X-ray Phase Measurements by Time-Energy Correlated Photon Pairs
Yishai Klein, Edward Strizhevsky, Haim Aknin, Moshe Deutsch, Eliahu, Cohen, Avi Pe'er, Kenji Tamasaku, Tobias Schulli, Ebrahim Karimi, Sharon, Shwartz

TL;DR
This paper introduces a novel X-ray interferometric method using correlated photon pairs to achieve highly precise phase measurements with improved noise immunity, surpassing traditional interferometers.
Contribution
It extends the SU(1,1) interferometer concept into the X-ray regime, utilizing SPDC in silicon crystals for enhanced noise robustness in phase sensing.
Findings
Demonstrated correlated photon pair generation via SPDC in silicon
Achieved high-precision phase measurement with noise suppression
Predicted improved immunity to vibrations and external noise
Abstract
The invention of X-ray interferometers has led to advanced phase-sensing devices that are invaluable in various applications. These include the precise measurement of universal constants, e.g. the Avogadro number, of lattice parameters of perfect crystals, and phase-contrast imaging, which resolves details that standard absorption imaging cannot capture. However, the sensitivity and robustness of conventional X-ray interferometers are constrained by factors, such as fabrication precision, beam quality, and, importantly, noise originating from external sources or the sample itself. In this work, we demonstrate a novel X-ray interferometric method of phase measurement with enhanced immunity to various types of noise, by extending, for the first time, the concept of the SU(1,1) interferometer into the X-ray regime. We use a monolithic silicon perfect crystal device with two thin lamellae…
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