Time-Fractional Schr\"odinger Evolution in Coupled Double Quantum Dots: Memory Effects on Quantum Resources
Abstract
Our work explore the time evolution of entanglement, local quantum uncertainty, and correlated coherence, within a system modeled by two double quantum dots. The dynamics is represented using a time-fractional Schr\"odinger equation, which includes memory effects in a non-Markovian regime. We vary the fractional parameter , the tunneling amplitudes and , as well as the inter-dot interaction strength , to investigate how these key parameters govern the generation, stabilization, and decay of quantum resources within the system. The obtained results reveal that, for both initial states, fractional dynamics with a low rapidly generates entanglement expecting maximal values and non-classical correlations quantified by local quantum uncertainty. Conversely, higher values of lead to slower entanglement but memory effects allow quantum resources to remain significant for a longer time, with the negativity remaining above (). We also find that higher interaction frequencies accelerate correlations and stabilize coherence, while a strong tunneling asymmetry degrades entanglement and coherence despite the initial benefits of increasing quantum resources.
Cite
@article{arxiv.2605.05083,
title = {Time-Fractional Schr\"odinger Evolution in Coupled Double Quantum Dots: Memory Effects on Quantum Resources},
author = {Abdessamie Chhieb and Mostafa Mansour and Mohamed Ouchrif},
journal= {arXiv preprint arXiv:2605.05083},
year = {2026}
}