Robustness of the avian compass function described by radical pair model against biomagnetic noise

Fuente: arXiv
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Main Authors: Yoshida, Tokio, Kunimi, Masaya, Nikuni, Tetsuro
Format: Preprint
Published: 2025
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author Yoshida, Tokio
Kunimi, Masaya
Nikuni, Tetsuro
author_facet Yoshida, Tokio
Kunimi, Masaya
Nikuni, Tetsuro
contents The magnetic sensing mechanism proposed to exist in avian eyes functions as a compass that detects the geomagnetic inclination aiding their migration. This mechanism is modeled by a quantum spin model known as the radical pair (RP) model. This model suggests that information about geomagnetic inclination is transmitted as biochemical signals via spin-selective recombination of the RP. However, as a delicate quantum system in a warm and noisy in vivo environment, the RP model is likely to be subject to unavoidable environmental noise. In this study, we develop a model that incorporates environmental magnetic noise, based on a Lindblad-type master equation. Our model includes the type of biological tissue and the temperature of the biological system as parameters, accounting for their effects. The results of numerical calculations indicate that the compass function of the RP model is robust against intrinsic magnetic noise arising from thermal fluctuations in the electromagnetic field within realistic biomagnetic range. However, noise from an environmental magnetic field far exceeding the biological magnetic range, on the order of hundreds to thousands of $μ$T, significantly affects and disrupts the compass function. This work provides a foundation for quantifying environmental influences on open quantum systems in biological settings and offers a tool for connecting experimental measurements of environmental magnetic fields with quantum noise modeling.
format Preprint
id arxiv_https___arxiv_org_abs_2503_08730
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robustness of the avian compass function described by radical pair model against biomagnetic noise
Yoshida, Tokio
Kunimi, Masaya
Nikuni, Tetsuro
Biological Physics
Quantum Physics
The magnetic sensing mechanism proposed to exist in avian eyes functions as a compass that detects the geomagnetic inclination aiding their migration. This mechanism is modeled by a quantum spin model known as the radical pair (RP) model. This model suggests that information about geomagnetic inclination is transmitted as biochemical signals via spin-selective recombination of the RP. However, as a delicate quantum system in a warm and noisy in vivo environment, the RP model is likely to be subject to unavoidable environmental noise. In this study, we develop a model that incorporates environmental magnetic noise, based on a Lindblad-type master equation. Our model includes the type of biological tissue and the temperature of the biological system as parameters, accounting for their effects. The results of numerical calculations indicate that the compass function of the RP model is robust against intrinsic magnetic noise arising from thermal fluctuations in the electromagnetic field within realistic biomagnetic range. However, noise from an environmental magnetic field far exceeding the biological magnetic range, on the order of hundreds to thousands of $μ$T, significantly affects and disrupts the compass function. This work provides a foundation for quantifying environmental influences on open quantum systems in biological settings and offers a tool for connecting experimental measurements of environmental magnetic fields with quantum noise modeling.
title Robustness of the avian compass function described by radical pair model against biomagnetic noise
topic Biological Physics
Quantum Physics
url https://arxiv.org/abs/2503.08730