Cavity-enhanced non-destructive detection of atoms for an optical lattice clock
We demonstrate a new method of cavity-enhanced non-destructive detection of atoms for a strontium optical lattice clock. The detection scheme is shown to be linear in atom number up to at least 2×10 atoms, to reject technical noise sources, to achieve signal to noise ratio close to the photon shot n...
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Published in | Optics express Vol. 27; no. 26; pp. 37099 - 37110 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
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23.12.2019
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Abstract | We demonstrate a new method of cavity-enhanced non-destructive detection of atoms for a strontium optical lattice clock. The detection scheme is shown to be linear in atom number up to at least 2×10
atoms, to reject technical noise sources, to achieve signal to noise ratio close to the photon shot noise limit, to provide spatially uniform atom-cavity coupling, and to minimize inhomogeneous ac Stark shifts. These features enable detection of atoms with minimal perturbation to the atomic state, a critical step towards realizing an ultra-high-stability, quantum-enhanced optical lattice clock. |
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AbstractList | We demonstrate a new method of cavity-enhanced non-destructive detection of atoms for a strontium optical lattice clock. The detection scheme is shown to be linear in atom number up to at least 2×10
atoms, to reject technical noise sources, to achieve signal to noise ratio close to the photon shot noise limit, to provide spatially uniform atom-cavity coupling, and to minimize inhomogeneous ac Stark shifts. These features enable detection of atoms with minimal perturbation to the atomic state, a critical step towards realizing an ultra-high-stability, quantum-enhanced optical lattice clock. |
Author | Vianello, Alvise Gill, Patrick Hobson, Richard Hill, Ian R Bowden, William |
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BackLink | https://www.ncbi.nlm.nih.gov/pubmed/31878496$$D View this record in MEDLINE/PubMed |
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CitedBy_id | crossref_primary_10_1364_OE_460554 crossref_primary_10_1103_PhysRevLett_128_153201 crossref_primary_10_1103_PhysRevLett_130_223402 crossref_primary_10_1103_PhysRevResearch_3_023152 crossref_primary_10_1103_PhysRevX_10_041052 crossref_primary_10_1103_PhysRevA_102_051301 crossref_primary_10_1063_5_0087894 crossref_primary_10_1103_PhysRevA_101_013420 crossref_primary_10_1103_PhysRevA_103_022609 crossref_primary_10_1103_PhysRevResearch_5_013056 crossref_primary_10_1103_PhysRevA_107_023713 crossref_primary_10_1103_PRXQuantum_3_020308 crossref_primary_10_1063_5_0121372 |
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