Nonadiabatic derivative couplings through multiple Franck-Condon modes dictate the energy gap law for near and short-wave infrared dye molecules

Fuente: arXiv
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Main Authors: Ramos, Pablo, Friedman, Hannah, Li, Barry Y., Garcia, Cesar, Sletten, Ellen, Caram, Justin R., Jang, Seogjoo J.
Format: Preprint
Published: 2023
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_version_ 1866914224309010432
author Ramos, Pablo
Friedman, Hannah
Li, Barry Y.
Garcia, Cesar
Sletten, Ellen
Caram, Justin R.
Jang, Seogjoo J.
author_facet Ramos, Pablo
Friedman, Hannah
Li, Barry Y.
Garcia, Cesar
Sletten, Ellen
Caram, Justin R.
Jang, Seogjoo J.
contents Near infrared (NIR, 700 - 1,000 nm) and short-wave infrared (SWIR, 1,000 - 2,000 nm) dye molecules exhibit significant nonradiative decay rates from the first singlet excited state to the ground state. While these trends can be empirically explained by a simple energy gap law, detailed mechanisms of the nearly universal behavior have remained unsettled for many cases. Theoretical and experimental results for two representative NIR/SWIR dye molecules reported here clarify the key mechanism for the observed energy gap law behavior. It is shown that the first derivative nonadiabatic coupling terms serve as major coupling pathways for nonadiabatic decay processes from the first excited singlet state to the ground state for these NIR and SWIR dye molecules and that vibrational modes other than the highest frequency ones also make significant contributions to the rate. This assessment is corroborated by further theoretical comparison with possible alternative mechanisms of intersystem crossing to triplet states and also by comparison with experimental data for deuterated molecules.
format Preprint
id arxiv_https___arxiv_org_abs_2309_10695
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Nonadiabatic derivative couplings through multiple Franck-Condon modes dictate the energy gap law for near and short-wave infrared dye molecules
Ramos, Pablo
Friedman, Hannah
Li, Barry Y.
Garcia, Cesar
Sletten, Ellen
Caram, Justin R.
Jang, Seogjoo J.
Chemical Physics
Quantum Physics
Near infrared (NIR, 700 - 1,000 nm) and short-wave infrared (SWIR, 1,000 - 2,000 nm) dye molecules exhibit significant nonradiative decay rates from the first singlet excited state to the ground state. While these trends can be empirically explained by a simple energy gap law, detailed mechanisms of the nearly universal behavior have remained unsettled for many cases. Theoretical and experimental results for two representative NIR/SWIR dye molecules reported here clarify the key mechanism for the observed energy gap law behavior. It is shown that the first derivative nonadiabatic coupling terms serve as major coupling pathways for nonadiabatic decay processes from the first excited singlet state to the ground state for these NIR and SWIR dye molecules and that vibrational modes other than the highest frequency ones also make significant contributions to the rate. This assessment is corroborated by further theoretical comparison with possible alternative mechanisms of intersystem crossing to triplet states and also by comparison with experimental data for deuterated molecules.
title Nonadiabatic derivative couplings through multiple Franck-Condon modes dictate the energy gap law for near and short-wave infrared dye molecules
topic Chemical Physics
Quantum Physics
url https://arxiv.org/abs/2309.10695