X-Ray-Driven Photon Bunching

Fuente: arXiv
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Main Authors: Katznelson, Shaul, Kasten, Noam, Tziperman, Offek, Shultzman, Avner, Bucher, Tomer, Abudi, Tom Lenkiewicz, Schuetz, Roman, Be'er, Orr, Levy, Shai, Strassberg, Rotem, Dosovitsky, Georgy, Yanagimoto, Sotatsu, Loignon-Houle, Francis, Bekenstein, Yehonadav, Roques-Carmes, Charles, Kaminer, Ido
Format: Preprint
Published: 2024
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author Katznelson, Shaul
Kasten, Noam
Tziperman, Offek
Shultzman, Avner
Bucher, Tomer
Abudi, Tom Lenkiewicz
Schuetz, Roman
Be'er, Orr
Levy, Shai
Strassberg, Rotem
Dosovitsky, Georgy
Yanagimoto, Sotatsu
Loignon-Houle, Francis
Bekenstein, Yehonadav
Roques-Carmes, Charles
Kaminer, Ido
author_facet Katznelson, Shaul
Kasten, Noam
Tziperman, Offek
Shultzman, Avner
Bucher, Tomer
Abudi, Tom Lenkiewicz
Schuetz, Roman
Be'er, Orr
Levy, Shai
Strassberg, Rotem
Dosovitsky, Georgy
Yanagimoto, Sotatsu
Loignon-Houle, Francis
Bekenstein, Yehonadav
Roques-Carmes, Charles
Kaminer, Ido
contents Hanbury Brown and Twiss (HBT) interferometry is a milestone experiment that transformed our understanding of the nature of light. The concept was demonstrated in 1956 to measure the radii of stars through photon coincidence detection. This form of coincidence detection later became a cornerstone of modern quantum optics. Here we connect HBT interferometry to the physics of scintillation, the process of spontaneous light emission upon excitation by high-energy particles, such as x-rays. Our work reveals intrinsic photon bunching in the scintillation process, which we utilize to elucidate its underlying light emission mechanisms. Specifically, g^((2) ) (τ) enables the quantitative extraction of scintillation lifetime and light yield, showing their dependence on temperature and X-ray flux as well. This approach provides a characterization method that we benchmark on a wide gamut of scintillators, including rare-earth-doped garnets and perovskite nanocrystals. Our method is particularly important for nano- and micro-scale scintillators, whose properties are challenging to quantify by conventional means: We extract the scintillation properties in perovskite nanocrystals of only a few hundreds of nanometers, observing strong photon bunching (g^((2) ) (0)>50). Our research paves the way for broader use of photon-coincidence measurement and methods from quantum optics in studying materials with complex optical properties in extremes regions of the electromagnetic spectrum.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16975
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle X-Ray-Driven Photon Bunching
Katznelson, Shaul
Kasten, Noam
Tziperman, Offek
Shultzman, Avner
Bucher, Tomer
Abudi, Tom Lenkiewicz
Schuetz, Roman
Be'er, Orr
Levy, Shai
Strassberg, Rotem
Dosovitsky, Georgy
Yanagimoto, Sotatsu
Loignon-Houle, Francis
Bekenstein, Yehonadav
Roques-Carmes, Charles
Kaminer, Ido
Optics
Applied Physics
Hanbury Brown and Twiss (HBT) interferometry is a milestone experiment that transformed our understanding of the nature of light. The concept was demonstrated in 1956 to measure the radii of stars through photon coincidence detection. This form of coincidence detection later became a cornerstone of modern quantum optics. Here we connect HBT interferometry to the physics of scintillation, the process of spontaneous light emission upon excitation by high-energy particles, such as x-rays. Our work reveals intrinsic photon bunching in the scintillation process, which we utilize to elucidate its underlying light emission mechanisms. Specifically, g^((2) ) (τ) enables the quantitative extraction of scintillation lifetime and light yield, showing their dependence on temperature and X-ray flux as well. This approach provides a characterization method that we benchmark on a wide gamut of scintillators, including rare-earth-doped garnets and perovskite nanocrystals. Our method is particularly important for nano- and micro-scale scintillators, whose properties are challenging to quantify by conventional means: We extract the scintillation properties in perovskite nanocrystals of only a few hundreds of nanometers, observing strong photon bunching (g^((2) ) (0)>50). Our research paves the way for broader use of photon-coincidence measurement and methods from quantum optics in studying materials with complex optical properties in extremes regions of the electromagnetic spectrum.
title X-Ray-Driven Photon Bunching
topic Optics
Applied Physics
url https://arxiv.org/abs/2412.16975