2020
DOI: 10.1103/physreva.102.013326
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Rotation sensing with improved stability using point-source atom interferometry

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Cited by 18 publications
(13 citation statements)
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“…In Ref. 138 , the authors show how using additional information on the contrast and cloud size from the PSI images allows to determine the scale factor correction in each image, thereby enabling to suppress scale factor drifts by a factor 10 without degrading the short term sensitivity.…”
Section: Example Of Gyroscope Simplification Effortmentioning
confidence: 99%
“…In Ref. 138 , the authors show how using additional information on the contrast and cloud size from the PSI images allows to determine the scale factor correction in each image, thereby enabling to suppress scale factor drifts by a factor 10 without degrading the short term sensitivity.…”
Section: Example Of Gyroscope Simplification Effortmentioning
confidence: 99%
“…The cold-atom beam interferometer architecture demonstrated here is amenable to the use of a number of advanced or novel atom interferometry techniques. These include rapid atomic velocity switching for high-dynamic-range compositefringe operation [37], actuation of Raman beam alignment to compensate for platform rotation [29], rapid k-reversal for cancellation of systematic error with high bandwidth, and continuous spatially resolved point-source interferometry for multidimensional rotation sensitivity [11,38]. Here we provide an example of one such technique, phase shear interferometry, implemented in the continuous cold-atom beam.…”
Section: Phase-shear Measurementmentioning
confidence: 99%
“…In light-pulse atom interferometers [1-4], coherent interaction with optical fields causes atoms to propagate in a superposition of spacetime trajectories that interfere at the output of the interferometer. Applications of light-pulse atom interferometry to measurement of acceleration [5][6][7], rotation rate [8][9][10][11], gravity [12][13][14], and gravity gradients [15,16] have been demonstrated on numerous occasions, and future applications such as gravitational wave detection [17][18][19][20] are under development.…”
Section: Introductionmentioning
confidence: 99%
“…To obtain the phase, in a manner equivalent to full quadrature detection where both sine and cosine components of the phase are measured, we use phase-shear readout [26]. We tilt the retro-reflecting Raman mirror by a small angle before the final π/2-pulses to generate a spatial transverse interference pattern across the cloud, as utilized in point-source interferometry [27][28][29] and shown in Fig. 1(c).…”
Section: Principles Of Dual-t Interferometrymentioning
confidence: 99%
“…These hypothe-ses are weighted through Bayesian estimation after every measurement, converging on a solution that is consistent with the sensor readings over time. In our context, under some model assumptions on the signal dynamics, use of particle filter enables full recovery of the single-shot bandwidth [29] while maintaining the large increase in dynamic range rendered by the sequential operation. An experimental realization of tracking a dynamic signal is presented in Fig.…”
Section: Tracking Fast-varying Signalsmentioning
confidence: 99%