Nanoparticle Interferometer by Throw and Catch

Fuente: arXiv
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Hauptverfasser: Wardak, Jakub, Georgescu, Tiberius, Gasbarri, Giulio, Belenchia, Alessio, Ulbricht, Hendrik
Format: Preprint
Veröffentlicht: 2023
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author Wardak, Jakub
Georgescu, Tiberius
Gasbarri, Giulio
Belenchia, Alessio
Ulbricht, Hendrik
author_facet Wardak, Jakub
Georgescu, Tiberius
Gasbarri, Giulio
Belenchia, Alessio
Ulbricht, Hendrik
contents Matter-wave interferometry with increasingly larger masses could pave the way to understanding the nature of wavefunction collapse, the quantum to classical transition or even how an object in a spatial superposition interacts with its gravitational field. In order to improve upon the current mass record, it is necessary to move into the nano-particle regime. In this paper we provide a design for a nano-particle Talbot-Lau matter-wave interferometer that circumvents the practical challenges of previously proposed designs. We present simulations of the expected fringe patterns that such an interferometer would produce, considering all major sources of decoherence. We discuss the practical challenges involved in building such an experiment as well as some preliminary experimental results to illustrate the proposed measurement scheme. We show that such a design is suitable for seeing interference fringes with $10^6$amu SiO$_2$ particles, and that this design can be extended to even $10^8$amu particles by using flight times below the typical Talbot time of the system.
format Preprint
id arxiv_https___arxiv_org_abs_2312_12974
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Nanoparticle Interferometer by Throw and Catch
Wardak, Jakub
Georgescu, Tiberius
Gasbarri, Giulio
Belenchia, Alessio
Ulbricht, Hendrik
Quantum Physics
Matter-wave interferometry with increasingly larger masses could pave the way to understanding the nature of wavefunction collapse, the quantum to classical transition or even how an object in a spatial superposition interacts with its gravitational field. In order to improve upon the current mass record, it is necessary to move into the nano-particle regime. In this paper we provide a design for a nano-particle Talbot-Lau matter-wave interferometer that circumvents the practical challenges of previously proposed designs. We present simulations of the expected fringe patterns that such an interferometer would produce, considering all major sources of decoherence. We discuss the practical challenges involved in building such an experiment as well as some preliminary experimental results to illustrate the proposed measurement scheme. We show that such a design is suitable for seeing interference fringes with $10^6$amu SiO$_2$ particles, and that this design can be extended to even $10^8$amu particles by using flight times below the typical Talbot time of the system.
title Nanoparticle Interferometer by Throw and Catch
topic Quantum Physics
url https://arxiv.org/abs/2312.12974