Enhanced strong-field ionization and fragmentation of methanol using non-commensurate fields

Fuente: arXiv
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Main Authors: Zamudio, Eladio Prieto, Das, Rituparna, Katturi, Naga Krishnakanth, Stamm, Jacob, Sandhu, Jesse, Kwon, Sung, Minasian, Matthew, Dantus, Marcos
Format: Preprint
Published: 2024
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author Zamudio, Eladio Prieto
Das, Rituparna
Katturi, Naga Krishnakanth
Stamm, Jacob
Sandhu, Jesse
Kwon, Sung
Minasian, Matthew
Dantus, Marcos
author_facet Zamudio, Eladio Prieto
Das, Rituparna
Katturi, Naga Krishnakanth
Stamm, Jacob
Sandhu, Jesse
Kwon, Sung
Minasian, Matthew
Dantus, Marcos
contents Electron-initiated chemistry with chemically relevant electron energies (10-200 eV) is at the heart of several high-energy processes and phenomena. To probe these dissociation and fragmentation reactions with femtosecond resolution requires the use of femtosecond lasers to induce ionization of the polyatomic molecules via electron rescattering. Here, we combine non-commensurate fields with intensity-difference spectra using methanol as a model system. Experimentally, we find orders of magnitude enhancement in several product ions of methanol when comparing coherent vs incoherent combinations of non-commensurate fields. This approach not only mitigates multi-photon ionization and multi-cycle effects during ionization but also enhances tunnel ionization and electron rescattering energy.
format Preprint
id arxiv_https___arxiv_org_abs_2408_10423
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Enhanced strong-field ionization and fragmentation of methanol using non-commensurate fields
Zamudio, Eladio Prieto
Das, Rituparna
Katturi, Naga Krishnakanth
Stamm, Jacob
Sandhu, Jesse
Kwon, Sung
Minasian, Matthew
Dantus, Marcos
Chemical Physics
Electron-initiated chemistry with chemically relevant electron energies (10-200 eV) is at the heart of several high-energy processes and phenomena. To probe these dissociation and fragmentation reactions with femtosecond resolution requires the use of femtosecond lasers to induce ionization of the polyatomic molecules via electron rescattering. Here, we combine non-commensurate fields with intensity-difference spectra using methanol as a model system. Experimentally, we find orders of magnitude enhancement in several product ions of methanol when comparing coherent vs incoherent combinations of non-commensurate fields. This approach not only mitigates multi-photon ionization and multi-cycle effects during ionization but also enhances tunnel ionization and electron rescattering energy.
title Enhanced strong-field ionization and fragmentation of methanol using non-commensurate fields
topic Chemical Physics
url https://arxiv.org/abs/2408.10423