Evaluation of Quantum Offset in Velocity Imaging-Based Electron Spectrometry

Fuente: arXiv
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Hauptverfasser: Zhang, Rui, Yan, Shuaiting, Jie, Wenru, Chen, Jiayi, Liu, Qihan, Ning, Chuangang
Format: Preprint
Veröffentlicht: 2025
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author Zhang, Rui
Yan, Shuaiting
Jie, Wenru
Chen, Jiayi
Liu, Qihan
Ning, Chuangang
author_facet Zhang, Rui
Yan, Shuaiting
Jie, Wenru
Chen, Jiayi
Liu, Qihan
Ning, Chuangang
contents Velocity-map imaging of electrons is a pivotal technique in chemical physics. A recent study reported a quantum offset as large as 0.2 cm-1 in velocity imaging-based electron spectrometry [Phys. Rev. Lett. 134, 043001 (2025)]. In this work, we assess the existence this offset through a combination of simulations and experiments. Our simulations reveal that the velocity imaging results reconstructed using the maximum entropy velocity Legendre reconstruction (MEVELER) method exhibit no such offset. Furthermore, experimental measurements of the electron affinity of oxygen conducted at various imaging voltages show no discernible offset attributable to the electric field in the photodetachment region. Therefore, we conclude that there is no evidence for the claimed quantum offset in properly analyzed velocity imaging-based electron spectrometry.
format Preprint
id arxiv_https___arxiv_org_abs_2510_17204
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Evaluation of Quantum Offset in Velocity Imaging-Based Electron Spectrometry
Zhang, Rui
Yan, Shuaiting
Jie, Wenru
Chen, Jiayi
Liu, Qihan
Ning, Chuangang
Atomic Physics
Atomic and Molecular Clusters
81V45
Velocity-map imaging of electrons is a pivotal technique in chemical physics. A recent study reported a quantum offset as large as 0.2 cm-1 in velocity imaging-based electron spectrometry [Phys. Rev. Lett. 134, 043001 (2025)]. In this work, we assess the existence this offset through a combination of simulations and experiments. Our simulations reveal that the velocity imaging results reconstructed using the maximum entropy velocity Legendre reconstruction (MEVELER) method exhibit no such offset. Furthermore, experimental measurements of the electron affinity of oxygen conducted at various imaging voltages show no discernible offset attributable to the electric field in the photodetachment region. Therefore, we conclude that there is no evidence for the claimed quantum offset in properly analyzed velocity imaging-based electron spectrometry.
title Evaluation of Quantum Offset in Velocity Imaging-Based Electron Spectrometry
topic Atomic Physics
Atomic and Molecular Clusters
81V45
url https://arxiv.org/abs/2510.17204