Beyond Photon Shot Noise: Chemical Limits in Spectrophotometric Precision

Fuente: arXiv
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Main Authors: Engelhardt, Georg, He, Dahai, Luo, JunYan
Format: Preprint
Published: 2026
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author Engelhardt, Georg
He, Dahai
Luo, JunYan
author_facet Engelhardt, Georg
He, Dahai
Luo, JunYan
contents In this work, we investigate precision limitations in spectrophotometry (i.e., spectroscopic concentration measurements) imposed by chemical processes of molecules. Using the recently developed Photon-resolved Floquet theory, which generalizes Maxwell-Bloch theory for higher-order measurement statistics, we analyze a molecular model system subject to chemical reactions whose electronic and optical properties depend on the chemical state. Analysis of sensitivity bounds reveals: (i) Phase measurements are more sensitive than intensity measurements; (ii) Sensitivity exhibits three regimes: photon-shot-noise limited, chemically limited, and intermediate; (iii) Sensitivity shows a turnover as a function of reaction rate due to the interplay between coherent electronic dynamics and incoherent chemical dynamics. Our findings demonstrate that chemical properties must be considered to estimate ultimate precision limits in optical spectrophotometry.
format Preprint
id arxiv_https___arxiv_org_abs_2601_19326
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Beyond Photon Shot Noise: Chemical Limits in Spectrophotometric Precision
Engelhardt, Georg
He, Dahai
Luo, JunYan
Quantum Physics
Chemical Physics
In this work, we investigate precision limitations in spectrophotometry (i.e., spectroscopic concentration measurements) imposed by chemical processes of molecules. Using the recently developed Photon-resolved Floquet theory, which generalizes Maxwell-Bloch theory for higher-order measurement statistics, we analyze a molecular model system subject to chemical reactions whose electronic and optical properties depend on the chemical state. Analysis of sensitivity bounds reveals: (i) Phase measurements are more sensitive than intensity measurements; (ii) Sensitivity exhibits three regimes: photon-shot-noise limited, chemically limited, and intermediate; (iii) Sensitivity shows a turnover as a function of reaction rate due to the interplay between coherent electronic dynamics and incoherent chemical dynamics. Our findings demonstrate that chemical properties must be considered to estimate ultimate precision limits in optical spectrophotometry.
title Beyond Photon Shot Noise: Chemical Limits in Spectrophotometric Precision
topic Quantum Physics
Chemical Physics
url https://arxiv.org/abs/2601.19326