Fermi Resonance and the Quantum Mechanical Basis of Global Warming

Fuente: arXiv
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Main Authors: Wordsworth, Robin, Seeley, Jacob, Shine, Keith
Format: Preprint
Published: 2024
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author Wordsworth, Robin
Seeley, Jacob
Shine, Keith
author_facet Wordsworth, Robin
Seeley, Jacob
Shine, Keith
contents Although the scientific principles of anthropogenic climate change are well-established, existing calculations of the warming effect of carbon dioxide rely on spectral absorption databases, which obscures the physical foundations of the climate problem. Here we show how CO2 radiative forcing can be expressed via a first-principles description of the molecule's key vibrational-rotational transitions. Our analysis elucidates the dependence of carbon dioxide's effectiveness as a greenhouse gas on the Fermi resonance between the symmetric stretch mode $ν_1$ and bending mode $ν_2$. It is remarkable that an apparently accidental quantum resonance in an otherwise ordinary three-atom molecule has had such a large impact on our planet's climate over geologic time, and will also help determine its future warming due to human activity. In addition to providing a simple explanation of CO2 radiative forcing on Earth, our results may have implications for understanding radiation and climate on other planets.
format Preprint
id arxiv_https___arxiv_org_abs_2401_15177
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Fermi Resonance and the Quantum Mechanical Basis of Global Warming
Wordsworth, Robin
Seeley, Jacob
Shine, Keith
Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
Although the scientific principles of anthropogenic climate change are well-established, existing calculations of the warming effect of carbon dioxide rely on spectral absorption databases, which obscures the physical foundations of the climate problem. Here we show how CO2 radiative forcing can be expressed via a first-principles description of the molecule's key vibrational-rotational transitions. Our analysis elucidates the dependence of carbon dioxide's effectiveness as a greenhouse gas on the Fermi resonance between the symmetric stretch mode $ν_1$ and bending mode $ν_2$. It is remarkable that an apparently accidental quantum resonance in an otherwise ordinary three-atom molecule has had such a large impact on our planet's climate over geologic time, and will also help determine its future warming due to human activity. In addition to providing a simple explanation of CO2 radiative forcing on Earth, our results may have implications for understanding radiation and climate on other planets.
title Fermi Resonance and the Quantum Mechanical Basis of Global Warming
topic Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
url https://arxiv.org/abs/2401.15177