Chirality-bolstered quantum Zeno effect enhances radical pair-based magnetoreception

Fuente: arXiv
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Main Authors: Smith, Luke D., Tallapudi, Sukesh, Denton, Matt C. J., Kattnig, Daniel R.
Format: Preprint
Published: 2025
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_version_ 1866910926508130304
author Smith, Luke D.
Tallapudi, Sukesh
Denton, Matt C. J.
Kattnig, Daniel R.
author_facet Smith, Luke D.
Tallapudi, Sukesh
Denton, Matt C. J.
Kattnig, Daniel R.
contents Radical pairs in the flavoprotein cryptochrome are central to various magnetically sensitive biological processes, including the proposed mechanism of avian magnetoreception. Cryptochrome's molecular chirality has been hypothesized to enhance magnetic field effects via the chirality-induced spin selectivity (CISS) effect, yet the mechanism underlying this enhancement remains unresolved. In this work, we systematically investigate the impact of CISS on the directional magnetic sensitivity of prototypical radical pair reactions, analyzing two distinct models--one generating spin polarization and, for the first time, one generating coherence. We find that CISS-induced spin polarization significantly enhances magnetic sensitivity by introducing triplet character into the initial state and reinforcing the quantum Zeno effect, paralleling enhancements observed in triplet-born radical pairs subject to strongly asymmetric recombination. In contrast, CISS-generated spin coherence does not provide a significant improvement in sensitivity. These findings indicate that CISS is not itself a universal enhancer of sensitivity or coherence in radical-pair reactions, and its influence must be evaluated case by case, particularly in relation to the quantum Zeno effect. Additionally, we provide a unified interpolation scheme for modeling CISS-influenced initial states and recombination dynamics, encompassing the principal models currently discussed in the literature for singlet and triplet precursors.
format Preprint
id arxiv_https___arxiv_org_abs_2505_01519
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Chirality-bolstered quantum Zeno effect enhances radical pair-based magnetoreception
Smith, Luke D.
Tallapudi, Sukesh
Denton, Matt C. J.
Kattnig, Daniel R.
Quantum Physics
Biological Physics
Radical pairs in the flavoprotein cryptochrome are central to various magnetically sensitive biological processes, including the proposed mechanism of avian magnetoreception. Cryptochrome's molecular chirality has been hypothesized to enhance magnetic field effects via the chirality-induced spin selectivity (CISS) effect, yet the mechanism underlying this enhancement remains unresolved. In this work, we systematically investigate the impact of CISS on the directional magnetic sensitivity of prototypical radical pair reactions, analyzing two distinct models--one generating spin polarization and, for the first time, one generating coherence. We find that CISS-induced spin polarization significantly enhances magnetic sensitivity by introducing triplet character into the initial state and reinforcing the quantum Zeno effect, paralleling enhancements observed in triplet-born radical pairs subject to strongly asymmetric recombination. In contrast, CISS-generated spin coherence does not provide a significant improvement in sensitivity. These findings indicate that CISS is not itself a universal enhancer of sensitivity or coherence in radical-pair reactions, and its influence must be evaluated case by case, particularly in relation to the quantum Zeno effect. Additionally, we provide a unified interpolation scheme for modeling CISS-influenced initial states and recombination dynamics, encompassing the principal models currently discussed in the literature for singlet and triplet precursors.
title Chirality-bolstered quantum Zeno effect enhances radical pair-based magnetoreception
topic Quantum Physics
Biological Physics
url https://arxiv.org/abs/2505.01519