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Distinct Modes of Quantum Information Transfer in Power-Law Long-Range Spin Networks
arXiv
Authors: E. E. Marshall, C. C. Nelmes, T. J. G. Apollaro, T. P. Spiller, I. D'Amico
Year
2026
Paper ID
76631
Status
Preprint
Abstract Read
~2 min
Abstract Words
165
Citations
N/A
Abstract
We identify different regimes of quantum state transfer in long-range coupled spin-frac{1}{2} systems, where naturally occurring power-law interactions enable rapid, high-fidelity transfer with minimal engineering. Across a broad range of interaction profiles, from effectively nearest-neighbour coupling to Coulomb interactions, we show how long-range connectivity fundamentally reshapes the mechanisms underlying information propagation within such systems. For effectively short-range interactions, transfer follows familiar ballistic transfer dynamics: an initially localised excitation spreads across many eigenmodes concentrated within the approximately linear region of the spectrum, enabling robust wavepacket motion. In contrast, increasing long-distance interactions via lowering the power-law exponent α $α=1-2$ drives a striking transformation, where the initial state becomes confined to progressively fewer eigenmodes, ultimately reducing the dynamics to the coherent participation of only a few states corresponding to the highest eigenenergies. This spectral localization gives rise to emergent long-range oscillations between distant sites, revealing a distinct - and faster - transfer mechanism arising from the intrinsic structure of long-range quantum interactions rather than from full-system engineering pathways.
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- We identify different regimes of quantum state transfer in long-range coupled spin-frac12 systems, where naturally occurring power-law interactions enable rapid, high-fidelity...
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