Interferometric measurement of nuclear resonant phase shift with a nanoscale Young double waveguide

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Lohse, Leon M., Negi, Ankita, Osterhoff, Markus, Meyer, Paul, Yaroslavtsev, Sergey, Chumakov, Aleksandr I., Bocklage, Lars, Röhlsberger, Ralf, Salditt, Tim
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914489985662976
author Lohse, Leon M.
Negi, Ankita
Osterhoff, Markus
Meyer, Paul
Yaroslavtsev, Sergey
Chumakov, Aleksandr I.
Bocklage, Lars
Röhlsberger, Ralf
Salditt, Tim
author_facet Lohse, Leon M.
Negi, Ankita
Osterhoff, Markus
Meyer, Paul
Yaroslavtsev, Sergey
Chumakov, Aleksandr I.
Bocklage, Lars
Röhlsberger, Ralf
Salditt, Tim
contents The phase shift of an electromagnetic wave, imprinted by its interaction with atomic scatterers, is a central quantity in optics and photonics. In particular, it encodes information about optical resonances and photon-matter interaction. While being a routine task in the optical regime, interferometric measurements of phase shifts in the x-ray frequency regime are notoriously challenging due to the short wavelengths and associated stability requirements. As a result, the methods demonstrated to date are unsuitable for nanoscopic systems. Here, we demonstrate a nanoscale interferometer, inspired by Young's double-slit experiment, to measure the dispersive phase shift due to the 14.4 keV nuclear resonance of the Mössbauer isotope $^{57}$Fe coupled to an x-ray waveguide. From the single-photon interference patterns, we precisely extract the phase shifts in the vicinity of the nuclear resonance resolved in photon energy by using Bayesian inference. We find that the combined information from phase shift and absorbance reveals microscopic coupling parameters, which are not accessible from the intensity data alone. The demonstrated principle lays a basis for integrated x-ray interferometric sensors.
format Preprint
id arxiv_https___arxiv_org_abs_2506_05823
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Interferometric measurement of nuclear resonant phase shift with a nanoscale Young double waveguide
Lohse, Leon M.
Negi, Ankita
Osterhoff, Markus
Meyer, Paul
Yaroslavtsev, Sergey
Chumakov, Aleksandr I.
Bocklage, Lars
Röhlsberger, Ralf
Salditt, Tim
Optics
The phase shift of an electromagnetic wave, imprinted by its interaction with atomic scatterers, is a central quantity in optics and photonics. In particular, it encodes information about optical resonances and photon-matter interaction. While being a routine task in the optical regime, interferometric measurements of phase shifts in the x-ray frequency regime are notoriously challenging due to the short wavelengths and associated stability requirements. As a result, the methods demonstrated to date are unsuitable for nanoscopic systems. Here, we demonstrate a nanoscale interferometer, inspired by Young's double-slit experiment, to measure the dispersive phase shift due to the 14.4 keV nuclear resonance of the Mössbauer isotope $^{57}$Fe coupled to an x-ray waveguide. From the single-photon interference patterns, we precisely extract the phase shifts in the vicinity of the nuclear resonance resolved in photon energy by using Bayesian inference. We find that the combined information from phase shift and absorbance reveals microscopic coupling parameters, which are not accessible from the intensity data alone. The demonstrated principle lays a basis for integrated x-ray interferometric sensors.
title Interferometric measurement of nuclear resonant phase shift with a nanoscale Young double waveguide
topic Optics
url https://arxiv.org/abs/2506.05823