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Main Authors: Peter, Jonah S., Holzinger, Raphael, Ostermann, Stefan, Yelin, Susanne F.
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2403.00058
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author Peter, Jonah S.
Holzinger, Raphael
Ostermann, Stefan
Yelin, Susanne F.
author_facet Peter, Jonah S.
Holzinger, Raphael
Ostermann, Stefan
Yelin, Susanne F.
contents Light-harvesting via the transport and trapping of optically-induced electronic excitations is of fundamental interest to the design of new energy efficient quantum technologies. Using a paradigmatic quantum optical model, we study the influence of coherence, entanglement, and cooperative dissipation on the transport and capture of excitation energy. In particular, we demonstrate that the rate of energy extraction is optimized under conditions that minimize the quantum coherence and entanglement of the system. We show that this finding is not limited to disordered or high temperature systems but is instead a fundamental consequence of spontaneous parity time-reversal symmetry breaking associated with the quantum-to-classical transition. We then examine the effects of vibrational fluctuations, revealing a strong dephasing assisted transport enhancement for delocalized excitations in the presence of cooperative interactions. Our results highlight the rich, emergent behavior associated with decoherence and may be relevant to the study of biological photosynthetic antenna complexes or to the design of room-temperature quantum devices.
format Preprint
id arxiv_https___arxiv_org_abs_2403_00058
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Examining the quantum signatures of optimal excitation energy transfer
Peter, Jonah S.
Holzinger, Raphael
Ostermann, Stefan
Yelin, Susanne F.
Quantum Physics
Light-harvesting via the transport and trapping of optically-induced electronic excitations is of fundamental interest to the design of new energy efficient quantum technologies. Using a paradigmatic quantum optical model, we study the influence of coherence, entanglement, and cooperative dissipation on the transport and capture of excitation energy. In particular, we demonstrate that the rate of energy extraction is optimized under conditions that minimize the quantum coherence and entanglement of the system. We show that this finding is not limited to disordered or high temperature systems but is instead a fundamental consequence of spontaneous parity time-reversal symmetry breaking associated with the quantum-to-classical transition. We then examine the effects of vibrational fluctuations, revealing a strong dephasing assisted transport enhancement for delocalized excitations in the presence of cooperative interactions. Our results highlight the rich, emergent behavior associated with decoherence and may be relevant to the study of biological photosynthetic antenna complexes or to the design of room-temperature quantum devices.
title Examining the quantum signatures of optimal excitation energy transfer
topic Quantum Physics
url https://arxiv.org/abs/2403.00058