Javascript must be enabled to continue!
Mapping Electronic Decoherence Pathways in Molecules
View through CrossRef
Establishing the fundamental chemical principles that govern molecular electronic quantum decoherence has remained an outstanding challenge. Fundamental questions such as how solvent and intramolecular vibrations or chemical functionalization contribute to the decoherence remain unanswered and are beyond the reach of state-of-the-art theoretical and experimental approaches. Here we address this challenge by developing a strategy to isolate electronic decoherence pathways for molecular chromophores immersed in condensed phase environments that enables elucidating how electronic quantum coherence is lost. For this, we first identify resonance Raman spectroscopy as a general experimental method to reconstruct molecular spectral densities with full chemical complexity at room temperature, in solvent, and for fluorescent and non-fluorescent molecules. We then show how to quantitatively capture the decoherence dynamics from the spectral density and identify decoherence pathways by decomposing the overall coherence loss into contributions due to individual molecular vibrations and solvent modes. We illustrate the utility of the strategy by analyzing the electronic decoherence pathways of the DNA base thymine in water. Its electronic coherences decay in ∼ 30 fs. The early-time decoherence is determined by intramolecular vibrations while the overall decay by solvent. Chemical substitution of thymine modulates the decoherence with hydrogen-bond interactions of the thymine ring with water leading to the fastest decoherence. Increasing temperature leads to faster decoherence as it enhances the importance of solvent contributions but leaves the early-time decoherence dynamics intact. The developed strategy opens key opportunities to establish the connection between molecular structure and quantum decoherence as needed to develop chemical strategies to rationally modulate it.
Title: Mapping Electronic Decoherence Pathways in Molecules
Description:
Establishing the fundamental chemical principles that govern molecular electronic quantum decoherence has remained an outstanding challenge.
Fundamental questions such as how solvent and intramolecular vibrations or chemical functionalization contribute to the decoherence remain unanswered and are beyond the reach of state-of-the-art theoretical and experimental approaches.
Here we address this challenge by developing a strategy to isolate electronic decoherence pathways for molecular chromophores immersed in condensed phase environments that enables elucidating how electronic quantum coherence is lost.
For this, we first identify resonance Raman spectroscopy as a general experimental method to reconstruct molecular spectral densities with full chemical complexity at room temperature, in solvent, and for fluorescent and non-fluorescent molecules.
We then show how to quantitatively capture the decoherence dynamics from the spectral density and identify decoherence pathways by decomposing the overall coherence loss into contributions due to individual molecular vibrations and solvent modes.
We illustrate the utility of the strategy by analyzing the electronic decoherence pathways of the DNA base thymine in water.
Its electronic coherences decay in ∼ 30 fs.
The early-time decoherence is determined by intramolecular vibrations while the overall decay by solvent.
Chemical substitution of thymine modulates the decoherence with hydrogen-bond interactions of the thymine ring with water leading to the fastest decoherence.
Increasing temperature leads to faster decoherence as it enhances the importance of solvent contributions but leaves the early-time decoherence dynamics intact.
The developed strategy opens key opportunities to establish the connection between molecular structure and quantum decoherence as needed to develop chemical strategies to rationally modulate it.
Related Results
Mapping Electronic Decoherence Pathways in Molecules
Mapping Electronic Decoherence Pathways in Molecules
Establishing the fundamental chemical principles that govern molecular electronic quantum decoherence has remained an outstanding challenge. Fundamental questions such as how solve...
Mapping workflow trends in pulsed-field ablation procedures: an international glimpse
Mapping workflow trends in pulsed-field ablation procedures: an international glimpse
Abstract
Background
As pulsed field ablation (PFA) is increasingly used in the EP lab, the use of mapping, fluoroscopy, and intr...
Investigation of the molecular mechanisms of electronic decoherence within a quinone cofactor
Investigation of the molecular mechanisms of electronic decoherence within a quinone cofactor
The notion of decoherence is particularly adapted to discuss the quantum-to-classical transition in the context of chemical reactions. Decoherence can be modeled by computing the t...
DECOHERENCE AND RECOHERENCE IN MODEL QUANTUM SYSTEMS
DECOHERENCE AND RECOHERENCE IN MODEL QUANTUM SYSTEMS
We discuss the various manifestations of quantum decoherence in the forms of dephasing, entanglement with the environment, and revelation of "which-path" information. As a specific...
Completeness of decoherence functionals
Completeness of decoherence functionals
The basic ingredients of the ‘‘consistent histories’’ approach to a generalized quantum theory are ‘‘histories’’ and decoherence functionals. The main aim of this program is to fin...
The Philosophical Significance of Decoherence
The Philosophical Significance of Decoherence
Abstract
Quantum decoherence is a physical process resulting from the entanglement of a system with environmental degrees of freedom. The entanglement allows the ...
Decoherence in neutrino oscillation at the ESSnuSB experiment
Decoherence in neutrino oscillation at the ESSnuSB experiment
Abstract
Neutrino oscillation experiments provide a unique window in exploring several new physics scenarios beyond the standard three flavour. One such scenar...
Search for quantum decoherence in neutrino oscillations with six detection units of KM3NeT/ORCA
Search for quantum decoherence in neutrino oscillations with six detection units of KM3NeT/ORCA
Abstract
Neutrinos described as an open quantum system may interact with the environment which introduces stochastic perturbations to their quantum phase. This mecha...

