Vibronic coupling limits the use of high-lying electronic states in complex molecules for laser cooling

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Hauptverfasser: Zhou, Haowen, Wojcik, Pawel, Zhu, Guo-Zhu, Lao, Guanming, Khvorost, Taras, Caram, Justin R., Campbell, Wesley C., Alexandrova, Anastassia N., Krylov, Anna I., Hudson, Eric R.
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Veröffentlicht: 2025
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author Zhou, Haowen
Wojcik, Pawel
Zhu, Guo-Zhu
Lao, Guanming
Khvorost, Taras
Caram, Justin R.
Campbell, Wesley C.
Alexandrova, Anastassia N.
Krylov, Anna I.
Hudson, Eric R.
author_facet Zhou, Haowen
Wojcik, Pawel
Zhu, Guo-Zhu
Lao, Guanming
Khvorost, Taras
Caram, Justin R.
Campbell, Wesley C.
Alexandrova, Anastassia N.
Krylov, Anna I.
Hudson, Eric R.
contents Laser cooling of large, complex molecules is a long-standing goal, instrumental for enabling new quantum technology and precision measurements. A primary consideration for the feasibility of laser cooling, which determines the efficiency and technical requirements of the process, is the number of excited-state decay pathways leading to vibrational excitations. Therefore, the assessment of the laser-cooling potential of a molecule begins with estimate of the vibrational branching ratios of the first few electronic excited states theoretically to find the optimum cooling scheme. Such calculations, typically done within the BO and harmonic approximations, have suggested that one leading candidate for large, polyatomic molecule laser cooling, alkaline earth phenoxides, can most efficiently be laser-cooled via the third electronically excited C state. Here, we report the first detailed spectroscopic characterization of the C state in CaOPh and SrOPh. We find that nonadiabatic couplings between the A, B, and C states lead to substantial mixing, giving rise to vibronic states that enable additional decay pathways. Based on the intensity ratio of these extra decay channels, we estimate a non-adiabatic coupling strength of 0.1 cm-1. While this coupling strength is small, the large density of vibrational states available at photonic energy scales in a polyatomic molecule leads to significant mixing. Thus, this result is expected to be general for large molecules and implies that only the lowest electronic excited state should be considered when judging the suitability of a molecule for laser cooling.
format Preprint
id arxiv_https___arxiv_org_abs_2510_22367
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Vibronic coupling limits the use of high-lying electronic states in complex molecules for laser cooling
Zhou, Haowen
Wojcik, Pawel
Zhu, Guo-Zhu
Lao, Guanming
Khvorost, Taras
Caram, Justin R.
Campbell, Wesley C.
Alexandrova, Anastassia N.
Krylov, Anna I.
Hudson, Eric R.
Atomic Physics
Laser cooling of large, complex molecules is a long-standing goal, instrumental for enabling new quantum technology and precision measurements. A primary consideration for the feasibility of laser cooling, which determines the efficiency and technical requirements of the process, is the number of excited-state decay pathways leading to vibrational excitations. Therefore, the assessment of the laser-cooling potential of a molecule begins with estimate of the vibrational branching ratios of the first few electronic excited states theoretically to find the optimum cooling scheme. Such calculations, typically done within the BO and harmonic approximations, have suggested that one leading candidate for large, polyatomic molecule laser cooling, alkaline earth phenoxides, can most efficiently be laser-cooled via the third electronically excited C state. Here, we report the first detailed spectroscopic characterization of the C state in CaOPh and SrOPh. We find that nonadiabatic couplings between the A, B, and C states lead to substantial mixing, giving rise to vibronic states that enable additional decay pathways. Based on the intensity ratio of these extra decay channels, we estimate a non-adiabatic coupling strength of 0.1 cm-1. While this coupling strength is small, the large density of vibrational states available at photonic energy scales in a polyatomic molecule leads to significant mixing. Thus, this result is expected to be general for large molecules and implies that only the lowest electronic excited state should be considered when judging the suitability of a molecule for laser cooling.
title Vibronic coupling limits the use of high-lying electronic states in complex molecules for laser cooling
topic Atomic Physics
url https://arxiv.org/abs/2510.22367