Electron transfer mediated decay of alkali dimers attached to He nanodroplets

Alkali metal dimers attached to the surface of helium nanodroplets are found to be efficiently doubly ionized by electron transfer mediated decay (ETMD) when photoionizing the helium droplets. This process is evidenced by detecting in coincidence two energetic ions created by Coulomb explosion and o...

Full description

Saved in:
Bibliographic Details
Main Authors: Ltaief, L. Ben (Author) , Shcherbinin, M. (Author) , Mandal, S. (Author) , Krishnan, S. R. (Author) , Richter, R. (Author) , Pfeifer, Thomas (Author) , Bauer, Marco (Author) , Ghosh, Aryya (Author) , Mudrich, M. (Author) , Gokhberg, Kirill (Author) , LaForge, A. C. (Author)
Format: Article (Journal)
Language:English
Published: 27 March 2020
In: Physical chemistry, chemical physics
Year: 2020, Volume: 22, Issue: 16, Pages: 8557-8564
ISSN:1463-9084
DOI:10.1039/D0CP00256A
Online Access:Verlag, lizenzpflichtig, Volltext: https://doi.org/10.1039/D0CP00256A
Verlag, lizenzpflichtig, Volltext: https://pubs.rsc.org/en/content/articlelanding/2020/cp/d0cp00256a
Get full text
Author Notes:L. Ben Ltaief, M. Shcherbinin, S. Mandal, S.R. Krishnan, R. Richter, T. Pfeifer, M. Bauer, A. Ghosh, M. Mudrich, K. Gokhberg and A.C. LaForge
Description
Summary:Alkali metal dimers attached to the surface of helium nanodroplets are found to be efficiently doubly ionized by electron transfer mediated decay (ETMD) when photoionizing the helium droplets. This process is evidenced by detecting in coincidence two energetic ions created by Coulomb explosion and one low-kinetic energy electron. The kinetic energy spectra of ions and electrons are reproduced by simple model calculations based on diatomic potential energy curves, and are in agreement with ab initio calculations for the He-Na2 and He-KRb systems. This work demonstrates that ETMD is an important decay channel in heterogeneous nanosystems exposed to ionizing radiation.
Item Description:Gesehen am 30.03.2021
Physical Description:Online Resource
ISSN:1463-9084
DOI:10.1039/D0CP00256A