite moiré continuum can reconstruct without acquiring a bulk sliding barrier. We restore atomic sampling in a two-dimensional discrete model of graphene/hBN and test both a diffusion quantum Monte Carlo first-star potential and a 15-harmonic Leven potential across three rational approximants and five directions. No physical-coupling equilibrium or metastable barrier is resolved. The Leven spectrum raises the largest tested Λ from 0.142 to 0.212, while artificial scaling through Λ=1 reaches uncontrolled strain before a size-independent threshold appears. The tested zero-temperature in-plane models are therefore consistent with an elastically relaxed sliding regime; Λ=1 is a reconstruction scale, not a static phase criterion.
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