High-precision gravity measurements using atom interferometry
Высокоточные измерения гравитации с использованием атомной интерферометрии
2001-02-01
SCID: 54.1/82g2rptk
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atom interferometrygravitational gradientgravity measurementslaser-cooled caesium atomsstimulated Raman transitions
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Abstract (AI)
We have built an atom interferometer that can measure g , the local acceleration due to gravity, with a resolution of Δ g / g = 2 × 10 −8 after a single 1.3 s measurement cycle, 3 × 10 −9 after 1 min and 1 × 10 −10 after two days of integration time. The difference between our value for g and one obtained by a falling corner-cube optical interferometer is (7 ± 7) × 10 −9 g . The atom interferometer uses velocity-selective stimulated Raman transitions and laser-cooled caesium atoms in an atomic fountain. We extend previous methods of analysing the interferometer to include the effects of a gravitational gradient. We also present detailed experimental and theoretical studies of potential systematic errors and noise sources.
Key Findings
1
An atom interferometer measures local gravitational acceleration with relative resolution of 2 × 10−8 after one 1.3-second cycle.
2
Integration improves relative gravity resolution to 3 × 10−9 after one minute and 1 × 10−10 after two days.
3
The analysis incorporates gravitational-gradient effects and systematically investigates potential experimental and theoretical errors and noise sources.
4
The atom-interferometer result agrees with a falling corner-cube optical interferometer within (7 ± 7) × 10−9 g.
5
The instrument uses velocity-selective stimulated Raman transitions with laser-cooled caesium atoms in an atomic fountain.
Research Object
local gravitational acceleration measured with a laser-cooled caesium-atom interferometer in an atomic fountain
Research Subject
high-precision measurement resolution, accuracy, gravitational-gradient effects, systematic errors, and noise sources
Publication Details
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2001-02-01
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