Observation of quantum spin noise in a 1D light-atoms quantum interface
arXiv:1708.08387 · doi:10.1103/PhysRevX.8.031010
Abstract
We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom interface. Strings of hundreds of cesium atoms trapped in the evanescent fiel of a tapered nanofiber are prepared in a coherent spin state, a superposition of the two clock states. A weak quantum nondemolition measurement of one projection of the collective spin is performed using a detuned probe dispersively coupled to the collective atomic observable, followed by a strong destructive measurement of the same spin projection. For the coherent spin state we achieve the value of the quantum projection noise 40 dB above the detection noise, well above the 3 dB required for reconstruction of the negative Wigner function of nonclassical states. We analyze the effects of strong spatial inhomogeneity inherent to atoms trapped and probed by the evanescent waves. We furthermore study temporal dynamics of quantum fluctuations relevant for measurement-induced spin squeezing and assess the impact of thermal atomic motion. This work paves the road towards observation of spin squeezed and entangled states and many-body interactions in 1D spin ensembles.
References in corpus (6)
- Exponential improvement in photon storage fidelities using subradiance and "selective radiance" in atomic arrays
- Demonstration of a memory for tightly guided light in an optical nanofiber
- Storage of fiber-guided light in a nanofiber-trapped ensemble of cold atoms
- Generation and detection of a sub-Poissonian atom number distribution in a one-dimensional optical lattice
- Fictitious magnetic field gradients in optical microtraps as an experimental tool for interrogating and manipulating cold atoms
- Dipole force free optical control and cooling of nanofiber trapped atoms
Cited by in corpus (10)
- Extremely subradiant states in a periodic one-dimensional atomic array
- Observation of the Rb to electric quadrupole transition at 516.6 nm mediated via an optical nanofibre
- Reservoir-engineered spin squeezing: macroscopic even-odd effects and hybrid-systems implementations
- Heating in Nanophotonic Traps for Cold Atoms
- Trapped atoms and superradiance on an integrated nanophotonic microring circuit
- Inferring Nonlinear Many-Body Bell Inequalities From Average Two-Body Correlations: Systematic Approach for Arbitrary Spin-j Ensembles
- Spin selection rule for {\it S} level transitions in atomic rubidium under paraxial and nonparaxial two-photon excitation
- Nanotrappy: An open-source versatile package for cold-atom trapping close to nanostructures
- Measurement and simulation of atomic motion in nanoscale optical trapping potentials
- Synthesizing variable particle interaction potentials via spectrally shaped spatially coherent illumination