We present the theoretical design and experimental implementation of mirror and beamsplitter pulses that improve the fidelity of atom interferometry and increase its tolerance of systematic inhomogeneities. These pulses are designed using the GRAPE optimal control algorithm and demonstrated experimentally with a cold thermal sample of 85Rb atoms. We first show a stimulated Raman inversion pulse design that achieves a ground hyperfine state transfer efficiency of 99.8(3)%, compared with a conventional π pulse efficiency of 75(3)%. This inversion pulse is robust to variations in laser intensity and detuning, maintaining a transfer efficiency of 90% at detunings for which the π pulse fidelity is below 20%, and is thus suitable for large moment...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Multi-photon Bragg diffraction is a powerful method for fast, coherent momentum transfer of atom wav...
We present the theoretical design and experimental implementation of mirror and beamsplitter pulses ...
Atom interferometric sensors can enable extremely precise measurements of inertial motion and extern...
Atom matterwave interferometry requires mirror and beamsplitter pulses that are robust to inhomogene...
The mirrors and beamsplitters of atom interferometers often suffer from inhomogeneities in coupling ...
We present a methodology for the design of optimal Raman beam-splitter pulses suitable for cold atom...
Dataset supports: Saywell, J. C., Carey, M., Belal, M., Kuprov, I., & Freegarde, T. (2020). Opti...
We present designs for the augmentation “mirror” pulses of large-momentum-transfer atom interferomet...
The sensitivity of atom interferometers depends on the fidelity of the light pulses used as beamspli...
The pulse length and off-resonance errors in an atom interferometry caused by the laser parameters d...
International audienceWe develop interferometry-based atomic inertial sensors robust to Doppler-type...
International audienceWe develop interferometry-based atomic inertial sensors robust to Doppler-type...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Multi-photon Bragg diffraction is a powerful method for fast, coherent momentum transfer of atom wav...
We present the theoretical design and experimental implementation of mirror and beamsplitter pulses ...
Atom interferometric sensors can enable extremely precise measurements of inertial motion and extern...
Atom matterwave interferometry requires mirror and beamsplitter pulses that are robust to inhomogene...
The mirrors and beamsplitters of atom interferometers often suffer from inhomogeneities in coupling ...
We present a methodology for the design of optimal Raman beam-splitter pulses suitable for cold atom...
Dataset supports: Saywell, J. C., Carey, M., Belal, M., Kuprov, I., & Freegarde, T. (2020). Opti...
We present designs for the augmentation “mirror” pulses of large-momentum-transfer atom interferomet...
The sensitivity of atom interferometers depends on the fidelity of the light pulses used as beamspli...
The pulse length and off-resonance errors in an atom interferometry caused by the laser parameters d...
International audienceWe develop interferometry-based atomic inertial sensors robust to Doppler-type...
International audienceWe develop interferometry-based atomic inertial sensors robust to Doppler-type...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Atom interferometric sensors and quantum information processors must maintain coherence while the ev...
Multi-photon Bragg diffraction is a powerful method for fast, coherent momentum transfer of atom wav...