Broadband and efficient Quantum Memory Using ac Stark Gradient Echo
Memory
- URL: http://arxiv.org/abs/2003.12821v1
- Date: Sat, 28 Mar 2020 15:41:56 GMT
- Title: Broadband and efficient Quantum Memory Using ac Stark Gradient Echo
Memory
- Authors: Mahmood Sabooni, Mohsen Jafarbeklu, and Farrokh Sarreshtehdari
- Abstract summary: A quantum state light-storage, using a virtual magnetic field through the ac Stark effect is proposed.
It has been shown the possibility to employ about a nanosecond ac Stark pulse far detuned (about 127 THz) from D1 line of rubidium.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: A quantum state light-storage, using a virtual magnetic field through the ac
Stark effect is proposed to combine the high overall storage efficiency and
large bandwidth employing room temperature atomic vapor. In this approach,
which was called the ac Stark Gradient Echo Memory (ASGEM), it has been shown
the possibility to employ about a nanosecond ac Stark pulse far detuned (about
127 THz) from D1 line of rubidium and create an atomic media with the
possibility to store a photon with about a GHz bandwidth with storage and
retrieval efficiency of more than 90%. A contour plot of efficiency as a
function of gradient field strength and optical depth, based on three-level
Maxwell- Bloch equations, simulated for a better understanding of experimental
parameter optimization.
Related papers
- Scalable Linear-Cavity Enhanced Quantum Memory [0.4543820534430523]
Quantum memories based on off-resonant cascaded absorption (ORCA) in rubidium vapour allow this storage to be broadband, noise-free, and high efficiency.
We implement a cavity-enhanced GHz-bandwidth ORCA memory with smaller footprint and reduced power requirements.
arXiv Detail & Related papers (2025-03-18T12:45:56Z) - Enhancing Quantum Memories with Light-Matter Interference [2.5882548000462373]
We introduce and demonstrate a new approach for enhancing quantum memory protocols, leveraging constructive light-matter interference within the memory.
We implement this method with a Raman quantum memory in warm Cesium vapor, and demonstrate a more than three-fold improvement in total efficiency.
arXiv Detail & Related papers (2024-11-26T12:13:21Z) - Design and simulation of a transmon qubit chip for Axion detection [103.69390312201169]
Device based on superconducting qubits has been successfully applied in detecting few-GHz single photons via Quantum Non-Demolition measurement (QND)
In this study, we present Qub-IT's status towards the realization of its first superconducting qubit device.
arXiv Detail & Related papers (2023-10-08T17:11:42Z) - High-efficiency, high-speed, and low-noise photonic quantum memory [0.0]
We present a demonstration of simultaneous high-efficiency, high-speed, and low-noise operation of a photonic quantum memory.
We achieve greater than 95% storage efficiency and 26% total efficiency of 880 GHz bandwidth photons, with $mathcalO(10-5)$ noise photons per retrieved pulse.
arXiv Detail & Related papers (2023-09-02T15:34:35Z) - Hyper-entanglement between pulse modes and frequency bins [101.18253437732933]
Hyper-entanglement between two or more photonic degrees of freedom (DOF) can enhance and enable new quantum protocols.
We demonstrate the generation of photon pairs hyper-entangled between pulse modes and frequency bins.
arXiv Detail & Related papers (2023-04-24T15:43:08Z) - Quantum-limited millimeter wave to optical transduction [50.663540427505616]
Long distance transmission of quantum information is a central ingredient of distributed quantum information processors.
Current approaches to transduction employ solid state links between electrical and optical domains.
We demonstrate quantum-limited transduction of millimeter-wave (mmwave) photons into optical photons using cold $85$Rb atoms as the transducer.
arXiv Detail & Related papers (2022-07-20T18:04:26Z) - Optimization and readout-noise analysis of a warm vapor EIT memory on
the Cs D1 line [0.0]
Quantum memories promise to enable global quantum repeater networks.
For field applications, alkali metal vapors constitute an exceptional storage platform.
We demonstrate a technologically simple, in principle satellite-suited quantum memory based on electromagnetically induced transparency on the cesium D1 line.
arXiv Detail & Related papers (2022-03-11T18:23:44Z) - Elimination of Noise in Optically Rephased Photon Echoes [1.5729386263718377]
We propose a noiseless photon-echo protocol based on a four-level atomic system.
A storage fidelity of 0.952 is obtained for time-bin qubits encoded with single-photon-level coherent pulses.
arXiv Detail & Related papers (2021-07-21T02:55:09Z) - Hybrid quantum photonics based on artificial atoms placed inside one
hole of a photonic crystal cavity [47.187609203210705]
Hybrid quantum photonics with SiV$-$-containing nanodiamonds inside one hole of a one-dimensional, free-standing, Si$_3$N$_4$-based photonic crystal cavity is presented.
The resulting photon flux is increased by more than a factor of 14 as compared to free-space.
Results mark an important step to realize quantum network nodes based on hybrid quantum photonics with SiV$-$- center in nanodiamonds.
arXiv Detail & Related papers (2020-12-21T17:22:25Z) - A Frequency-Multiplexed Coherent Electro-Optic Memory in Rare Earth
Doped Nanoparticles [94.37521840642141]
Quantum memories for light are essential components in quantum technologies like long-distance quantum communication and distributed quantum computing.
Recent studies have shown that long optical and spin coherence lifetimes can be observed in rare earth doped nanoparticles.
We report on coherent light storage in Eu$3+$:Y$$O$_3$ nanoparticles using the Stark Echo Modulation Memory (SEMM) quantum protocol.
arXiv Detail & Related papers (2020-06-17T13:25:54Z) - Improved Light-Matter Interaction for Storage of Quantum States of Light
in a Thulium-Doped Crystal Cavity [2.8353883265392876]
We implement an atomic frequency comb quantum memory for 793 nm wavelength photons.
Results show a memory efficiency of (27.5$pm$ 2.7)% over a 500 MHz bandwidth.
This allows us for the first time to store and recall quantum states of light in such a memory.
arXiv Detail & Related papers (2020-01-30T17:06:17Z) - Entanglement generation via power-of-SWAP operations between dynamic
electron-spin qubits [62.997667081978825]
Surface acoustic waves (SAWs) can create moving quantum dots in piezoelectric materials.
We show how electron-spin qubits located on dynamic quantum dots can be entangled.
arXiv Detail & Related papers (2020-01-15T19:00:01Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.