Diffraction phase-free Bragg atom interferometry

Fuente: arXiv
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Main Authors: Martínez-Lahuerta, Víctor J., Kirsten-Siemß, Jan-Niclas, Hammerer, Klemens, Gaaloul, Naceur
Format: Preprint
Published: 2025
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author Martínez-Lahuerta, Víctor J.
Kirsten-Siemß, Jan-Niclas
Hammerer, Klemens
Gaaloul, Naceur
author_facet Martínez-Lahuerta, Víctor J.
Kirsten-Siemß, Jan-Niclas
Hammerer, Klemens
Gaaloul, Naceur
contents Bragg Diffraction of matter waves is an established technique used in the most accurate quantum sensors. It is also the method of choice to operate large-momentum-transfer, high-sensitivity atom interferometers. It suffers, however, from an intrinsic multi-path character. Optimal control theory (OCT) has recently led to an improved robustness of atom interferometers to a range of challenging environmental effects such as vibrations or platform accelerations. In this theoretical work, we apply OCT protocols to control the Bragg diffraction phase shifts thereby enhancing the metrological accuracy of the interferometer. We show a minimization of the diffraction phase for realistic conditions of finite temperature of the incoming wavepacket in a multi-path, high-order Bragg interferometer in a Mach-Zehnder configuration. We study input states with different momentum widths and find that our approach mitigates diffraction phases below the microradian level in the case of $1\%$ of the photon recoil, thereby eliminating one of the leading systematic effects in atom interferometry.
format Preprint
id arxiv_https___arxiv_org_abs_2505_23921
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Diffraction phase-free Bragg atom interferometry
Martínez-Lahuerta, Víctor J.
Kirsten-Siemß, Jan-Niclas
Hammerer, Klemens
Gaaloul, Naceur
Atomic Physics
Quantum Physics
Bragg Diffraction of matter waves is an established technique used in the most accurate quantum sensors. It is also the method of choice to operate large-momentum-transfer, high-sensitivity atom interferometers. It suffers, however, from an intrinsic multi-path character. Optimal control theory (OCT) has recently led to an improved robustness of atom interferometers to a range of challenging environmental effects such as vibrations or platform accelerations. In this theoretical work, we apply OCT protocols to control the Bragg diffraction phase shifts thereby enhancing the metrological accuracy of the interferometer. We show a minimization of the diffraction phase for realistic conditions of finite temperature of the incoming wavepacket in a multi-path, high-order Bragg interferometer in a Mach-Zehnder configuration. We study input states with different momentum widths and find that our approach mitigates diffraction phases below the microradian level in the case of $1\%$ of the photon recoil, thereby eliminating one of the leading systematic effects in atom interferometry.
title Diffraction phase-free Bragg atom interferometry
topic Atomic Physics
Quantum Physics
url https://arxiv.org/abs/2505.23921