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Data for: The inner-shell ionization and fragmentation of selenophene at 120 eV

dc.contributor.authorWalmsley, Tiffany
dc.contributor.authorAllum, Felix
dc.contributor.authorHarries, James
dc.contributor.authorKumagai, Yoshiaki
dc.contributor.authorMcManus, Joseph
dc.contributor.authorNagaya, Kiyonobu
dc.contributor.authorBritton, Mathew
dc.contributor.authorBrouard, Mark
dc.contributor.authorBucksbaum, Philip
dc.contributor.authorFushitani, Mizuho
dc.contributor.authorGabalski, Ian
dc.contributor.authorGejo, Tatsuo
dc.contributor.authorHockett, Paul
dc.contributor.authorHoward, Andrew
dc.contributor.authorIwayama, Hiroshi
dc.contributor.authorKukk, Edwin
dc.contributor.authorLam, Chow-shing
dc.contributor.authorMinns, Russell
dc.contributor.authorNiozu, Akinobu
dc.contributor.authorNishimuro, Sekito
dc.contributor.authorNiskanen, Johannes
dc.contributor.authorOwada, Shigeki
dc.contributor.authorRazmus, Weronika
dc.contributor.authorRolles, Daniel
dc.contributor.authorSomper, James
dc.contributor.authorUeda, Kiyoshi
dc.contributor.authorUnwin, James
dc.contributor.authorWada, Shin-ichi
dc.contributor.authorWoodhouse, Joanne
dc.contributor.authorForbes, Ruaridh
dc.contributor.authorBurt, Michael
dc.contributor.authorWarne, Emily
dc.contributor.funderUK Engineering and Physical Sciences Research Council (EPSRC)
dc.contributor.funderUK XFEL hub for Physical Sciences
dc.contributor.funderUniversity of Oxford
dc.contributor.funderUniversity of Southampton
dc.contributor.funderStates of Jersey
dc.contributor.funderNatural Sciences and Engineering Research Council (NSERC) of Canada
dc.contributor.funderUS Department of Energy
dc.contributor.funderUS National Science Foundation
dc.contributor.funderAcademy of Finland
dc.contributor.funderJapan Society for the Promotion of Science (JSPS)
dc.contributor.funderAlexander von Humboldt Foundation
dc.date.accessioned2026-01-13T14:43:50Z
dc.date.issued2026-01-13
dc.description.abstractThe file in this repository (aq386.h5) is the data presented in the paper titled above. This study used time-of-flight velocity map ion imaging to measure the three-dimensional momentum distributions of ions produced following site-selective ionization of selenophene at the Se 3d orbitals. Covariance analysis was used to extract the relative abundances and recoil dynamics of over 50 fragmentation pathways, including two-body and many-body (3+) fragmentation channels of molecular polycations. The experimental conditions used in this study are the same as those described in the following published articles [https://iopscience.iop.org/article/10.1088/1361-6455/ad8799, https://doi.org/10.1039/D2CP03029B]. The data was recorded at the soft X-ray beamline (BL1) of the Spring-8 Compact Angstrom free electron Laser (SACLA) in Japan in December 2022 during the beamtime for proposal number 2022B8048. The data uploaded are constructed from the three delay-line layers of the RoentDek hexanode delay line detector used in the experiment. The data includes the following information (which can be viewed using a hdf5 viewer such as the online https://myhdf5.hdfgroup.org/): ‘delay_calibrated’, ‘delay_jitter’, ‘delay_motor’, ‘delay_offset’ – these parameters are for time-resolved pump probe measurements. However, this dataset is not time-resolved and so these values can be disregarded; ‘fel_intensity’, ‘fel_shutter’, fel_status’ – parameters defining the operation status of the free electron laser; ‘laser shutter’ – optical lasers were not used in this measurement and so this value can be disregarded; ‘nions’, ‘nlistpos’, ‘tagevent’, ‘tma_flag’ – parameters defining the count rate conditions of the experiment. ‘tagevent’ is the laser shot identifying number given to groups of ions produced within the same laser shot; ‘tof’, ‘xpos’, ‘ypos’ – the time-of-flight, x-position, and y-position of ions hitting the position-sensitive detector. These values are used to calculate the three-dimensional momentum information for each ion hitting the detector per laser shot.
dc.description.sponsorshipM.Bu., J.S., J.U., E.W., and T.W. are grateful to the EPSRC for support from EP/S028617/1, and to the University of Oxford for a Covid Rebuilding Research Momentum award. M.Bu. was additionally supported by an NSERC Discovery Grant, and T.W. is thankful to the EPSRC for studentship funding as well as to Jesus College, Oxford for a partial fee scholarship. J.U. thanks the States of Jersey for studentship funding. R.F. and F.A. gratefully acknowledge support from the Linac Coherent Light Source, SLAC National Accelerator Laboratory, which is supported by the US Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No. DE-AC02-76SF00515. F.A. thanks the Alexander von Humboldt Foundation for their support. R.M. and J.W. thank the EPSRC (EP/R010609/1, EP/X027635/1) and the Leverhulme Trust (RPG-2021-257) for financial support. W.R. thanks the UK XFEL hub for physical sciences and the University of Southampton for studentship funding. C.-S.L., J.M., and M.Bro. gratefully acknowledge the support of EPSRC Programme Grant EP/V026690/1. D.R. was supported by the Chemical Sciences, Geosciences, and Biosciences Division, Office of Basic Energy Sciences, Office of Science, US Department of Energy under Grant No. DEFG02-86ER13491. P.B., A.H., and M.Bri. were supported by the National Science Foundation. J.N. acknowledges Academy of Finland funding via Project 331234. Y.K. acknowledges support from the Nikki-Saneyoshi (JGC-S) Scholarship Foundation, and M.F. acknowledges support from JSPS KAKENHI (20K05549).
dc.identifier.urihttps://edata.stfc.ac.uk/handle/edata/993
dc.identifier.urihttps://doi.org/10.5286/edata/961
dc.language.isoen
dc.rightsCreative Commons Attribution 4.0 International
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subject.othercovariance analysis, velocity map imaging, ion imaging, reaction dynamics, coulomb explosion imaging
dc.titleData for: The inner-shell ionization and fragmentation of selenophene at 120 eV
dc.typeDataset

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