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Quantum Networks
Connectivity--Interference Competition in Coherent Transport on Percolated Hierarchical Small-World Networks
arXiv
Authors: Miquéias Jacinto Cirino, Marcos César de Oliveira
Year
2026
Paper ID
76627
Status
Preprint
Abstract Read
~2 min
Abstract Words
162
Citations
N/A
Abstract
Adding links generally improves classical transport by increasing the number of available paths. We show that coherent quantum transport can display the opposite behavior. Using continuous-time quantum walks on a percolated hierarchical small-world network, we identify a coherent overconnectivity penalty: root-to-boundary transport is maximized at intermediate bond probability and decreases as the network approaches full connectivity. The effect is quantified by the final-layer limiting probability χN and by the penalty PQ=1-χN\(p=1\)/maxpχN(p), which measures the loss caused by making the architecture fully connected. The optimum results from a competition between shortcut-assisted spreading and interference-induced intra-layer recirculation. Spectral analysis shows that bond dilution creates motif-induced degeneracies and reorganizes the eigenstates connecting the root to the outermost layer. A comparison with dephased and classical transport shows that the non-monotonic landscape is not a purely geometrical percolation effect, but a coherent architecture-dependent phenomenon. These results provide a design principle for coherent transport in disordered photonic and quantum-network architectures.
Why This Paper Matters
- This paper contributes to the Quantum Networks research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Adding links generally improves classical transport by increasing the number of available paths.
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