Locally-sealed microfabricated vapor cells filled from an ex situ Cs source

Fuente: arXiv
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Main Authors: Péroux, L., Dewilde, A., Chutani, R., Mazzamurro, A., Bonhomme, J., Mursa, A., Clément, J. -F., Talbi, A., Pernod, P., Passilly, N., Maurice, V.
Format: Preprint
Published: 2025
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author Péroux, L.
Dewilde, A.
Chutani, R.
Mazzamurro, A.
Bonhomme, J.
Mursa, A.
Clément, J. -F.
Talbi, A.
Pernod, P.
Passilly, N.
Maurice, V.
author_facet Péroux, L.
Dewilde, A.
Chutani, R.
Mazzamurro, A.
Bonhomme, J.
Mursa, A.
Clément, J. -F.
Talbi, A.
Pernod, P.
Passilly, N.
Maurice, V.
contents Microfabricated alkali vapor cells are key to enable miniature devices such as atomic clocks and optically pumped magnetometers with reduced size, weight and power. Yet, more versatile fabrication methods are still needed to further expand their use cases. Here, we demonstrate a novel approach to collectively fill and seal microfabricated cesium cells using locally-sealed microchannels patterned within one of the glass substrates comprising the cells. Unlike current methods that rely on wafer-level anodic bonding as the last sealing step, an approach based on local sealing opens the path to features so far limited to traditional glass-blown cells, including the ability to deposit temperature-sensitive antirelaxation coatings, reaching lower background gas pressure without an additional gettering material or filling with diverse atomic or molecular species.
format Preprint
id arxiv_https___arxiv_org_abs_2502_10829
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Locally-sealed microfabricated vapor cells filled from an ex situ Cs source
Péroux, L.
Dewilde, A.
Chutani, R.
Mazzamurro, A.
Bonhomme, J.
Mursa, A.
Clément, J. -F.
Talbi, A.
Pernod, P.
Passilly, N.
Maurice, V.
Atomic Physics
Applied Physics
Microfabricated alkali vapor cells are key to enable miniature devices such as atomic clocks and optically pumped magnetometers with reduced size, weight and power. Yet, more versatile fabrication methods are still needed to further expand their use cases. Here, we demonstrate a novel approach to collectively fill and seal microfabricated cesium cells using locally-sealed microchannels patterned within one of the glass substrates comprising the cells. Unlike current methods that rely on wafer-level anodic bonding as the last sealing step, an approach based on local sealing opens the path to features so far limited to traditional glass-blown cells, including the ability to deposit temperature-sensitive antirelaxation coatings, reaching lower background gas pressure without an additional gettering material or filling with diverse atomic or molecular species.
title Locally-sealed microfabricated vapor cells filled from an ex situ Cs source
topic Atomic Physics
Applied Physics
url https://arxiv.org/abs/2502.10829