All-optical coherent control of chiral electronic transitions for highly enantioselective photochemistry

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Ordóñez, Andrés, Vindel-Zandbergen, Patricia, Ayuso, David
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866915183412117504
author Ordóñez, Andrés
Vindel-Zandbergen, Patricia
Ayuso, David
author_facet Ordóñez, Andrés
Vindel-Zandbergen, Patricia
Ayuso, David
contents Enantioselective photochemistry provides access to unique molecular structures and functions, with deep implications for fundamental science and industrial applications. Current methods for highly enantioselective photochemistry critically rely on chiral sensitisers, as circularly polarised light on its own yields vanishingly weak enantioselectivity. Here, we introduce a quantum control strategy to drive highly enantioselective electronic excitations in randomly oriented samples using a pulsed ($\sim$22 fs) IR laser and two of its harmonics, in the absence of intermediate resonances. Our approach addresses electronic transitions, does not require chiral sensitisers, or cold molecules, or long electronic coherence times, is relevant for liquid-phase samples, and remains effective over interaction regions extending across many laser wavelengths, even in the presence of dispersion. We show how, by 3D shaping the field's polarisation over the interaction region, we can achieve enantioselective coherent control over electronic population transfer. Our ab-initio simulations in the chiral molecule carvone yield a selectivity of $\sim$30 % in the populations of the first excited electronic state, three orders-of-magnitude higher than what is possible with circularly polarised light ($\sim$0.01 %). These results bring all-optical enantioselective photochemistry into the realm of practical applications.
format Preprint
id arxiv_https___arxiv_org_abs_2309_02392
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle All-optical coherent control of chiral electronic transitions for highly enantioselective photochemistry
Ordóñez, Andrés
Vindel-Zandbergen, Patricia
Ayuso, David
Chemical Physics
Atomic Physics
Optics
Enantioselective photochemistry provides access to unique molecular structures and functions, with deep implications for fundamental science and industrial applications. Current methods for highly enantioselective photochemistry critically rely on chiral sensitisers, as circularly polarised light on its own yields vanishingly weak enantioselectivity. Here, we introduce a quantum control strategy to drive highly enantioselective electronic excitations in randomly oriented samples using a pulsed ($\sim$22 fs) IR laser and two of its harmonics, in the absence of intermediate resonances. Our approach addresses electronic transitions, does not require chiral sensitisers, or cold molecules, or long electronic coherence times, is relevant for liquid-phase samples, and remains effective over interaction regions extending across many laser wavelengths, even in the presence of dispersion. We show how, by 3D shaping the field's polarisation over the interaction region, we can achieve enantioselective coherent control over electronic population transfer. Our ab-initio simulations in the chiral molecule carvone yield a selectivity of $\sim$30 % in the populations of the first excited electronic state, three orders-of-magnitude higher than what is possible with circularly polarised light ($\sim$0.01 %). These results bring all-optical enantioselective photochemistry into the realm of practical applications.
title All-optical coherent control of chiral electronic transitions for highly enantioselective photochemistry
topic Chemical Physics
Atomic Physics
Optics
url https://arxiv.org/abs/2309.02392