Testing for the Continuous Spectrum of X-Rays Predicted to Accompany the Photoejection of an Atomic Inner Shell Electron

ORAL

Abstract

For decades, experimental evidence for an elegant prediction of quantum electrodynamics has been sought: the detection of a broad spectrum of X-rays at low energies expected upon sudden ejection of an inner shell electron following absorption of an incident high energy photon. We report here on a recent attempt that provides a significantly reduced upper limit on the process that is consistent with contemporary theory and contradicts earlier observations. The Cornell High Energy Synchrotron Radiation Source (CHESS) was employed to deliver a 46 keV incident beam on solid copper film targets. To suppress extraneous events detection of scattered photons was performed in coincidence with the fluorescent decay of the K shell hole produced by photoejection. Through variable thickness targets we assessed secondary processes.

*This work is based upon research conducted at the Cornell High Energy Synchrotron Source (CHESS) which is supported by the National Science Foundation under award DMR-1332208.
This work made use of the Cornell Center for Materials Research Shared Facilities which are supported through the NSF MRSEC program (DMR-1719875).

Presenters

  • Philip Jacobson

    • Cornell University

Authors

  • Philip Jacobson

    • Cornell University
  • Andrija Rasovic

    • Cornell University
  • Songqi Jia

    • Cornell University
  • Yue Li

    • Cornell University
  • Arthur Campello

    • Cornell University
  • Chase Goddard

    • Cornell University
  • Stanislav Stoupin

    • Cornell University
  • J. Y. Peter Ko

    • Cornell University
  • Yuchao Chen

    • Cornell University
  • Justin Oh

    • Cornell University
  • Gwen Gardner

    • Cornell University
  • Carl Franck

    • Cornell University