Why momentum width matters for atom interferometry with Bragg pulses
arXiv:1110.2901 · doi:10.1088/1367-2630/14/2/023009
Abstract
We theoretically consider the effect of the atomic source's momentum width on the efficiency of Bragg mirrors and beamsplitters and, more generally, on the phase sensitivity of Bragg pulse atom interferometers. By numerical optimization, we show that an atomic cloud's momentum width places a fundamental upper bound on the maximum transfer efficiency of a Bragg mirror pulse, and furthermore limits the phase sensitivity of a Bragg pulse atom interferometer. We quantify these momentum width effects, and precisely compute how mirror efficiencies and interferometer phase sensitivities vary as functions of Bragg order and source type. Our results and methodology allow for an efficient optimization of Bragg pulses and the comparison of different atomic sources, and will help in the design of large momentum transfer Bragg mirrors and beamsplitters for use in atom-based inertial sensors.
25 pages, 11 figures
References in corpus (10)
- Atom Interferometers
- Atom Interferometry tests of the isotropy of post-Newtonian gravity
- Atom Interferometry with up to 24-Photon-Momentum-Transfer Beam Splitters
- Cold atom gravimetry with a Bose-Einstein Condensate
- Atom-wave diffraction between the Raman-Nath and the Bragg regime: Effective Rabi frequency, losses, and phase shifts
- Large atom number Bose-Einstein condensate of sodium
- Atomic Interactions in Precision Interferometry Using Bose-Einstein Condensates
- Approaching the Heisenberg limit in an atom laser
- The theory of quantum levitators
- Prototyping method for Bragg-type atom interferometers
Cited by in corpus (81)
- High-accuracy inertial measurements with cold-atom sensors
- A Bright Solitonic Matter-Wave Interferometer
- Precision atomic gravimeter based on Bragg diffraction
- Atom interferometry with the Sr optical clock transition
- Pumped-up SU(1,1) interferometry
- A quantum sensor: simultaneous precision gravimetry and magnetic gradiometry with a Bose-Einstein condensate
- Large Momentum Transfer Clock Atom Interferometry on the 689 nm Intercombination Line of Strontium
- 80hk Momentum Separation with Bloch Oscillations in an Optically Guided Atom Interferometer
- Twin-lattice atom interferometry
- Improving the accuracy of atom interferometers with ultracold sources
- Atom lasers: production, properties and prospects for precision inertial measurement
- 11 W narrow linewidth laser source at 780nm for laser cooling and manipulation of Rubidium
- A high-flux BEC source for mobile atom interferometers
- Double Bragg diffraction: A tool for atom optics
- High Precision, Quantum-Enhanced Gravimetry with a Bose-Einstein Condensate
- Large-momentum-transfer Bragg interferometer with strontium atoms
- Improving cold-atom sensors with quantum entanglement: Prospects and challenges
- Representation-free description of light-pulse atom interferometry including non-inertial effects
- Proposal for demonstrating the Hong-Ou-Mandel effect with matter waves
- A trapped atom interferometer with ultracold Sr atoms
- Experimental demonstration of shaken lattice interferometry
- Enhancing the sensitivity of atom-interferometric inertial sensors using robust control
- Optically guided linear Mach Zehnder atom interferometer
- Regimes of atomic diffraction: Raman versus Bragg diffraction in retroreflective geometries
- Optimal control of mirror pulses for atom interferometry
- Squeezed-light-enhanced atom interferometry below the standard quantum limit
- Controlling spontaneous-emission noise in measurement-based feedback cooling of a Bose-Einstein Condensate
- Measuring gravitational time dilation with delocalized quantum superpositions
- Mapping the absolute magnetic field and evaluating the quadratic Zeeman effect induced systematic error in an atom interferometer gravimeter
- Multi-loop atomic Sagnac interferometry
- Quantum test of the Universality of Free Fall using rubidium and potassium
- Quantum metrology with mixed states: When recovering lost information is better than never losing it
- Laser-Ranging Long Baseline Differential Atom Interferometers for Space
- Mean-field Dynamics and Fisher Information in matterwave Interferometry
- An atom interferometer with a shaken optical lattice
- The Role of Source Coherence in Atom Interferometery
- Quantum Enhanced Measurement of Rotations with a Spin-1 Bose-Einstein Condensate in a Ring Trap
- Optimal Matterwave Gravimetry
- Self-induced Spatial Dynamics to Enhance Spin-Squeezing via One-Axis Twisting in a Two-Component Bose-Einstein Condensate
- Improving the phase response of an atom interferometer by means of temporal pulse shaping
- Scalable, symmetric atom interferometer for infrasound gravitational wave detection
- A faster scaling in acceleration-sensitive atom interferometers
- Resolution of the Co-Location Problem in Satellite Quantum Tests of the Universality of Free Fall
- Analytic theory for Bragg atom interferometry based on the adiabatic theorem
- Interacting quantum mixtures for precision atom interferometry
- Large-momentum-transfer atom interferometers with rad-accuracy using Bragg diffraction
- Robustness of System-Filter Separation for the Feedback Control of a Quantum Harmonic Oscillator Undergoing Continuous Position Measurement
- Bi-selective pulses for large-area atom interferometry
- Generation of Atom-Light Entanglement in an Optical Cavity for Quantum Enhanced Atom-Interferometery
- Light shifts in atomic Bragg diffraction
- Universal Atom Interferometer Simulator -- Elastic Scattering Processes
- Robust Optimized Pulse Schemes for Atomic Fountain Interferometry
- Atomic Raman scattering: Third-order diffraction in a double geometry
- All-Optical Matter-Wave Lens using Time-Averaged Potentials
- Realizing Quantum free-electron lasers: A critical analysis of experimental challenges and theoretical limits
- Squeezing in Bose-Einstein condensates with large numbers of atoms
- Characterization of an atom interferometer in the quasi-Bragg regime
- Heisenberg-limited metrology with a squeezed vacuum state, three-mode mixing, and information recycling
- Spin Squeezing of a Bose-Einstein Condensate via Quantum Non-Demolition Measurement for Quantum-Enhanced Atom Interferometry
- A high-gain Quantum free-electron laser: emergence & exponential gain
- Readout delay free Bragg atom interferometry using overlapped spatial fringes
- Bragg-diffraction-induced imperfections of the signal in retroreflective atom interferometers
- Bloch oscillations in atom interferometry
- Scheme for suppressing atom expansion induced contrast loss in atom interferometers
- Non-linear Bragg trap interferometer
- An atomic Fabry-Perot interferometer using a pulsed interacting Bose-Einstein condensate
- Aberrations in (3+1)D Bragg diffraction using pulsed Gaussian laser beams
- A theoretical analysis and determination of the technical requirements for a Bragg diffraction-based cold atom interferometry gravimeter
- Integration of a high-fidelity model of quantum sensors with a map-matching filter for quantum-enhanced navigation
- Dichroic mirror pulses for optimized higher-order atomic Bragg diffraction
- High-Flux Cold Ytterbium Atomic Beam Source Using Two-Dimensional Laser Cooling with Intercombination Transition
- Calibrating the momentum width of a trapped Bose-Einstein condensate by one-dimensional optical lattice pulse sequences
- Dual Open Atom Interferometry for Compact and Mobile Quantum Sensing
- Characterizing ultra-narrow momentum of atoms by standing-wave light-pulse sequences
- Collinear Three-Photon Excitation of a Strongly Forbidden Optical Clock Transition
- High-contrast double Bragg interferometry via detuning control
- An atomic Fabry-Perot interferometer-based acceleration sensor for microgravity environments
- Tensor gravity gradiometry with a single-axis atom gradiometer
- Diffraction phase-free Bragg atom interferometry
- Hyper Ramsey-Bordé matter-wave interferometry for robust quantum sensors
- Delta-kick Squeezing