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Main Authors: Habibović, Dino, Hamilton, Kathryn R., Neufeld, Ofer, Rego, Laura
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2404.05923
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author Habibović, Dino
Hamilton, Kathryn R.
Neufeld, Ofer
Rego, Laura
author_facet Habibović, Dino
Hamilton, Kathryn R.
Neufeld, Ofer
Rego, Laura
contents Ultrashort laser pulses pose unique tools to trigger and probe the fastest charge dynamics in matter, allowing the investigation of fundamental physical phenomena with unprecedented resolution in space, time, and energy. One of the most fascinating opportunities that ultrashort pulses offer is the possibility of modulating and investigating symmetries by tailoring the properties of the laser beam in the spatial and polarization domains, effectively controlling symmetry breaking on multiple levels. In particular, this allows probing chiral matter and ultrafast chiral dynamics. In recent years, the development of highly sensitive approaches for studying chirality has been a hot topic in physics and chemistry that has developed largely separately from the field of tailored light. This perspective discusses the individual and joint evolution of these fields with an emphasis on how the fields have already cross-fertilized, opening new opportunities in science. We outline a future outlook of how the topics are expected to fully merge and mutually evolve, emphasizing outstanding open issues.
format Preprint
id arxiv_https___arxiv_org_abs_2404_05923
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Application of Tailored Fields for Studying Chirality and Symmetry
Habibović, Dino
Hamilton, Kathryn R.
Neufeld, Ofer
Rego, Laura
Optics
Quantum Physics
Ultrashort laser pulses pose unique tools to trigger and probe the fastest charge dynamics in matter, allowing the investigation of fundamental physical phenomena with unprecedented resolution in space, time, and energy. One of the most fascinating opportunities that ultrashort pulses offer is the possibility of modulating and investigating symmetries by tailoring the properties of the laser beam in the spatial and polarization domains, effectively controlling symmetry breaking on multiple levels. In particular, this allows probing chiral matter and ultrafast chiral dynamics. In recent years, the development of highly sensitive approaches for studying chirality has been a hot topic in physics and chemistry that has developed largely separately from the field of tailored light. This perspective discusses the individual and joint evolution of these fields with an emphasis on how the fields have already cross-fertilized, opening new opportunities in science. We outline a future outlook of how the topics are expected to fully merge and mutually evolve, emphasizing outstanding open issues.
title The Application of Tailored Fields for Studying Chirality and Symmetry
topic Optics
Quantum Physics
url https://arxiv.org/abs/2404.05923