Interradical motion can push magnetosensing precision towards quantum limits

Fuente: arXiv
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Auteurs principaux: Smith, Luke D., Chowdhury, Farhan T., Glatthard, Jonas, Kattnig, Daniel R.
Format: Preprint
Publié: 2025
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author Smith, Luke D.
Chowdhury, Farhan T.
Glatthard, Jonas
Kattnig, Daniel R.
author_facet Smith, Luke D.
Chowdhury, Farhan T.
Glatthard, Jonas
Kattnig, Daniel R.
contents Magnetosensitive spin-correlated radical-pairs (SCRPs) offer a promising platform for noise-robust quantum metrology. However, unavoidable interradical interactions, such as electron-electron dipolar and exchange couplings, alongside deleterious perturbations resulting from intrinsic radical motion, typically degrade their potential as magnetometers. In contrast to this, we show how structured molecular motion modulating interradical interactions in a live chemical sensor in cryptochrome can, in fact, increase sensitivity and, more so, push precision in estimating magnetic field directions closer to the quantum Cramér-Rao bound, suggesting near-optimal metrological performance. Remarkably, this approach to optimality is amplified under environmental noise and persists with increasing complexity of the spin system, suggesting that perturbations inherent to such natural systems have enabled them to operate closer to the quantum limit to more effectively extract information from the weak geomagnetic field. This insight opens the possibility of channeling the underlying physical principles of motion-induced modulation of electron spin-spin interactions towards devising efficient handles over emerging molecular quantum information technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2506_21389
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Interradical motion can push magnetosensing precision towards quantum limits
Smith, Luke D.
Chowdhury, Farhan T.
Glatthard, Jonas
Kattnig, Daniel R.
Quantum Physics
Soft Condensed Matter
Chemical Physics
Magnetosensitive spin-correlated radical-pairs (SCRPs) offer a promising platform for noise-robust quantum metrology. However, unavoidable interradical interactions, such as electron-electron dipolar and exchange couplings, alongside deleterious perturbations resulting from intrinsic radical motion, typically degrade their potential as magnetometers. In contrast to this, we show how structured molecular motion modulating interradical interactions in a live chemical sensor in cryptochrome can, in fact, increase sensitivity and, more so, push precision in estimating magnetic field directions closer to the quantum Cramér-Rao bound, suggesting near-optimal metrological performance. Remarkably, this approach to optimality is amplified under environmental noise and persists with increasing complexity of the spin system, suggesting that perturbations inherent to such natural systems have enabled them to operate closer to the quantum limit to more effectively extract information from the weak geomagnetic field. This insight opens the possibility of channeling the underlying physical principles of motion-induced modulation of electron spin-spin interactions towards devising efficient handles over emerging molecular quantum information technologies.
title Interradical motion can push magnetosensing precision towards quantum limits
topic Quantum Physics
Soft Condensed Matter
Chemical Physics
url https://arxiv.org/abs/2506.21389