Vortex-core Majorana coupling to a chiral edge in a px+ipy superconductor: Nonmonotonic spectral reorganization and coherent fermion-parity dynamics
Peiyao Liu, Yi Zhou
Abstract
We study how vortex--edge coupling reorganizes the low-energy sector of a finite two-dimensional \(px+ipy\) superconducting disk as a function of the vortex--boundary separation \(d\) and examine what this reorganization implies for the parity memory associated with a prescribed vortex-core Majorana wave packet, a resource relevant to Majorana-based quantum operations. Bogoliubov--de Gennes calculations reveal nonmonotonic core--edge reorganization of the lowest positive-energy finite-disk eigenstate, with particularly rapid variation near \(d7ξ\), where \(ξ\) is the coherence length. To separate this eigenstate reorganization from the spectral representation of a prescribed state, we rigidly translate a centered-vortex core-reference packet to each fixed vortex position, restrict it to the target disk, and project it, without intermediate normalization, onto the particle-hole-complete low-energy subspace. For \(Δ0/EF=0.36\) and disk radius \(R=30ξ\), the resulting retained norm exceeds \(0.98\) at all six sampled separations, \(4.25≤ d/ξ≤8.25\), while, depending on \(d\), the spectral measure is concentrated near zero energy, fragmented over several low-energy levels, or dominated by finite-energy weight. Correspondingly, the signed parity correlator displays slow temporal variation, rapid coherent dephasing, or sign-changing oscillations, with possible finite-size recurrences at later times. Thus a large retained norm does not by itself imply spectral concentration or persistent parity memory.
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