Inducing Enantioselectivity in Radiative Charge-Transfer Rates through Chiral Quantum Electrodynamic Fluctuations

Abstract Chiral discrimination has long been an important yet challenging topic in chemistry and physics. In this work, we study how chiral light–matter interaction under weak coupling regime enhances enantioselectivity of chiral charge transfer (CT) rates. Based on the framework of macroscopic quantum electrodynamics and Marcus electron transfer theory, we predict that the degree of discrimination (S) of a single-molecule asymmetric radiative CT reaction can achieve −2.0 × 10–2 through the light–matter interactions between a silicon nanohelix and a helicene-based CT dye. Orientation dependence of S is systematically analyzed, showing the averaged S < −10–3 for an isotropically oriented molecule. We further demonstrate that different molecular positions influence the orientation dependence of S. The results demonstrate how chiral vacuum electromagnetic fields influence enantioselectivity of radiative CT rates, opening up a new route to achieve chiral discrimination in molecular CT.

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Journal
The Journal of Physical Chemistry Letters
Published
2026-10-05
DOI
https://doi.org/10.1021/acs.jpclett.6c02328
Primary Topic
Strong Light-Matter Interactions
Type
article
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article

Inducing Enantioselectivity in Radiative Charge-Transfer Rates through Chiral Quantum Electrodynamic Fluctuations

Yu‐Chen Wei, Liang‐Yan Hsu
The Journal of Physical Chemistry Letters
Strong Light-Matter Interactions
article

Inducing Enantioselectivity in Radiative Charge-Transfer Rates through Chiral Quantum Electrodynamic Fluctuations

Yu‐Chen Wei, Liang‐Yan Hsu
article en

Abstract

Abstract Chiral discrimination has long been an important yet challenging topic in chemistry and physics. In this work, we study how chiral light–matter interaction under weak coupling regime enhances enantioselectivity of chiral charge transfer (CT) rates. Based on the framework of macroscopic quantum electrodynamics and Marcus electron transfer theory, we predict that the degree of discrimination (S) of a single-molecule asymmetric radiative CT reaction can achieve −2.0 × 10–2 through the light–matter interactions between a silicon nanohelix and a helicene-based CT dye. Orientation dependence of S is systematically analyzed, showing the averaged S < −10–3 for an isotropically oriented molecule. We further demonstrate that different molecular positions influence the orientation dependence of S. The results demonstrate how chiral vacuum electromagnetic fields influence enantioselectivity of radiative CT rates, opening up a new route to achieve chiral discrimination in molecular CT.

The Journal of Physical Chemistry Letters
National Taiwan University (TW), National Tsing Hua University (TW), Center for Theoretical Physics (PL), National Center for Theoretical Sciences (TW), Institute of Atomic and Molecular Sciences, Academia Sinica (TW)
Openalex Percentile: Top 16%
Strong Light-Matter Interactions
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Inducing Enantioselectivity in Radiative Charge-Transfer Rates through Chiral Quantum Electrodynamic Fluctuations — Yu‐Chen Wei, Liang‐Yan Hsu · The Journal of Physical Chemistry Letters (2026) | TGRS Research Map | TGRS